G1116-0600WNA – 600W CRPS Power Supply for Microservers, Edge Nodes, and Compact Network Appliances

The G1116-0600WNA 600W CRPS power supply is designed for networking equipment, telecom platforms, and compact computing systems that require stable and efficient AC/DC power delivery. Its 1U CRPS-standard form factor (185 × 73.5 × 40 mm) allows seamless integration into high-density chassis and front-access power shelves. This model provides a regulated main output of 54.5V at 11A, along with a 12V standby rail for system management functions. It supports a universal input voltage range of 90–264Vac and 180–300Vdc, making it suitable for global deployment across diverse power infrastructures. Equipped with PMBus 1.2 digital control, the G1116-0600WNA enables real-time telemetry, power metering, and remote health supervision. Its Platinum-level efficiency ensures stable operation with reduced energy loss, improving overall system performance in continuous-duty environments. Smart fan control adjusts cooling dynamically to maintain thermal stability while minimizing acoustic noise. The CRPS hot-swap design allows maintenance or replacement without impacting system uptime, making it ideal for mission-critical deployments.

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
G1116-0600WNA Entry Enterprise & network compute AC/DC CRPS-185

General server roles and branch workloads

G1116-0900WNA

Mid Heavier virtualization & caching AC/DC CRPS-185 Moderate I/O and multi-VM tasks
G1116-1200WNA High GPU-assisted or dense compute AC/DC CRPS-185

Inference & intensive concurrency

G1116-1600WNA

Extreme HPC or multi-accelerator nodes AC/DC CRPS-185 Dense compute and AI workloads

G1116-2000WNA

Peak Continuous heavy duty AC/DC CRPS-185

Large-scale cluster/AI backbones

Deployment Scenarios

The G1116-0600WNA is the entry power segment of the G1116 lineup, delivering 600W continuous output optimized for enterprise compute environments that value reliability, low operating cost, and balanced processing loads. It fits well in business servers, network management appliances, light virtualization stacks, monitoring gateways, and distributed edge compute nodes where efficiency and uptime matter more than watt density. With predictable voltage behavior and modest thermal output, this tier is suitable for infrastructures where power demand varies with user activity but rarely enters heavy GPU acceleration territory.

 

Scenario

Expected Load Pattern Why 600W Tier Fits
Business compute servers Mixed baseline workload

Efficient without overprovisioning

Virtualization light nodes

Multi-small VM patterns Stable under moderate concurrency
Monitoring & observability Long uptime operation

Low thermal footprint for edge racks

Network control & routing

Burst-based CPU cycles Good transient handling for traffic
Logging/telemetry units Consistent storage writes

Voltage stability prevents dropouts

Distributed office POPs

Regional operations

Balanced capacity for branch-level demands

Power Architecture & Reliability Design

The G1116-0600WNA adopts a power conversion design tuned for predictable behavior under moderate CPU-bound workloads, long-running observability services, and distributed compute fleets. Its electrical and thermal characteristics are optimized for environments where consistent efficiency and stable voltage matter more than short-duration wattage peaks, such as edge deployments, lightly loaded data nodes, and monitoring clusters operating continuously.

 

Ripple suppression and EMI control protect system buses during log commit operations, telemetry aggregation, and traffic rebalancing events, helping maintain clean signaling across network and storage interfaces. Voltage regulation remains stable as load fluctuates gradually, avoiding unnecessary stress on controllers and ensuring smooth operation for infrastructure utility roles that depend on uninterrupted runtime.

 

Thermal airflow design promotes even heat distribution within compact rack or edge chassis, reducing temperature cycling and slowing component fatigue over extended service windows. PMBus access provides operational visibility into thermal trends, duty behavior, and power characteristics, enabling teams to forecast maintenance cycles and identify early signs of drift. As a result, the G1116-0600WNA is well suited for 24/7 infrastructure monitoring, branch compute, and edge systems that prioritize reliability, efficiency, and long-term predictability.

Power Operating Notes

Reference Condition

Suggested Guidance
Office compute stacks

Maintain minimal airflow obstruction

Light virtualization

Allocate buffer for concurrency jumps
POP deployment

Track PMBus telemetry quarterly

Logging + audit storage

Ripple stability aids I/O reliability
Branch network routing

Thermal headroom enables longevity

Long idle-to-peak swings

Fan curve adjusts smoothly
Distributed rollouts

Standardization reduces spares cost

Low ambient rack rooms

Dust control extends efficiency

FAQ

Q1. Where is this PSU best used?
General enterprise servers, branch compute, POP routers, log management systems.

 

Q2. Is it suitable for 24/7 operation?
Yes — engineered for stability and predictable thermals.

 

Q3. How does it compare to 900W model?
Lower watt capacity but more efficient for non-GPU workloads.

 

Q4. Can it operate in redundancy?
Supports N+1 configuration for uptime-focused deployments.

 

Q5. Suitable for long-running monitoring or telemetry roles?
Yes — low ripple and long uptime alignment make it ideal.

 

Q6. Good for virtualization?
For light VM density, yes — heavier loads may favor 900W+.

 

Q7. Deployment consideration?
Ensure airflow direction matches chassis cooling channel.

 

Q8. When to upgrade to 900W?
When VM count or storage concurrency begins to push average load.

 

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