Yaskawa SGMPH-04AAAP20 AC Servo Motor – Obsolete Sigma-II Spare Part

Model: SGMPH-04AAAP20 802-5794C, 199014 N-2304-1-K00AA SI 716-082039-339

Brand Yaskawa
Model SGMPH-04AAAP20 802-5794C, 199014 N-2304-1-K00AA SI 716-082039-339
RFQ-ready model route Obsolete and surplus sourcing Export follow-up by model list

Product Overview

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Technical Dossier

Product Details And Specifications

Yaskawa SGMPH-04AAAP20 AC Servo Motor – Obsolete Sigma-II 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 Value
Manufacturer Yaskawa Electric Corporation
Model Number SGMPH-04AAAP20
Series Sigma-II (SGMPH)
Rated Output 400 W
Motor Type AC Servo Motor (Permanent Magnet Synchronous)
Encoder Type Incremental encoder (17-bit)
Shaft Configuration Straight shaft without key
Mounting Flange mount
Country of Origin Japan
Production Status Discontinued / Obsolete – No longer manufactured
Compatible Servo Drive Yaskawa SGDH series (Sigma-II)
Typical Legacy Systems Yaskawa Sigma-II motion control platforms; older CNC and robotic workcells built on SGDH drives

Note: Electrical parameters are listed based on verified published specifications. Parameters not confirmed by documentation are intentionally omitted to protect equipment safety.

Solving the Discontinued Hardware Crisis

The Sigma-II SGMPH series was engineered for precision motion in applications where positioning repeatability and torque density were non-negotiable — semiconductor handling, packaging machinery, and multi-axis CNC systems. These machines were built to run for 20 to 30 years. The servo motor was not.

When Yaskawa discontinued the Sigma-II platform, it created a structural problem for plant managers: the mechanical infrastructure surrounding these drives — gearboxes, tooling, fixtures, safety interlocks — was designed around Sigma-II form factors and communication protocols. Migrating to Sigma-V or Sigma-7 is not a drop-in exercise. It requires new cabling, new parameter tuning, updated PLC logic, and in many cases, mechanical adapter plates. The engineering cost alone can justify keeping the original hardware running for another decade — provided the spare parts exist.

That is the precise function this unit serves. A single SGMPH-04AAAP20 in your maintenance inventory eliminates the single-point-of-failure risk that would otherwise force an unplanned capital expenditure.

How to Extend Automation Asset Life by 5–10 Years: A Maintenance Strategy for Plant Management

For factories operating legacy Yaskawa Sigma-II systems, the decision to upgrade versus maintain is rarely straightforward. The following framework is used by maintenance engineers who have successfully deferred system retirement by 5 to 10 years without compromising production reliability:

1. Conduct a criticality audit. Map every servo axis on the line. Identify which axes, if failed, would halt the entire cell versus which would allow partial production. Prioritize spare procurement for Tier-1 critical axes first. The SGMPH-04AAAP20 is commonly found in Tier-1 positions in pick-and-place and conveyor indexing applications.

4. Manage the drive-motor pair as a system. The SGMPH-04AAAP20 is matched to the SGDH-04AE (or equivalent) servo drive. If the motor is replaced, verify that the drive's auto-tuning parameters are re-established. Mismatched inertia ratios after a motor swap are a common source of post-maintenance instability.

5. Document firmware and parameter files. Before any maintenance event, back up the SGDH drive parameters. Yaskawa's SigmaWin+ software supports parameter file export. A lost parameter file on a discontinued drive can add days to a recovery timeline.

This approach does not require capital approval. It requires a maintenance budget line and a reliable source for obsolete parts. DriveKNMS exists to be that source.

Condition & Reliability Assurance

Sourcing a discontinued servo motor from the secondary market carries legitimate risk. Our QA process is structured to address the failure modes specific to aged electromechanical components:

Step 1 – Visual and mechanical inspection. Shaft runout measurement, bearing play assessment, housing inspection for impact damage or corrosion. Units with compromised mechanical integrity are rejected at this stage.

Step 2 – Electrolytic capacitor assessment. Where applicable on associated drive components, capacitor ESR is measured. Aged capacitors with elevated ESR are flagged. For motors, winding insulation resistance is tested with a megohmmeter (minimum 100 MΩ at 500 VDC).

Step 3 – Encoder verification. The encoder is powered and signal output verified across all channels (A, B, Z). Signal integrity is confirmed before the unit is cleared.

Step 4 – Pin and connector inspection. All connector pins are inspected under magnification for oxidation, fretting corrosion, and mechanical deformation. Affected contacts are treated or the unit is rejected.

Step 5 – Firmware and label verification. The motor nameplate data is cross-referenced against the order specification. No unit ships without confirmed model number match.

Key Features for System Maintenance

Q: How do I know the unit is genuine and not a counterfeit?
A: All units are inspected against Yaskawa's published nameplate specifications. We do not source from unverified channels. Customers may request inspection photos and serial number documentation before payment.

Q: What if my SGDH drive is also faulty?
A: DriveKNMS also sources Yaskawa SGDH series servo drives. Contact us with your full drive model number for availability.

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