Yaskawa DX200 JARCR-YPC21-1 / JARCR-YPC21-2 / JANCD-YSF22B-E / JUSP-ACP35JAA Servo Controller – Obsolete DX200 Spare Part

Model: DX200 JARCR-YPC21-1 JARCR-YPC21-2 DX200 JANCD-YSF22B-E JUSP-ACP35JAA

Brand Yaskawa
Model DX200 JARCR-YPC21-1 JARCR-YPC21-2 DX200 JANCD-YSF22B-E JUSP-ACP35JAA
RFQ-ready model route Obsolete and surplus sourcing Export follow-up by model list

Product Overview

Commercial availability is handled through direct RFQ, model verification and export-oriented follow-up rather than public cart checkout.

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Commercial Path

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Technical Dossier

Product Details And Specifications

Yaskawa DX200 JARCR-YPC21-1 / JARCR-YPC21-2 / JANCD-YSF22B-E / JUSP-ACP35JAA Servo Controller – Obsolete DX200 Spare Part

RFQ support for obsolete parts: Send the model number, required quantity and destination so DriveKNMS can confirm sourcing options before quotation.

Technical Specifications

Parameter Detail
Manufacturer Yaskawa Electric Corporation
Compatible Controller Yaskawa DX200
Part Numbers JARCR-YPC21-1 / JARCR-YPC21-2 / JANCD-YSF22B-E / JUSP-ACP35JAA
Function Servo control board / power conversion unit assembly
Series DX200 Robot Controller
Discontinuation Status Discontinued – no longer available through Yaskawa standard channels
Country of Origin Japan
Typical Application 6-axis industrial robot servo drive management within DX200 controller cabinet

Note: Electrical parameters specific to individual sub-boards are not published here to prevent misapplication. Contact us for verified technical documentation prior to installation.

Solving the Discontinued Hardware Crisis

The Yaskawa DX200 controller platform was deployed extensively across automotive, electronics, and general manufacturing from the mid-2000s through the 2010s. Facilities that integrated DX200-based robotic cells during that period built production workflows, safety certifications, and maintenance procedures around this architecture. The controller's servo management boards — including the JARCR-YPC21 series and the JANCD-YSF22B-E safety function board — are central to the system's ability to coordinate multi-axis motion with the precision those lines depend on.

Yaskawa's end-of-life policy for the DX200 means that OEM replacement parts are no longer manufactured. When one of these boards degrades — through capacitor aging, firmware corruption, or physical damage — the facility faces a binary choice: locate a verified replacement unit, or commit to a full controller upgrade. The upgrade path is not simply a hardware swap. It requires re-integration of the robot teach pendant interface, re-validation of all motion programs, re-certification under applicable safety standards (ISO 10218, ANSI/RIA R15.06), and in many cases, mechanical modifications to the controller cabinet. For a multi-robot cell, this process can take 6–18 months and consume capital budgets that were not planned for the current fiscal cycle.

For facilities managing 5–20 DX200 cells, a structured spare parts strategy targeting the highest-failure-rate boards can realistically extend the productive life of the installed base by 5–10 years. The servo control and power conversion assemblies covered by this listing are among the components most likely to require replacement before the mechanical robot arm itself reaches end of service life.

Condition & Reliability Assurance

All units offered by DriveKNMS pass a structured 5-step inspection protocol before being made available for sale:

  • Step 1 – Electrolytic Capacitor Assessment: Capacitor aging is the primary failure mode in servo control boards of this generation. Each board is inspected for bulging, leakage, and ESR deviation from specification.
  • Step 2 – Firmware Version Verification: The firmware revision is confirmed and documented. Boards with corrupted or mismatched firmware versions are quarantined and not offered for sale.
  • Step 3 – Pin and Connector Inspection: All edge connectors, board-to-board connectors, and terminal blocks are inspected under magnification for oxidation, corrosion, and mechanical deformation.
  • Step 4 – PCB Surface Inspection: Solder joints, trace integrity, and component seating are reviewed for cold joints, micro-cracks, and heat stress indicators.
  • Step 5 – Functional Verification (where test fixtures are available): Units are powered and tested against known-good reference signals where our test infrastructure supports the specific board type.

Key Features for System Maintenance

  • Drop-in replacement: The JARCR-YPC21-1 and JARCR-YPC21-2 are direct substitutes within the DX200 controller cabinet. No hardware modification to the cabinet is required.
  • No reprogramming required: Robot motion programs, I/O mappings, and system parameters stored in the DX200's non-volatile memory are not affected by a board-level replacement. The controller resumes operation with existing configurations intact.
  • Avoids engineering reconstruction costs: A board-level repair eliminates the need for system integrator involvement, motion re-teaching, and safety re-validation — costs that typically dwarf the price of the spare part itself.
  • Preserves existing safety certifications: Replacing a like-for-like board within the same controller generation does not trigger re-certification requirements under most applicable standards, unlike a full controller platform migration.

Q: How do I confirm the unit is genuine and not a counterfeit?
A: All units are sourced from documented industrial surplus channels. We provide photographs of the physical unit, including board markings, revision labels, and serial numbers, before order confirmation. We do not sell units we cannot physically verify.

Q: Can you source other DX200 boards not listed here?
A: Yes. Contact us with your specific part number. We maintain an active sourcing network for Yaskawa DX200, Motoman UP-series, and related legacy controller components.

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