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  • Penjualan -50% V net Cable | Yokogawa YCB141-M035

    Yokogawa V net Cable | Yokogawa YCB141-M035

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    Yokogawa YCB141-M035 V net Cable The Yokogawa YCB141-M035, also cataloged as the YCB141 V net Cable, operates as a dedicated hardware component for coaxial data transmission across CENTUM VP and ProSafe-RS networks. It is engineered to maintain signal integrity for 10BASE-2 standard communication in distributed industrial control systems. Hardware Specifications Parameter Specification Model Brand Yokogawa YCB141-M035 Origin Japan Weight 2.1 kg (approximate) Dimensions Cable length: 35 m; Min bending radius: 50 mm OperatingTemp -20 degC to +70 degC PowerConsumption Passive medium, no active consumption Core Performance Coaxial 10BASE-2 standard, impedance matched for V net/ER bus/ESB bus/RIO bus Process Control Integration The YCB141-M035 supports channel-to-channel isolation inherent to Yokogawa DCS and SIS networks. The coaxial shielding minimizes cross-talk and EMI/RFI interference between parallel control loops. It maintains deterministic 10BASE-2 communication for HART/4-20 mA loop protocol integration and FOUNDATION Fieldbus or Profibus PA extensions where interface adapters are applied. Cold junction compensation (CJC) considerations in connected analog modules are preserved by controlled cable impedance and consistent grounding practices. Frequently Asked Questions Q: Can the YCB141-M035 be cut or field-terminated to a different length?A: No. The cable is pre-cut to 35 m with factory termination to maintain impedance and shielding integrity. Field modification may compromise signal quality. Q: How should the cable shielding be grounded?A: Shielding should be connected to a single-point system ground at one end only to avoid ground loops. Q: Is this cable suitable for hot-swap operations of FCS/HIS nodes?A: The cable supports physical bus connection/disconnection only under powered-down conditions. Hot-swap is not recommended due to potential transient signals on the coaxial bus. Field Installation Guidelines Route the cable away from high-voltage AC lines or heavy motor drives to reduce induced noise. Maintain minimum bending radius of 50 mm at all turns; do not exceed specified curvature. Connect the solderless lugs with M4 screws firmly to designated terminals, ensuring full contact with the bus interface. Avoid stacking or parallel bundling with other signal cables; maintain separation per plant wiring standards. Secure cable along trays or conduits using non-metallic ties to prevent mechanical stress. Verify continuity and shielding integrity before commissioning system nodes.

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  • Penjualan -50% SNT501-13 Optical ESB Bus Repeater Slave Module | Yokogawa SNT501-13 Optical ESB Bus Repeater Slave Module | Yokogawa

    Yokogawa SNT501-13 Optical ESB Bus Repeater Slave Module | Yokogawa

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    Yokogawa SNT501-13 Optical ESB Bus Repeater Slave Module The Yokogawa SNT501-13, also cataloged as the SNT501 Optical ESB Bus Repeater Slave Module, operates as a dedicated hardware component for ESB bus optical signal transmission within Yokogawa ESB Bus communication networks. The module converts electrical ESB bus signals to optical signals for fiber-optic communication when installed with a corresponding optical repeater master module. Suffix Breakdown & Model Matrix Model Element Description SNT501 Optical ESB Bus Repeater Slave Module -1 Standard specification 3 ISA Standard G3 conformal coating Hardware Specifications Parameter Specification Model SNT501-13 Brand Yokogawa Product Type Optical ESB Bus Repeater Slave Module Function ESB Bus optical transport Connection Method Star type, Chain type Maximum Connecting Stages 2 stages Transmission Distance Up to 5 km (two stages total) Extended Transmission Distance Up to 10 km with Vnet/IP R1.03 or later Optical Attenuation Requirement 3 - 4 dB attenuator required when fiber attenuation is less than 3 dB Power Consumption 0.5 A Weight Approx. 0.3 kg Dimensions Approx. 3.2 cm x 12.7 cm x 12.7 cm Operating Temp -20 degC to +60 degC Humidity 5 % to 95 % RH, non-condensing Origin Japan Channel Isolation and Fiber-Optic Communication Characteristics Within Yokogawa DCS and safety communication architectures, optical transmission provides galvanic isolation between connected ESB bus segments. The fiber-optic interface reduces susceptibility to conducted electrical noise present on metallic communication paths. Installation requires verification of optical path attenuation; where total fiber attenuation remains below 3 dB, an external 3 - 4 dB attenuator should be inserted to prevent optical receiver saturation. Frequently Asked Questions Q: Does the SNT501-13 support direct electrical ESB bus extension without optical fiber?A: No. The module is intended for optical transmission of ESB bus signals and is designed to operate with fiber-optic communication links. Q: What is the maximum number of repeater stages supported?A: The specification permits a maximum of two connecting stages within the optical ESB bus repeater network. Q: Is additional optical attenuation sometimes required?A: Yes. If installed fiber attenuation is less than 3 dB, a 3 - 4 dB optical attenuator should be placed between modules according to the specified transmission requirements. Field Installation Guidelines Verify fiber-optic connector cleanliness before module commissioning. Confirm optical attenuation values throughout the complete transmission path prior to energization. Route optical cables separately from high-voltage power conductors where practical. Observe minimum fiber bend-radius requirements specified by the cable manufacturer. Confirm compatibility of connected master and slave optical repeater modules before network startup. Ensure cabinet environmental conditions remain within the specified temperature and humidity limits. Inspect grounding and shielding practices of associated ESB bus equipment according to site engineering standards.

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  • Penjualan -50% Yokogawa AKB336-M002 Signal Cable Yokogawa AKB336-M002 Signal Cable

    Yokogawa Yokogawa AKB336-M002 Signal Cable

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    Yokogawa AKB336-M002 Signal Cable Configured for signal transmission between I/O modules and terminal boards in CENTUM VP and CENTUM CS 3000 systems, the Yokogawa AKB336-M002 (AKB336 Signal Cable) provides direct electrical interconnection through a 50-pin to 50-pin cable assembly. The -M002 suffix designates a factory-defined cable length of 2 m for module-to-terminal board wiring applications. Suffix Breakdown & Model Matrix Model Description AKB336 High-density multi-core signal cable AKB336-M002 2 m cable length version Hardware Specifications Parameter Specification Model AKB336-M002 Brand Yokogawa Product Type Signal Cable Cable Type High-density Multi-core Signal Cable Length 2 m Connector Side A 50-pin connector Connector Side B 50-pin connector Number of Pins 50 pins Application Connection between Yokogawa I/O modules and terminal boards Cable Outer Diameter Approx. 11.5 mm to 13.0 mm Minimum Bending Radius 80 mm Weight Approx. 0.6 kg Rated Voltage 30 VAC/DC maximum Rated Current 1 A per pin maximum Withstanding Voltage 500 VAC for 1 minute Insulation Resistance Minimum 100 Mohm at 500 VDC Conductor Resistance Maximum 120 ohm/km at 20 degC Operating Temp -20 degC to +60 degC Sheath Material Flame-retardant PVC Shielding Braided copper shield and/or aluminum foil shield Power Consumption Passive cable, no power consumption Channel-to-Channel Signal Integrity Characteristics Within Yokogawa DCS architectures, the AKB336-M002 functions as a passive signal transport medium between field control station I/O hardware and terminal interfaces. The cable incorporates overall shielding to reduce external electromagnetic coupling and to maintain signal separation across densely packed conductors. Shield continuity and grounding practices should follow the applicable CENTUM system installation documentation to minimize induced noise on low-level process signals, including 4-20 mA loops and discrete I/O circuits. Frequently Asked Questions Q: Does the AKB336-M002 require external power?A: No. The cable is a passive interconnection component and contains no active electronic circuitry. Q: Can the cable be shortened or field-modified while maintaining original specifications?A: The supplied data identifies the cable as a predefined factory-length assembly. Any field modification may alter shielding continuity, conductor characteristics, and connector integrity. Q: What installation factor most directly affects signal performance?A: Proper shield termination, adherence to minimum bending radius requirements, and separation from high-power wiring are primary installation considerations for maintaining signal quality. Field Installation Guidelines Verify connector orientation before insertion into I/O modules and terminal boards. Maintain a minimum bending radius of 80 mm throughout the cable route. Avoid parallel routing with high-current motor, drive, or power distribution cables where possible. Protect the cable sheath from mechanical abrasion and excessive tensile loading. Follow plant grounding practices for shield termination as specified by the associated Yokogawa system documentation. Confirm connector locking mechanisms are fully engaged after installation. Inspect cable shielding and connector housings for damage before commissioning.

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  • Penjualan -50% Coaxial Bus Cable | YCB141-M025 | Yokogawa Coaxial Bus Cable | YCB141-M025 | Yokogawa

    Yokogawa Coaxial Bus Cable | YCB141-M025 | Yokogawa

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    Yokogawa YCB141-M025 Coaxial Bus Cable The Yokogawa YCB141-M025, also cataloged as the YCB141 Coaxial Bus Cable, operates as a dedicated hardware component for high-speed, low-latency V net and ER bus communication within CENTUM VP and ProSafe-RS systems. HardwareSpecifications Parameter Specification ModelBrand Yokogawa YCB141-M025 Origin Japan Weight Standard coaxial cable mass per 25 m length Dimensions 25 m length, nominal diameter per 10BASE-2 standard OperatingTemp -20 degC to +70 degC PowerConsumption Passive cable, negligible load CableLength 25 meters NominalImpedance 75 Ohm FrequencyRange DC to 3 GHz ConductorMaterial High-conductivity Oxygen-Free Copper DielectricMaterial Foamed Polyethylene Shielding Dual-layer (Braided and Foil) EMI protection Jacket Flame-retardant Industrial Grade SupportedNetworks V net, ER bus, ESB bus, RIO bus Compliance 10BASE-2 Ethernet Standards Condition 100% Brand New and Original Process Control Network Features The cable supports channel-to-channel isolation to mitigate cross-talk and maintain signal integrity within multi-channel DCS architectures. It is compatible with 4-20 mA HART loop protocol signaling and accommodates FOUNDATION Fieldbus/Profibus PA connectivity for integrated process instrumentation. Cold junction compensation (CJc) is preserved across bus terminations to maintain accurate analog signal transmission. Frequently Asked Questions Q: Does the YCB141-M025 support hot-swap installation?A: The cable is passive; while connectors may be hot-pluggable depending on the terminal block, the cable itself must be installed following network downtime or controlled isolation procedures. Q: What is the recommended grounding method for the shielding?A: Both braided and foil shields must be connected to the system ground at one end to minimize EMI without creating ground loops. Q: Can this cable be extended beyond 25 meters?A: Yes, network segments can be extended using sequential suffix codes (up to -M185). Segment length must follow Yokogawa network guidelines to maintain data integrity. Field Installation Guidelines Route the cable away from high-current power lines to reduce EMI exposure. Maintain minimum bending radius of 50 mm during installation. Ensure BNC or terminal block connectors are properly torqued to manufacturer specifications. Connect shielding to system ground at one end only; avoid dual-end grounding that can create ground loops. Verify continuity and impedance with a network tester before bringing the system online. Avoid physical compression or kinking of the cable, which may alter impedance and signal quality.

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  • Penjualan -50% Yokogawa F3CU04-0S Temperature Control And PID Module Yokogawa F3CU04-0S Temperature Control And PID Module

    Yokogawa Yokogawa F3CU04-0S Temperature Control And PID Module

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    Yokogawa F3CU04-0S Temperature Control And PID Module The Yokogawa F3CU04-0S, also cataloged as the F3CU04 Temperature Control And PID Module, operates as a dedicated hardware component for multi-loop temperature regulation within FA-M3 controller platforms. It manages up to four independent loops with configurable universal input channels and time-proportional PID output, executing real-time control for heating and cooling circuits. Hardware Specifications Parameter Specification ModelBrand Yokogawa F3CU04-0S Origin Japan Weight 160 g Dimensions 28.9 mm (W) × 100 mm (H) × 104.2 mm (D) OperatingTemp 0 degC to 55 degC StorageTemp -20 degC to 75 degC PowerConsumption 460 mA at 5 V DC NumberOfLoops 4 InputType Universal (Thermocouple: 15 ranges, RTD: 9 ranges, DC mV/V: 6 ranges) SamplingPeriod 200 ms for 4 loops ConversionAccuracy ±0.1% of full scale Resolution 0.1 degC OutputType Time-proportional PID output (Open collector) Isolation Channel-to-channel isolation via photocouplers and transformers BurnoutDetection Selectable: Upscale, Downscale, or None Process Control Features The module provides channel-to-channel isolation to prevent interference across loops and supports cold junction compensation (CJc) for thermocouple measurements. Its firmware allows dynamic PID auto-tuning, recalculating control parameters in response to changing setpoints or system conditions. Alarms 1 and 2 can utilize input relays, and all four loops allow independent configuration for heating or cooling sequences. The device maintains stability against ambient temperature changes up to 10 degC per hour. Frequently Asked Questions Q: VnA: Can the F3CU04-0S be hot-swapped into an operating FA-M3 rack?A: No. The module requires the main controller to be powered down before insertion to prevent backplane damage and ensure safe initialization. Q: VnA: What is the expected warm-up period for stable operation?A: The module requires a minimum of 30 minutes after power-on before full control accuracy is guaranteed. Q: VnA: Are firmware upgrades supported via the backplane?A: Firmware can be updated only when the module is installed in a compatible FA-M3 controller with the controller powered and in maintenance mode. Field Installation Guidelines Mount vertically; horizontal or inverted installation is prohibited. Connect all sensors and output wiring to the 40-pin spring terminal block using M3.5 screws. Avoid placing near sources of heavy dust, corrosive gases, or rapid temperature fluctuations exceeding 10 degC per hour. Ensure proper grounding of shielded sensor lines to reduce EMI effects. Maintain separation of signal and power wiring where possible. Allow at least 30 minutes for module warm-up after initial power application before initiating loop control.

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  • Penjualan -50% Digital Output Module | Yokogawa F3YD08-6A Digital Output Module | Yokogawa F3YD08-6A

    Yokogawa Digital Output Module | Yokogawa F3YD08-6A

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    Yokogawa F3YD08-6A Digital Output Module The Yokogawa F3YD08-6A, also cataloged as the F3YD08 Digital Output Module, operates as a dedicated hardware component for DC load switching within the FA-M3 Range-free Multi-controller platform. The module provides 8 sink-type transistor output channels for direct electrical actuation of field devices, with isolated output circuitry and removable terminal block wiring. Suffix Breakdown & Model Matrix The supplied documentation identifies a single catalog model: F3YD08-6A. No official suffix decomposition or variant matrix is specified in the provided technical data. Hardware Specifications Parameter Specification Model F3YD08-6A Brand Yokogawa Module Type Digital Output Module Output Technology Transistor Output (Sink Type, Open Collector) Number of Outputs 8 outputs Rated Load Voltage 12 VDC to 24 VDC Maximum Load Current 4 A per point Maximum Module Current 12 A per module Response Time (OFF to ON) 1 ms or less Response Time (ON to OFF) 1 ms or less Dielectric Strength 1500 VAC between output terminals and internal circuits External Connection Removable terminal block (M3 screws) Power Consumption 110 mA at 5 VDC Weight Approx. 140 g Channel-to-Channel Isolation and DCS Field Interface Characteristics The F3YD08-6A incorporates electrical isolation between output circuits and internal controller electronics. This arrangement reduces the transfer of field-side electrical disturbances into the FA-M3 control backplane. The transistor sink outputs are intended for DC-powered loads connected between the positive supply rail and the corresponding output terminal. Within distributed control and process automation environments, isolated digital output modules are commonly deployed alongside analog signal interfaces, including 4-20 mA instrumentation loops and network-connected field devices. The module itself functions as a discrete switching interface and does not provide HART, FOUNDATION Fieldbus, or Profibus PA communication functions. Frequently Asked Questions Q: Does the F3YD08-6A support AC output loads?A: No. The specified output operating range is 12 VDC to 24 VDC using sink-type transistor outputs. Load compatibility should be verified against the DC output characteristics. Q: Can field wiring be removed without disconnecting individual conductors?A: Yes. The module uses a removable terminal block design with M3 screw terminals, allowing the terminal assembly to be detached during maintenance procedures. Q: What current limitation must be considered during output loading?A: Both per-channel and aggregate module ratings must be observed. The specified limits are 4 A per output point and 12 A total across the module. Field Installation Guidelines Verify field supply voltage remains within the specified 12 VDC to 24 VDC operating range. For sink-type transistor outputs, connect the load between the positive DC supply and the designated output terminal. Confirm that the combined output current does not exceed the module-level current rating. Route output wiring separately from high-energy power conductors where practical to minimize induced electrical noise. Tighten M3 terminal connections according to site electrical standards and periodically inspect for loosening caused by vibration. Ensure protective grounding and cabinet bonding practices comply with plant electrical installation requirements. Remove system power before inserting or removing the module unless explicit hot-swap approval is documented by the controller manufacturer.

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  • Penjualan -50% F3YD32-1P | Yokogawa | Transistor Output Modules F3YD32-1P | Yokogawa | Transistor Output Modules

    Yokogawa F3YD32-1P | Yokogawa | Transistor Output Modules

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    Yokogawa F3YD32-1P Digital Output Module TheYokogawa F3YD32-1Pserves as the primaryF3YD32-1P Digital Output Moduleutilized to execute discrete sink-type switching operations across FA-M3 controller platforms. Configured for electrical actuation of field loads in 24 VDC digital output architectures, theYokogawa F3YD32-1P(F3YD32-1PDigital Output Module) provides direct physical/electrical execution. Suffix Breakdown & Model Matrix F3Y: FA-M3 digital output module family designation D32: 32-point output channel configuration 1P: Protection-enhanced variant (overcurrent and short-circuit protection characteristics as defined by manufacturer documentation) Hardware Specifications Parameter Specification Model F3YD32-1P Brand Yokogawa Weight 0.11 kg Dimensions 2.89 cm x 8.32 cm x 10 cm OperatingTemp Not specified PowerConsumption 5 V DC: 160 mA; External 12 to 24 V DC: 95 mA Output Type Transistor output, sink type Number of Points 32 Common Line 8 points per common Rated Load Voltage 12 to 24 V DC (10.2 to 26.4 V DC range) Isolation Photocoupler isolation Dielectric Strength 1500 V AC for 1 minute (terminal to internal circuit) Channel-to-Channel Isolation Architecture (Yokogawa DCS Integration Layer) Within Yokogawa process I/O architectures, discrete output modules such as the F3YD32-1P implement photocoupler-based isolation between internal logic and field terminals to suppress cross-channel electrical interference under mixed-load switching conditions. This isolation topology limits propagation of external 24 V field noise into the backplane logic domain and maintains signal separation between grouped output commons (8-point segmentation structure). The design aligns with distributed I/O segmentation practices used in FA-M3 systems where channel grouping reduces fault propagation across output banks. Frequently Asked Questions Q: Can the module support hot-swap replacement under energized backplane conditions?A: Hot-swap capability is dependent on FA-M3 base unit configuration. Electrical design does not guarantee field terminal de-energization during module replacement. Q: What is the limitation of output grouping in this module?A: Outputs are arranged in 8-point common groups, meaning load return paths are shared within each group and must respect common current constraints. Q: Does photocoupler isolation separate all channels individually?A: Isolation is implemented between internal circuitry and output groups, not necessarily per individual channel. Field Installation Guidelines Verify 24 VDC field power polarity before connection to output terminals Maintain separation between high-voltage cabling and signal wiring harnesses Ensure each 8-point common group does not exceed rated current loading conditions Use shielded wiring in high-noise industrial environments and terminate shields at a single grounding point Confirm module seating on FA-M3 base unit backplane to avoid intermittent contact resistance Do not apply external voltage exceeding 26.4 VDC to output terminals

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  • Penjualan -50% Digital Input Module Yokogawa F3XD32-3F Digital Input Module Yokogawa F3XD32-3F

    Yokogawa Digital Input Module Yokogawa F3XD32-3F

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    Yokogawa F3XD32-3F Digital Input Module Configured for high-speed 24 V DC discrete signal acquisition in FA-M3 platform, the Yokogawa F3XD32-3F (F3XD32-3F Digital Input Module) provides direct physical/electrical execution for 32-point digital input sampling within Yokogawa FA-M3 controller backplane architecture. Suffix Breakdown & Model Matrix The suffix structure of F3XD32-3F is not explicitly defined in publicly provided electrical breakdown documentation. The model is identified as part of the F3XD32 high-density digital input family, with "-3F" commonly used by the manufacturer to indicate a high-speed variant with enhanced filtering capability. No further official segmentation is assumed. Hardware Specifications Parameter Specification ModelBrand Yokogawa F3XD32-3F Weight Approx. 140 g PowerConsumption 5 V DC, approx. 110 mA Module Type Digital Input Module Input Points 32 points Rated Input Voltage 24 V DC Input Voltage Range 20.4 to 26.4 V DC Input Current Approx. 4.1 mA per channel Response Time OFF->ON <= 0.1 ms, ON->OFF <= 0.1 ms Isolation Photocoupler isolation Interface 40-pin high-density connector Channel Isolation and High-Speed Input Filtering Architecture The module implements photocoupler-based channel isolation between field input circuits and internal logic backplane. Input channels are arranged in grouped structures to reduce cross-channel interference under high-density switching conditions. Internal digital filtering parameters are software configurable, allowing suppression of contact bounce and high-frequency noise on 24 V DC signal lines. The architecture supports deterministic state detection suitable for high-speed discrete signal acquisition in FA-M3 I/O scanning cycles. Frequently Asked Questions Q: Can the module be hot-swapped during FA-M3 system operation?A: Hot-swap capability depends on the base unit configuration. Electrical removal during backplane energization may result in signal interruption and should follow system power-down procedures unless explicitly supported by the rack configuration. Q: Does each input channel share a common return path?A: Input channels are grouped with shared common terminals per isolation group. Channel-to-channel isolation is implemented via photocouplers, not full per-channel galvanic isolation. Q: What is the effect of input filter adjustment on response time?A: Increasing the digital filter time introduces additional delay beyond the default <= 0.1 ms response window, reducing sensitivity to short-duration pulses. Field Installation Guidelines Backplane insertion must be performed with system power removed unless the FA-M3 base unit explicitly supports live insertion. Ensure correct alignment of the 40-pin connector to prevent pin deformation. Field wiring should be routed through shielded cable assemblies to minimize electromagnetic coupling on 24 V DC input lines. Shield grounding should be terminated at a single-point earth reference to avoid ground loop currents. Maintain separation between input signal cables and high-voltage or switching power lines to reduce induced noise on high-speed channels.

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  • Penjualan -50% Yokogawa F3DA04-6R Analog Output Module Yokogawa F3DA04-6R Analog Output Module

    Yokogawa Yokogawa F3DA04-6R Analog Output Module

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    Yokogawa F3DA04-6R Analog Output Module Configured for digital-to-analog signal conversion in FA-M3 controller output processing, the Yokogawa F3DA04-6R (F3DA04) Analog Output Module provides direct electrical execution of 4-channel isolated analog signal generation for voltage and current loop interfaces within FA-M3 backplane systems. Suffix Breakdown&Model Matrix No documented mechanical or functional suffix segmentation beyond full model designation F3DA04-6R is provided in the source specification. The “-6R” identifier is treated as an ordering variant without disclosed functional partitioning. Hardware Specifications Parameter Specification ModelBrand Yokogawa F3DA04-6R Weight Approx. 190 g PowerConsumption 5 VDC: 360 mA (internal), 24 VDC: approx. 120 mA (external supply) Number of Channels 4 isolated analog output channels Output Types Voltage: -10 to +10 VDC, 0 to 10 VDC, 1 to 5 VDC; Current: 4 to 20 mA DC Resolution 16-bit signed data Conversion Speed 100 us per channel Isolation Channel-to-channel isolation via photocoupler Withstand Voltage 500 VAC for 1 min Terminal Interface 18-point detachable terminal block (M3 screw) DCS Output Channel Isolation Architecture The Yokogawa F3DA04-6R implements channel-to-channel and channel-to-backplane isolation using photocoupler-based separation stages. Within FA-M3 system architecture, analog output generation is decoupled from CPU logic domain, preventing ground potential propagation across field wiring loops. This design aligns with process control loop segmentation requirements for mixed voltage/current output configurations, including 4-20 mA loop-driven actuator interfaces. Frequently Asked Questions Q: Can output channels be configured independently for voltage and current modes?A: Yes. Each channel supports software-defined selection between voltage and current output ranges without hardware jumper configuration. Q: What is the behavior during CPU stop condition?A: The module supports output hold or preset fallback behavior depending on system configuration, maintaining last valid or predefined analog values. Q: Is hot-swap operation supported on the terminal block?A: Terminal block is mechanically detachable; however, field wiring removal under energized conditions is not specified as supported. Field Installation Guidelines Shielded twisted-pair cabling shall be used for all analog output wiring to reduce electromagnetic coupling into 4-20 mA and voltage loops. Shield termination shall be referenced to frame ground (FG) at a single point to prevent ground loop formation. External 24 VDC supply must be applied to designated power terminals prior to analog loop activation. Terminal torque for M3 screws shall follow standard industrial control cabinet practices to ensure stable contact impedance. Channel wiring separation is required when routing mixed current and voltage outputs to minimize cross-coupling.

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  • Penjualan -50% Yokogawa F3CU04-1S Temperature PID Control Module Yokogawa F3CU04-1S Temperature PID Control Module

    Yokogawa Yokogawa F3CU04-1S Temperature PID Control Module

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    Yokogawa F3CU04-1S Temperature PID Control Module The Yokogawa F3CU04-1S, also cataloged as the F3CU04-1S Temperature PID Control Module, operates as a dedicated hardware component for multi-loop temperature regulation within FA-M3 Range-Free Multi-Controller systems. It provides direct execution of continuous and time-proportional PID outputs for simultaneous heating and cooling control across four independent loops. HardwareSpecifications Parameter Specification ModelBrand Yokogawa F3CU04-1S Origin Japan Weight 300 g approx. Dimensions Double-slot module OperatingTemp 0 degC to 55 degC StorageTemp -20 degC to 75 degC OperatingHumidity 10% to 90% RH non-condensing PowerConsumption 470 mA at 5 VDC Number of Control Loops 4 loops Input Type Thermocouples, RTDs, DC voltage per channel Input Accuracy ±0.1% full scale Input Resolution 0.1 degC Sampling Period 200 ms Control Output Types Time-proportional PID (Open Collector), Continuous PID 4-20 mA Alarm Outputs 4 per loop with ON-delay function External Connection Two 18-point terminal blocks with M3.5 screws Warm-up Time 30 minutes min Max Ambient Temp Change Rate 10 degC/h Process Control Features The module supports isolated input channels for precise loop-to-loop regulation and cold junction compensation (CJc) for thermocouple inputs. Continuous 4-20 mA outputs integrate directly with analog actuators, while embedded dynamic auto-tuning recalculates PID constants based on setpoint changes. Channel-to-channel isolation reduces electrical interference between loops. Frequently Asked Questions Q: VnA: Can the F3CU04-1S be hot-swapped without system interruption?A: No, this module requires power-down prior to insertion or removal to maintain loop integrity. Q: VnA: Are the PID parameters retained after power loss?A: Yes, all setpoints and PID constants are stored in internal non-volatile EEPROM. Q: VnA: What is the maximum backplane current draw per module?A: The module consumes 470 mA at 5 VDC, and backplane ratings should account for cumulative loop modules. Field Installation Guidelines Mount the module in a vertical orientation on the FA-M3 base plate. Connect external devices to the 18-point terminal blocks using M3.5 screws; torque to recommended industrial standards. Maintain at least 20 mm spacing between modules to prevent thermal buildup. Ensure signal cables are shielded and grounded at one end to minimize electrical noise. Avoid routing high-voltage AC lines parallel to thermocouple or RTD wiring to prevent cross-talk. Allow a minimum warm-up of 30 minutes before critical loop tuning operations.

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  • Penjualan -50% Bus Interface Module | EB511-10 | Yokogawa Bus Interface Module | EB511-10 | Yokogawa

    Yokogawa Bus Interface Module | EB511-10 | Yokogawa

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    Yokogawa EB511-10 Bus Interface Module The Yokogawa EB511-10 (also cataloged as the EB511-10 S2) Bus Interface Module serves as the primary EB511-10 Bus Interface Module utilized to execute ER Bus communication across CENTUM CS, CENTUM 3000, and CENTUM VP platforms. Hardware Specifications Parameter Specification Manufacturer Yokogawa Electric Corporation Model Number EB511-10 (Alternative: EB511-10 S2) Product Type Bus Interface Module Function ER Bus Interface Communication System Compatibility CENTUM CS, CENTUM 3000, CENTUM VP DCS Physical Layer Interface IEEE 802.3 10BASE-2 standard Communication Speed 10 Mbps Power Supply System backplane powered Operating Temperature 0 degC to 50 degC Storage Temperature -20 degC to 70 degC Dimensions 1.0" x 5.0" x 5.0" (2.5 cm x 12.7 cm x 12.7 cm) Weight Approx. 0.3 kg (9.0 oz) Country of Origin Japan HS/Tariff Code 8517620050 Process Control Features Supports 4-20 mA HART loop protocol integration for channel-level instrumentation feedback. Provides channel-to-channel isolation to minimize cross-talk and maintain signal integrity across multiple bus lines. Incorporates cold junction compensation (CJc) for accurate temperature-dependent signal conversion and measurement stability. Frequently Asked Questions Q: Does the EB511-10 support hot-swapping on the backplane?A: No, the module requires system power-down before insertion or removal to maintain bus integrity and avoid data errors. Q: What is the typical backplane current load for this module?A: Power is drawn directly from the system backplane; typical consumption aligns with standard Yokogawa bus modules at 5 VDC nominal. Q: Can firmware updates be applied independently?A: Firmware is generally managed at the DCS controller level; the module does not support standalone firmware flashing. Field Installation Guidelines Mount the module on the designated Yokogawa rack/backplane slot, ensuring full insertion with mechanical retention engaged. Verify shielded ER Bus cables are grounded at a single point to reduce electromagnetic interference. Maintain minimum bend radius for twisted pair bus wiring and avoid proximity to high-voltage AC lines. Ensure ambient temperature is within 0 degC to 50 degC during installation and operation.

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  • Penjualan -50% Digital Terminal Board | SED4D-01 | Yokogawa Digital Terminal Board | SED4D-01 | Yokogawa

    Yokogawa Digital Terminal Board | SED4D-01 | Yokogawa

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    Yokogawa SED4D-01 Digital Terminal Board Configured for signal termination and digital I/O interfacing in ProSafe-RS Safety Instrumented System, the Yokogawa SED4D-01 (SED4D-01 Digital Terminal Board) provides direct physical/electrical execution between SCU/SNU safety controllers and field-side digital input wiring associated with SDV144 modules. Suffix Breakdown & Model Matrix No suffix segmentation or internal model derivation is defined for SED4D-01 in the provided documentation. The device is referenced as a single-order hardware unit within the ProSafe-RS terminal board lineup. Hardware Specifications Parameter Specification ModelBrand Yokogawa SED4D-01 Origin Japan Weight Approx. 1.5 kg OperatingTemp -20 degC to +70 degC PowerConsumption Dual 24 VDC input system (20 A combined capacity) System Compatibility ProSafe-RS Safety Instrumented System Channel Configuration 16 channels x 2 Target Module SDV144 Digital Input Module Interface Cable AKB331 Dielectric Strength 500 VAC (1 min, input to case) Insulation Resistance >= 10 MOhm at 500 VDC Terminal Type M4 screw terminals Yokogawa ProSafe-RS Signal Termination Characteristics The SED4D-01 implements channel-to-terminal mapping for SDV144 digital input acquisition, maintaining controlled impedance termination across multi-channel field wiring. The architecture supports redundant 24 VDC feeding paths, with internal power path monitoring indicated via status LED behavior. Integration assumes deterministic digital state acquisition under ProSafe-RS scan cycle timing, with emphasis on stable logic-level discrimination under industrial noise conditions typical of DCS input backplanes. Channel isolation is implemented at terminal distribution level to reduce cross-coupling between adjacent field loops and maintain signal integrity under dense cabinet wiring layouts. Frequently Asked Questions Q: Does the SED4D-01 support hot-swap replacement during system operation?A: The terminal board is mechanically replaceable, but field wiring disconnection and system shutdown procedures are required. It is not designed for live hot-swap under energized field loops. Q: What is the function of dual 24 VDC inputs?A: Dual supply paths provide redundant power distribution to the terminal board internal circuitry, allowing continuity of terminal signal conditioning if one supply path is lost. Q: Is signal isolation implemented per channel?A: Isolation is implemented at board-level and channel grouping level according to ProSafe-RS architecture, not as fully independent per-channel galvanic isolation. Field Installation Guidelines Ensure all field wiring is de-energized prior to installation. Use shielded twisted pair cables for digital input lines where applicable, with shield termination performed at designated cabinet ground points only. Maintain separation between power conductors and signal wiring to reduce induced noise coupling. Tighten M4 terminal screws to manufacturer torque specification defined in ProSafe-RS cabinet installation standards. Verify AKB331 interface cable routing is free from mechanical stress and does not exceed minimum bend radius requirements inside the control cabinet.

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  • Penjualan -50% Ethernet Interface Module | Yokogawa | F3LE11-1T Ethernet Interface Module | Yokogawa | F3LE11-1T

    Yokogawa Ethernet Interface Module | Yokogawa | F3LE11-1T

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    Yokogawa F3LE11-1T Ethernet Interface Module Configured for Ethernet communication and remote programming execution in FA-M3 controller network environments, the FA-M3 F3LE11-1T (F3LE11-1T Ethernet Interface Module) provides direct physical/electrical execution for IEEE 802.3 based industrial communication over 10BASE-T and 100BASE-TX infrastructures. The module operates as an I/O slot-mounted communication interface for FA-M3 range-free multi-controller systems, enabling TCP/IP based data exchange, SMTP/POP3 messaging, and higher-level link services for sequence CPU device access and remote program management. Suffix Breakdown & Model Matrix F3LE11-1T: Fixed configuration Ethernet interface module designation F3: FA-M3 platform series identifier LE11: Ethernet interface function block 1T: Revision / hardware variant identifier (no further sub-decoding defined in source data) Hardware Specifications Parameter Specification ModelBrand FA-M3 F3LE11-1T Origin Not specified in provided datasheet Weight 100 g Dimensions 28.9 mm (W) x 100 mm (H) x 83.2 mm (D) OperatingTemp 0 to 55 degC StorageTemp -20 to 75 degC PowerConsumption 330 mA max Network Interface 10BASE-T / 100BASE-TX Protocol Stack TCP/IP, UDP/IP, ICMP, ARP, SMTP, POP3, HTTP 1.0 Transmission Mode Baseband Ethernet Access Control CSMA/CD Max Segment Length 100 m Data Type Binary / ASCII (higher-level link service only) Industrial Control Network Backplane Communication Behavior The FA-M3 F3LE11-1T integrates into PLC backplane architectures where deterministic scan exchange is synchronized with Ethernet frame handling. In mixed module configurations, backplane bus arbitration governs cyclic refresh of CPU device tables while Ethernet stack tasks operate asynchronously over TCP/IP sockets. Firmware flash compatibility is dependent on controller CPU generation and I/O slot mapping consistency during module initialization. Frequently Asked Questions Q: Does the module support simultaneous 10 Mbps and 100 Mbps operation?A: No. The interface performs automatic negotiation but operates in a single active link state per port (either 10BASE-T or 100BASE-TX). Q: Can SMTP/POP3 functions access internal CPU device registers directly?A: Yes. Device values can be mapped into email payloads through supported higher-level link service functions. Q: What is the impact of installing multiple communication modules in the same FA-M3 base?A: The total number of similar communication modules is limited by CPU type, and backplane resource allocation may restrict concurrent link sessions and sampling trace operations. Field Installation Guidelines Install the module only in designated FA-M3 I/O slots with controller power removed. Ensure correct seating into backplane connectors to maintain signal integrity across the Ethernet PHY interface. Use shielded twisted-pair cable compliant with 10/100BASE-TX standards, with shield termination grounded at a single-point earth reference to minimize noise coupling. Avoid routing Ethernet cables parallel to high-voltage or inverter output lines. Maintain minimum separation consistent with industrial EMC wiring practices. Verify link status LEDs after power-up and confirm IP stack initialization via FA-M3 programming tool before enabling remote access functions.

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  • Penjualan -50% Yokogawa F3AD04-0N FA-M3 Analog Input Module Yokogawa F3AD04-0N FA-M3 Analog Input Module

    Yokogawa Yokogawa F3AD04-0N FA-M3 Analog Input Module

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    Yokogawa F3AD04-0N FA-M3 Analog Input Module Configured for analog voltage acquisition in FA-M3 controller architectures, the Yokogawa F3AD04-0N (F3AD04-0N Analog Input Module) provides direct electrical conversion of field voltage signals into 12-bit digital data for backplane processing. The module implements 4-channel multiplexed A/D conversion with per-channel range selection and optocoupler-based isolation between field input terminals and internal logic circuitry. Signal conditioning functions include scaling and digital filtering for raw-to-engineering unit transformation within the PLC environment. Hardware Specifications Parameter Specification ModelBrand Yokogawa F3AD04-0N Origin Not specified Weight Approx. 170 g Dimensions 28.9 mm x 100 mm x 83.2 mm OperatingTemp 0 degC to 55 degC PowerConsumption 5 VDC, 210 mA Channels 4 analog voltage inputs Resolution 12-bit Input Types 0 to 5 VDC, 1 to 5 VDC, -10 to 10 VDC Input Resistance 1 MOhm Conversion Speed 1 ms per channel Isolation Photocoupler, 500 VDC withstand (1 min) Channel Isolation and Signal Conditioning Architecture (Yokogawa Process Interface Behavior) The Yokogawa FA-M3 analog input structure implements optical isolation between field terminals and internal processing logic to suppress electrical coupling from external instrumentation wiring. Channel grouping shares a common negative reference, while signal conversion is executed through sequential multiplex scanning. Scaling logic allows mapping of raw 12-bit counts into engineering units within a configurable range of -20000 to 20000. Digital filtering can be enabled per channel to attenuate high-frequency noise prior to CPU-level data acquisition. Frequently Asked Questions (FAQ) Q: Can the module perform hot-swap replacement under energized backplane conditions?A: The module is designed for FA-M3 base unit integration; replacement under power requires adherence to system-level backplane insertion rules and input circuit de-energization to avoid transient bus disturbance. Q: Are all channels independently isolated from each other?A: Input channels share a common negative terminal; isolation is implemented only between input group and internal circuitry via photocoupler, not channel-to-channel isolation. Q: Does the module support firmware-based configuration updates?A: Configuration is handled via PLC system parameters; no field firmware upgrade mechanism is implemented at module level. Field Installation Guidelines Field wiring shall be terminated on the detachable 10-point M3.5 terminal block with controlled torque tightening. Shielded cables are recommended for voltage signal integrity, with shield grounding executed at a single system reference point to avoid loop currents. Input voltage must remain within specified selectable ranges; exceeding ±18 VDC absolute maximum may result in input stage damage. Backplane insertion must follow FA-M3 rack sequencing rules to avoid logic initialization faults during module recognition.

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  • Penjualan -50% Yokogawa SNT401-13 Optical ESB Bus Repeater Master Module Yokogawa SNT401-13 Optical ESB Bus Repeater Master Module

    Yokogawa Yokogawa SNT401-13 Optical ESB Bus Repeater Master Module

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    Yokogawa SNT401-13 Optical ESB Bus Repeater Master Module Configured for electrical-to-optical ESB bus signal conversion in ProSafe-RS and CENTUM VP/CS 3000 system architectures, the Yokogawa SNT401-13 (SNT401-13 Optical ESB Bus Repeater Master Module) provides direct physical/electrical execution for ESB backbone extension across fiber-optic transmission segments. Suffix Breakdown & Model Matrix SNT401-13 -1: Standard type, no explosion protection -3: ISA G3 environmental resistance class, extended temperature rating Hardware Specifications Parameter Specification Model SNT401-13 Brand Yokogawa Origin Japan Weight Approx. 0.30 kg Dimensions Not specified OperatingTemp -20 degC to 70 degC PowerConsumption Max 0.5 A (system nest supplied) Function ESB electrical-to-optical signal conversion Network Type ESB Bus (Optical extension) Topology Star / Chain Max Cascading 2 stages Medium Fiber optic cable System Compatibility ProSafe-RS, CENTUM VP, CENTUM CS 3000 Channel-to-Channel Isolation & DCS Signal Integrity Characteristics The SNT401-13 integrates into Yokogawa distributed control and safety architectures where ESB bus segmentation requires optical isolation between control nests. In DCS signal chain design, channel-to-channel isolation is structurally enforced through optical conversion, reducing conductive noise coupling across backplane-connected ESB segments. Within mixed 4-20 mA HART and fieldbus hybrid environments, the module maintains deterministic bus timing by decoupling electrical ground reference continuity between master and remote ESB domains. This architecture aligns with Yokogawa system-level design practices for long-distance node segmentation using fiber-based deterministic backplane extension. Frequently Asked Questions Q: Does the SNT401-13 support hot-swap replacement during system operation?A: Yes. The module supports online replacement when installed within compatible Yokogawa ESB nests, provided system redundancy and node synchronization conditions are met. Q: What is the maximum supported cascading depth?A: The module supports up to 2 optical conversion stages in a cascaded ESB extension architecture. Q: Is external power required for the optical conversion stage?A: No. Power is supplied through the system nest backplane, with a maximum consumption of 0.5 A. Field Installation Guidelines Install module only in designated ESB system nests compatible with SEC401/SEC402 couplers. Ensure fiber optic cables are installed with minimum bend radius compliance to avoid attenuation increase. Maintain separation between optical fiber routing and high-noise power conductors to prevent EMI coupling. Verify correct master-to-slave pairing (SNT401-13 to SNT501-13) before system energization. Ensure grounding of cabinet structure follows standard industrial control panel grounding practices to maintain signal reference stability.

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  • Penjualan -50% ALE111-S53 | Ethernet Communication Module | Yokogawa ALE111-S53 | Ethernet Communication Module | Yokogawa

    Yokogawa ALE111-S53 | Ethernet Communication Module | Yokogawa

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    Yokogawa ALE111-S53 Ethernet Communication Module The Yokogawa ALE111-S53, also cataloged as the ALE111 Ethernet Communication Module, operates as a dedicated hardware component for Modbus and DNP3 slave communication within CENTUM VP and CENTUM CS 3000 platforms. Hardware Specifications Parameter Specification ModelBrand ALE111-S53 Origin Yokogawa, Japan Weight Approx. 0.3 kg Dimensions Module compatible with SSC60, SSC50, SSC57, SNB10D racks OperatingTemp 0 to 55 degC (standard industrial range) PowerConsumption 0.5 A at 5 VDC Interface IEEE 802.3 10BASE-T, Half-duplex Connector RJ-45 (1 port) TransmissionSpeed 10 Mbps TransmissionDistance 100 m over 100 ohm twisted pair cable (unshielded) ConnectionMethod Point-to-point MediaAccessControl CSMA/CD CommunicationFunctions Modbus slave, DNP3 slave NumberOfPorts 1 Channel-to-Channel Isolation The ALE111-S53 incorporates channel-to-channel isolation to prevent cross-interference between digital communication paths. Isolation is designed to withstand up to 500 V AC, maintaining signal integrity in environments with potential ground loops or EMI from adjacent modules. Cold-junction compensation (CJC) is included for temperature-sensitive devices connected via the module, ensuring accurate analog signal interpretation when used with DCS analog input/output expansions. Frequently Asked Questions Q: Can the ALE111-S53 be replaced while the FCS is online?A: Yes, the module supports hot-swap replacement. Ensure the FCS is in a stable state and communication cables are secured to prevent transient errors during replacement. Q: What is the maximum segment distance for 10BASE-T communication?A: The module supports a maximum of 100 m per segment over 100 ohm unshielded twisted pair cable between the module and hub or other network devices. Q: How many devices can be connected per ALE111-S53 module?A: Up to 32 subsystem devices can be addressed per module, with a maximum of 4000 words for data input/output. Field Installation Guidelines Mount the ALE111-S53 on approved rack positions (SSC60, SSC50, SSC57, SNB10D) with secure locking. Ensure RJ-45 cabling maintains twisted-pair integrity; avoid sharp bends and excessive tension. Maintain separation from high-voltage power lines and grounding loops to reduce EMI. For redundant configurations, connect identical modules to separate network switches to avoid single points of failure. Confirm module insertion orientation and locking mechanism engagement before powering the FCS.

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  • Penjualan -50% ANT401-50/CU1T | Yokogawa | Optical ESB Bus Repeater Master Module ANT401-50/CU1T | Yokogawa | Optical ESB Bus Repeater Master Module

    Yokogawa ANT401-50/CU1T | Yokogawa | Optical ESB Bus Repeater Master Module

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    Yokogawa ANT401-50/CU1T Optical ESB Bus Repeater Master Module Configured for electrical-to-optical ESB bus signal conversion within CENTUM VP control architectures, the Yokogawa ANT401-50/CU1T (ANT401-50) Optical ESB Bus Repeater Master Module provides direct physical layer transport for Extended Serial Bus communication over fiber optic media up to 5 km when paired with compatible slave repeater units such as ANT502. The module performs ESB bus signal regeneration, electrical isolation, and optical transmission using dual-core fiber links. It is designed for FCU and FIO Node Unit backplane integration with fixed-slot installation architecture and supports redundant configuration for dual-path ESB communication continuity. Suffix Breakdown & Model Matrix ANT401: Optical ESB Bus Repeater Master Module series designation 50: 5 km transmission class configuration CU1T: Connector unit with built-in ESB bus termination function -5: Standard variant without explosion protection 0: Basic configuration type Hardware Specifications Parameter Specification Model / Brand ANT401-50/CU1T / Yokogawa Origin Japan Weight Approx. 0.25 kg (main unit), ~2.0 kg shipping Operating Temp -20 degC to +60 degC Power Consumption 24 VDC, approx. 0.5 A Function ESB bus electrical-to-optical conversion Max Transmission Distance Up to 5 km (fiber optic link, paired system) Optical Interface LC connector, 2-core Tx/Rx Installation Base FCU / FIO Node Unit slots (IO1-8 architecture) Process Control Bus Signal Isolation and DCS Network Transport The ANT401-50/CU1T implements ESB bus physical layer decoupling through optical conversion with inherent galvanic isolation between FCU backplane electrical domains and remote FIO node segments. In Yokogawa CENTUM VP architectures, ESB communication frames are regenerated at the master repeater stage, eliminating ground potential coupling across distributed node cabinets. The optical transport path uses dual-channel fiber signaling with separate transmit and receive cores. Signal integrity is maintained through deterministic frame reconstruction at each repeater stage, ensuring stable backplane synchronization under multi-node expansion topologies. Frequently Asked Questions Q: Can the ANT401-50/CU1T operate in a hot-swap configuration?A: Hot-swap capability depends on FCU baseplate implementation. The module itself interfaces via fixed backplane slots; removal typically requires ESB bus communication isolation at system level. Q: What is the electrical load on the 24 VDC supply line?A: The module draws approximately 0.5 A at 24 VDC under nominal operation, excluding inrush conditions during initialization. Q: Is redundant fiber routing supported?A: Redundancy is supported through paired master-slave repeater configuration and dual-path ESB topology; physical fiber redundancy depends on system design. Field Installation Guidelines Install only in designated FCU or FIO Node Unit slots (IO1, 3, 5, 7 or paired redundant slots IO1-2, IO3-4, etc.) Maintain LC fiber connector cleanliness; avoid dust contamination during coupling cycles Ensure ESB bus termination is correctly configured using CU1T connector unit where required Route fiber optic cables with minimum bend radius compliant with industrial multimode fiber standards Maintain separation between optical fiber routing and high-noise power cabling to avoid EMI coupling at termination points Verify backplane slot alignment before insertion to prevent connector pin stress

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  • Penjualan -50% Signal Cables | Yokogawa AKB336

    Yokogawa Signal Cables | Yokogawa AKB336

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    Yokogawa AKB336 Signal Cable TheYokogawa AKB336-M010also cataloged astheAKB336 Signal Cable, operates as a dedicated hardware component for point-to-point 20-pin signal interconnection within Yokogawa CENTUM VP, CENTUM CS 3000, and ProSafe-RS Field I/O architectures. The assembly provides fixed electrical continuity between FIO modules and termination hardware via shielded multi-core routing. Suffix Breakdown & Model Matrix AKB336: Base series designation for 20-pin to 20-pin signal cable assembly -M010: Factory-defined cable length variant, 10 m nominal length No further functional segmentation is defined by manufacturer beyond length-coded ordering. Hardware Specifications Parameter Specification ModelBrand Yokogawa AKB336-M010 Origin Japan Weight Approx. 3.0 kg Dimensions Not specified OperatingTemp -20 to 70 degC PowerConsumption Passive component (no supply required) Connector Type 20-pin to 20-pin System Compatibility CENTUM VP / CS 3000 / ProSafe-RS Process Control Signal Integrity Characteristics The AKB336 series is implemented within distributed control environments where deterministic signal routing is required between Field Control Stations and I/O termination assemblies. Within Yokogawa process automation architectures (Yokogawa Electric Corporation), channel-to-channel separation is maintained through shielded conductor geometry to reduce cross-interference in mixed analog/digital signal backplanes operating in 4-20 mA and discrete logic domains. The cable construction supports stable signal propagation under cabinet-level electromagnetic noise conditions typical of densely populated DCS racks. Frequently Asked Questions Q: Does the AKB336-M010 support hot-swap during system operation?A: No. The cable is a passive interconnect assembly and requires de-energized handling before disconnection to avoid signal disruption on connected I/O modules. Q: Is there electrical isolation built into the cable structure?A: Electrical isolation is not active. Isolation is dependent on connected system hardware; the cable provides shielding only. Q: Can the cable be used outside Yokogawa FIO architectures?A: No. Pin mapping and connector geometry are specific to Yokogawa 20-pin FIO interfaces. Field Installation Guidelines Ensure system power is fully isolated before installation or removal Maintain continuous shield termination at designated grounding points on cabinet structure Avoid routing parallel to high-voltage or inverter output cabling Do not exceed minimum bend radius defined by cabinet wiring standards Verify full 20-pin seating alignment before securing connector locks

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  • Penjualan -50% Signal Cables | Yokogawa AKB161-M100 Signal Cables | Yokogawa AKB161-M100

    Yokogawa Signal Cables | Yokogawa AKB161-M100

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    Yokogawa AKB161-M100 Signal Cables The Yokogawa AKB161-M100, also cataloged as the AKB161 Signal Cable, operates as a dedicated hardware component for RS-422/RS-485 serial communication between ALM-side M4 terminals and subsystem M3 terminals within Yokogawa CENTUM VP and ProSafe-RS networks. Hardware Specifications Parameter Specification ModelBrand Yokogawa AKB161 Origin Japan Dimensions Cable length: 100 m (max); crimp terminal sizes: M4/M3 OperatingTemp -20 to 70 degC PowerConsumption N/A (passive cable) CableType RS-422/RS-485 multi-pair shielded Termination M4 screws (ALM side), M3 screws (subsystem side) CommunicationProtocols Modbus RTU/ASCII, FA-M3, MELSEC, SLC500 Process Control Connectivity The cable design ensures channel-to-channel isolation to reduce interference between RS-422/RS-485 pairs across long runs. Shielding minimizes electromagnetic interference (EMI) in industrial environments. The M4-to-M3 asymmetric terminal configuration guarantees correct physical alignment with Yokogawa modules and peripheral devices. This cable can operate in conjunction with 4-20 mA HART loops or FOUNDATION Fieldbus/ProfibusPA-connected networks when integrated into Yokogawa DCS and SIS architectures. Frequently Asked Questions Q: Can the AKB161-M100 be used beyond 100 m?A: Cable length is limited to 100 m per Yokogawa specification. Exceeding this may cause signal degradation. Q: Is the cable hot-swappable on ALR121 modules?A: No, disconnection while the system is active may lead to communication errors. Q: How should the shielding be grounded?A: Connect shielding to a single-point ground at the module end to reduce EMI without creating ground loops. Field Installation Guidelines Route cables away from high-power conductors to minimize inductive interference. Maintain twisted-pair integrity; avoid untwisting more than 5 mm at termination points. Use M4 screws for ALR121 module terminals and M3 screws for external device terminals; ensure proper torque per industrial electrical standards. Verify shield continuity along the cable run; avoid sharp bends that may compromise shielding or conductor insulation. For runs exceeding 50 m, verify signal integrity with a loopback test before commissioning.

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  • Penjualan -50% AAI141-H00/CCC01 Analog Input Module | Yokogawa

    Yokogawa AAI141-H00/CCC01 Analog Input Module | Yokogawa

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    Yokogawa AAI141-H00/CCC01 Analog Input Module Configured for 4-20 mA current acquisition in Yokogawa CENTUM VP DCS Field Input architecture, the Yokogawa AAI141-H00/CCC01 (AAI141-H00/CCC01 Analog Input Module) provides direct physical/electrical execution of multi-channel current loop measurement with HART protocol overlay for field device communication across CENTUM VP and CENTUM CS 3000 I/O networks. Suffix Breakdown & Model Matrix AAI141: 16-channel analog input module for 4-20 mA DC signals H: HART communication enabled interface layer 00: base configuration index CCC01: connector cover option for MIL cable termination protection Hardware Specifications Parameter Specification ModelBrand Yokogawa AAI141-H00/CCC01 Origin Japan Weight 0.2 kg PowerConsumption Backplane powered, value not specified Input Channels 16 channels Input Signal 4-20 mA DC Allowable Input Current 27 mA max Accuracy +/-16 uA Communication HART protocol enabled Yokogawa HART Loop Integration and Channel Acquisition Behavior The module implements 4-20 mA loop acquisition with embedded HART digital superimposition, enabling simultaneous analog process variable sampling and field device parameter exchange. HART frames are demodulated in parallel with current measurement without interrupting loop continuity. Channel aggregation is performed at backplane level with synchronized scan timing to maintain deterministic input refresh across 16 channels. Signal integrity is maintained through loop impedance matching and controlled current sink architecture at the input stage. Frequently Asked Questions Q1: Can individual channels operate independently under HART communication?A1: Yes. Each channel supports independent HART communication while maintaining parallel 4-20 mA analog acquisition without shared modulation dependency. Q2: Does the module support hot-swap insertion on the backplane?A2: Hot-swap capability depends on system rack configuration. Electrical isolation is handled at rack level; field loops must remain powered during module replacement per system design rules. Q3: What is the effect of channel density on scan cycle behavior?A3: All 16 channels are multiplexed through internal acquisition logic. Increased channel utilization does not change per-channel resolution but affects total scan frame scheduling. Field Installation Guidelines Ensure 4-20 mA loops are de-energized or current-limited before terminal engagement. Maintain MIL connector alignment before securing the CCC01 connector cover. Use shielded twisted pair cabling for all HART-enabled loops to reduce high-frequency interference coupling. Ground cable shields at a single-point earth reference within the marshalling cabinet. Verify loop polarity and transmitter compliance voltage before system energization. Avoid routing input signal cables parallel to high-voltage switching conductors.

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  • Penjualan -50% ESB Bus Cable | Yokogawa YCB301-C100 ESB Bus Cable | Yokogawa YCB301-C100

    Yokogawa ESB Bus Cable | Yokogawa YCB301-C100

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    Yokogawa YCB301-C100 ESB Bus Cable The Yokogawa YCB301-C100, also cataloged as the YCB301 ESB Bus Cable, operates as a dedicated hardware component for data exchange between Field Control Units (FCUs) and Advanced Network Bus (ANB) node units within CENTUM VP and CENTUM CS 3000 systems. Hardware Specifications Parameter Specification Model Brand Yokogawa YCB301-C100 Origin Japan Weight 1.5 kg Dimensions Cable length 1.0 meter, 36-pin to 36-pin connectors Operating Temp -20 to 70 degC Power Consumption Passive signal cable; negligible Shielding Enhanced Shielded (Heavy-duty anti-EMI) Cable Type ESB Bus Cable (FIO communication) Connector Type 36-pin male/female Process Control Network Characteristics The cable provides channel-to-channel isolation to prevent cross-talk in dense module arrangements. It is compatible with 4-20 mA HART loop protocol and supports FOUNDATION Fieldbus and Profibus PA connectivity. Cold junction compensation (CJc) is inherently supported via the connected FCU interfaces to maintain signal integrity across industrial temperature ranges. Frequently Asked Questions Q: VnA: Can the YCB301-C100 be used in redundant ANB configurations?A: Yes, the cable supports redundant ANB connections with no additional modifications, ensuring synchronous data transfer. Q: VnA: Is hot-swap permitted for this bus cable?A: Hot-swap of the cable is not recommended; all connections should be made with the system powered down to prevent transient signals. Q: VnA: What measures should be taken to prevent EMI interference?A: Ensure the shield termination is properly grounded at the FCU or ANB node end. Avoid routing near high-current or high-frequency lines. Field Installation Guidelines Route the cable to minimize sharp bends; maintain bend radius > 50 mm. Secure connectors firmly to prevent signal degradation due to vibration. Ground the shield at one end only to avoid ground loops. Avoid running parallel to high-power AC lines; use perpendicular crossing if necessary. Use cable ties sparingly to prevent pinching of the shield or conductors.

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  • Penjualan -50% KS1-10*B | Yokogawa | KS1 Signal Cable (40-40 pins) KS1-10*B | Yokogawa | KS1 Signal Cable (40-40 pins)

    Yokogawa KS1-10*B | Yokogawa | KS1 Signal Cable (40-40 pins)

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    Yokogawa KS1-10*B KS1 Signal Cable The Yokogawa KS1-10*B, also cataloged as the KS1 Signal Cable, operates as a dedicated hardware component for transmitting low-noise 20-pair signal data within CENTUM VP and ProSafe-RS DCS networks. Its 40-to-40 pin dual connector arrangement ensures consistent electrical continuity and channel-to-channel isolation across process control I/O loops. Hardware Specifications Parameter Specification ModelBrand KS1-10*B Origin Japan Weight 2.0 kg (approximate, depends on length) Dimensions Cable length up to 10 m; 40-pin connectors OperatingTemp -20 to 70 degC PowerConsumption Passive signal cable; negligible power draw CableType 20-pair shielded ConnectorType 40-pin to 40-pin dual InsulationResistance ≥100 MΩ at 500 V DC WithstandVoltage Compatible with standard DCS loop voltages Channel-to-ChannelI solation Features The KS1 series employs twisted-pair shielding to reduce crosstalk between adjacent signal pairs. Dual 40-pin connectors maintain physical separation of parallel channels, supporting low-noise data transmission within FOUNDATION Fieldbus and 4-20 mA HART loop architectures. Cold junction compensation (CJc) for temperature-sensitive signal lines is supported, maintaining signal integrity in varying thermal environments. Frequently Asked Questions Q: Does the KS1-10*B support hot-swap of connected modules?A: The cable is passive and does not support active hot-swap; disconnection should occur with system power off to prevent signal disturbances. Q: What is the recommended method to terminate shields?A: Connect the cable shielding to ground at a single point near the controller or I/O module to minimize ground loop currents. Q: Can the cable be routed in close proximity to high-current lines?A: Maintain separation from high-current AC lines to avoid induced noise; if unavoidable, use additional shielded conduits. Field Installation Guidelines Route the KS1 cable away from sources of electromagnetic interference, including power transformers and variable-frequency drives. Ensure that connector pins align precisely to prevent bent pins; do not force insertion. Secure cable along trays or brackets to prevent mechanical strain on connectors. Ground shielding at the DCS controller or I/O module end only; avoid multiple grounding points. Avoid tight bending; maintain bend radius at least 10 times the cable diameter. Label both ends clearly for signal pair identification during maintenance.

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  • Penjualan -50% AKB337-M010 I/O Signal Cable | Yokogawa AKB337-M010 I/O Signal Cable | Yokogawa

    Yokogawa AKB337-M010 I/O Signal Cable | Yokogawa

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    Yokogawa AKB337-M010 I/O Signal Cable Configured for point-to-point electrical interconnection of distributed I/O modules in Yokogawa CENTUM VP and CENTUM CS 3000 systems, the Yokogawa AKB337-M010 (AKB337-M010 signal cable) provides direct 50-pin parallel signal routing between control module interfaces and terminal assemblies. The assembly executes fixed-density digital and analog signal transfer through shielded multicore conductors with defined connector pin mapping. Suffix Breakdown & Model Matrix Parameter Specification Base Model AKB337 Suffix Code M010 Length Definition 1.0 m cable assembly Connector Type 50-pin to 50-pin interface Configuration Rule Fixed harness, non-field configurable Hardware Specifications Parameter Specification Model Brand Yokogawa AKB337-M010 Origin Japan Dimensions 1.0 m cable length (M010 designation) OperatingTemp -20 degC to 70 degC PowerConsumption Passive component, no power consumption Signal Interface 50-pin parallel I/O signal bus Shielding EMI-shielded cable assembly Application Layer DCS I/O module interconnection Process Control Signal Integrity Characteristics The Yokogawa AKB337-M010 implements fixed impedance routing for multi-channel I/O signal transfer within Yokogawa DCS architectures. In process control environments, signal integrity is maintained through controlled conductor pairing and overall shield continuity, supporting stable transmission of 4-20 mA analog loops and discrete I/O states across backplane-adjacent terminal structures. Channel grouping structure is aligned with multi-point I/O module addressing, where cross-channel interference is mitigated through physical separation within the harness geometry and grounded shielding termination at connector shells. This design supports stable integration with Yokogawa distributed control architectures using standardized signal mapping conventions. Frequently Asked Questions Q: Can the AKB337-M010 cable be hot-plugged during system operation?A: Hot insertion is not supported. Signal disconnection may introduce transient voltage spikes on connected I/O channels. Q: Does the cable support mixed analog and digital signal transmission?A: Yes. The 50-pin architecture supports mixed I/O routing according to module-side signal allocation, without protocol conversion inside the cable. Q: Is shielding continuity maintained across both connectors?A: Yes. The shielding layer is terminated at connector housings to maintain continuous EMI grounding between I/O interfaces. Field Installation Guidelines Maintain separation between AKB337-M010 signal routing and power conductors exceeding switching voltage levels to reduce inductive coupling. Ensure both connector ends are fully seated to achieve complete pin engagement across all 50 contact points. Shield termination should be bonded to system ground at designated cabinet grounding points only, avoiding multiple ground loops across panel sections. Cable bending radius must remain within standard industrial harness limits to prevent conductor fatigue at connector strain relief zones. Do not apply mechanical tension on connector heads during routing or panel installation.

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  • Penjualan -50% Yokogawa AKB337-M015 | Signal Cable Yokogawa AKB337-M015 | Signal Cable

    Yokogawa Yokogawa AKB337-M015 | Signal Cable

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    Yokogawa AKB337-M015 Signal Cable The Yokogawa AKB337-M015, also cataloged as the AKB337 Signal Cable, operates as a dedicated hardware component for high-fidelity signal transmission between I/O modules such as ADV161 and ADV561 within Yokogawa DCS platforms. It provides stable electrical pathways for 50-pin interconnections in industrial process control networks. Hardware Specifications Parameter Specification ModelBrand Yokogawa AKB337-M015 Origin Japan Weight Approx. 0.4 kg Dimensions 15 meters length, 7.5 mm diameter OperatingTemp -20 to +70 degC PowerConsumption N/A (passive signal cable) CableType Signal Cable, 50-pin to 50-pin ConductorResistance 0.12 ohm/m Capacitance 100 pF/m Impedance 120 ohm ConnectorType Solderless lug with M4 screws JacketMaterial PVC, UL1581 flame retardant MinimumBendRadius 75 mm (10 x cable diameter) FlexLife 1 million cycles Application Connects Yokogawa I/O modules to terminal boards or interface units CompatibleSystems CENTUM VP, CENTUM CS 3000 Process Control Signal Integrity The AKB337 cable design maintains channel-to-channel isolation to reduce crosstalk and signal degradation over extended distances. It is suitable for analog and digital loop communication, supporting 4-20 mA HART protocol and interfacing with FOUNDATION Fieldbus or Profibus PA systems when integrated with compatible I/O modules. The PVC jacket provides environmental shielding and limited EMI suppression. Frequently Asked Questions Q: Can the AKB337 cable be hot-swapped while modules are powered?A: No. Connectors must be de-energized before insertion or removal to prevent signal errors and potential module damage. Q: How should the cable be routed to minimize interference?A: Avoid parallel routing alongside high-voltage power lines. Maintain separation and utilize grounded metallic trays if available. Q: Are there any specific connector torque requirements?A: Use standard M4 screw torque values (approximately 0.5 to 0.6 N·m) to ensure secure mechanical and electrical contact without deforming the connector. Field Installation Guidelines Align connector pins carefully before tightening screws to avoid misalignment. Respect minimum bend radius (75 mm) to prevent internal conductor stress. Avoid tight looping or repeated sharp bends during installation. Shielded cables should be grounded at one end to maintain noise immunity. Maintain separation from high-voltage or high-current power lines to reduce EMI risk. Use cable management channels or trays to prevent mechanical strain and accidental disconnections.

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