G1317-0600WNA – 600W CRPS Power Supply for Compact Edge Nodes, Industrial Controllers, and Lightweight Network Systems

The G1317-0600WNA 600W CRPS power supply is engineered for compact edge nodes, industrial control platforms, and lightweight networking systems requiring stable 54.5V output in a small CRPS form factor. Its 1U footprint (185 × 73.5 × 40 mm) allows efficient placement in space-restricted enclosures and distributed infrastructure. Providing a main output of 54.5V at 11A alongside a 12V standby rail, it supports PoE-driven subsystems, embedded networking boards, and control modules that depend on consistent high-voltage delivery. The +48Vdc input design ensures compatibility with telecom racks, edge cabinets, and industrial DC power architectures. With PMBus 1.2 digital management, operators gain precise control and real-time visibility into operating parameters, enabling smarter diagnostics and higher system uptime. Its optimized electrical design ensures reliable performance across fluctuating loads often seen in edge and industrial deployments. Efficient thermal handling is achieved through intelligent fan modulation, helping maintain stable operating temperatures while reducing unnecessary noise. The hot-swap feature simplifies maintenance in live systems, allowing power modules to be exchanged without shutting down critical processes.

Features

CRPS-185: 185×73.5x40mm (LxWxH)

CRPS-265: 265×73.5x40mm (LxWxH)

3A Max standby output current

Voltage Tolerance : 54.5Vdc ±3%(52.8-56.1Vdc)

Hot-plug

Full Digital control

Active Power Factor Correction

Intelligent-thermal Fan Control

N+1 Redundant

Reverse Airflow Option

Applications

POE Switch

Networking

Telecom

Artificial Intelligence

Router System

Data Centers

5G Base Stations

IoT Gateways

Approvals

UL/CUL

CB

TUV/Mark

CCC/CQC

FCC

CE

Specifications

Output Power (W): 600
Length (mm): 185
Width (mm): 73.5
Height (mm): 40
Mounting Type: Hot pluggable
Minimum Output Current (A): 0
Maximum Output Current (A): 11
Output Voltage (V): 54.5
Minimum Output Power (W): 0
Maximum Output Power (W): 600
Minimum Input Voltage (V): 90
Maximum Input Voltage (V): 264

Model Selection Comparison Table

Model

Power Class Use Role Input Form Factor Recommended Use
G1317-0600WNA Mid-range Edge servers & VM compute AC/DC CRPS-185

Balanced virtualization + light inference

G1317-0920WNA

Upper-mid Heavier I/O workloads AC/DC CRPS-185 Storage-centric hybrid compute
G1317-1200WNA High GPU-assisted compute AC/DC CRPS-185

AI-augmented deployment

G1317-1600WNA

Extreme Dense clustering AC/DC CRPS-185

Heavy AI and high concurrency

Deployment Scenarios

The G1317-0600WNA is the entry power tier within the G1317 family, delivering a stable 600W class output suitable for balanced compute stacks where efficiency, thermal predictability and multi-service concurrency are more critical than raw watt capacity. This model serves compact enterprise servers, SD-WAN appliances, virtualization clusters, as well as hybrid storage edge units that need consistent 12V delivery during moderate CPU/GPU bursts. With enough margin to sustain database indexing, multi-VM workloads and inference at the edge, it fits deployments where operators scale horizontally through node count rather than per-unit watt density.

 

Scenario

Expected Load Pattern Why 600W Tier Fits
SMB servers & general compute Mixed CPU utilization

Balanced efficiency-to-load ratio

Virtualization clusters

Multi-VM concurrency Stable under moderate oscillating draws
Edge inference boxes Partial GPU acceleration

Enough margin for burst workloads

Branch office appliances

Light storage + routing Runs cool, low operating overhead
Light container environments Uniform small pods

Avoids over-provisioning

Monitoring & SCADA systems

Long runtime stability

Focus on reliability over peak watts

Power Architecture & Reliability Design

The G1317-0600WNA adopts a carefully tuned power conversion architecture designed for clean, continuous power delivery in mid-power server environments where thermal balance and runtime uniformity take precedence over extreme output density. Its electrical design maintains stable voltage regulation during frequent but moderate load transitions, a pattern commonly seen in virtualized platforms and container-based workloads that scale dynamically throughout the day.

 

Airflow routing and component spacing are optimized to limit localized heat accumulation, allowing the unit to operate reliably even in racks with constrained or uneven airflow. Ripple suppression and EMI control reduce the risk of signal interference during I/O transactions, database commits, and mixed request handling, helping preserve bus stability and system responsiveness under concurrent activity.

 

PMBus telemetry provides visibility into duty-cycle behavior, thermal trends, and operational drift, enabling infrastructure teams to plan maintenance and replacement cycles proactively rather than reacting to failure events. With predictable thermal behavior and controlled load response, the G1317-0600WNA is well suited for horizontally scaled enterprise infrastructure where consistency, low noise operation, and long service life are key deployment priorities.

Power Operating Notes

Reference Condition

Suggested Guidance
VM orchestration load

Maintain spacing for consistent airflow

Branch networking edge

Ensure grounding clarity under surge events
Mixed CPU + light GPU

Reserve watt buffer for inference peaks

Database indexing

Expect stable behavior during write bursts
Storage gateway tier

Fan RPM may rise under sustained I/O

Remote POP racks

Monitor PMBus logs quarterly
Virtualized cluster growth

Horizontal node expansion recommended

Long uptime windows

Dust control improves duty cycles

FAQ

Q1. Best use environment for G1317-0600WNA?
Edge compute, SMB servers, light inference platforms, VM clusters.

 

Q2. Can this operate under 24/7 load?
Yes. Its thermal tuning stabilizes performance even in long uptime scenarios.

 

Q3. Main difference vs 920W/1200W/1600W?
600W favors efficiency and cool operation where high GPU power is not required.

 

Q4. Does it support redundancy design?
Yes, suitable for N+1 deployment with minimal PSU idle waste.

 

Q5. Suitable for branch data aggregation nodes?
Yes — handles routing + storage workloads with stable power overhead.

 

Q6. Can it sustain inference micro-workloads?
It supports short GPU bursts typical in lightweight inferencing.

 

Q7. Deployment caution?
Account for airflow direction in compact chassis.

 

Q8. When should operators upgrade to 920W?
When workloads involve heavier caching, parallel streams or GPU usage.

 

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