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Cooling Solutions for High Power Transceivers Optical Application for Data & Telecoms

Cooling Solutions for High Power Transceivers

Optical Application for Data & Telecoms

The increased use of transceivers and co-packaged optics in datacenters is driven by the growing demand for network bandwidth and data processing speeds

The drive for increased performance has resulted in an exponential rise in power density as real estate is squeezed and power dissipation is increased. Optical Transceivers such as OSFP modules are now very difficult to cool with traditional heatsinks

Optical Transceiver Thermal Challenges & Traditional Heat Sinks Limitations

Traditional optical transceiver heatsinks are typically manufactured using aluminum die-casting or aluminum extrusion processes. Aluminum offers good manufacturability, lightweight characteristics, and cost-effective mass production capabilities.

Copper, however, has a much higher melting point and relatively poor flow characteristics after heating, making it difficult to manufacture through conventional extrusion processes. As a result, producing complex copper extruded heatsink profiles is significantly more challenging compared to aluminum.

For high-performance thermal applications requiring superior heat spreading capability, copper heatsinks are therefore more commonly manufactured using:

  • CNC machining
  • Forging + CNC
  • Extruded Profiles + CNC

These manufacturing methods allow copper-based thermal solutions to achieve significantly improved thermal conductivity and cooling performance for high-power optical transceiver applications.

Transceiver heat sinks are usually a solid conductive material, such as aluminum or copper, with fins and a pedestal section which contacts the heat source. Because the heat source surface area is relatively small, these heat sinks can have high temperature gradients across them

Traditional optical transceiver heatsinks 

Thermal Simulation Temperature Comparison

The following comparison shows the simulated thermal performance difference between a traditional optical transceiver heatsink and the new Copper + VC thermal solution.

Traditional Copper Optical Module

Higher hotspot temperature and larger temperature gradient across the heatsink surface


Copper + VC Optical Module

Improved temperature uniformity and lower hotspot temperature with Vapor Chamber heat spreading

Vapor Chamber integrated copper heatsink for OSFP optical transceivers

Renxin, QSFP & OSFP Vapor Chamber Thermal Solutions

Many Manufacturers are recommending liquid cooling as a solution for transceivers with higher power dissipation requirements. At Renxin however, we have designed custom VCs that support up to 30W, allowing our customers to continue utilizing their air-cooled infrastructure,

Advanced VC Cooling Solution for OSFP Optical Transceivers

Renxin Thermal Products utilizes a high-performance copper extrusion heatsink structure integrated with Vapor Chamber (VC) technology to deliver advanced thermal management solutions for next-generation OSFP optical transceivers

The copper extrusion base provides excellent thermal conductivity, allowing heat to rapidly transfer away from high-power ICs and optical components. By integrating a Vapor Chamber directly into the heatsink base, heat can be spread quickly and uniformly across the entire cooling surface

The combination of copper’s superior thermal conductivity and the outstanding temperature uniformity of Vapor Chamber technology enables:

Up to 6.2 °C temperature reduction
Temperature differential controlled within 6°C
Lower hotspot temperatures
Improved thermal spreading efficiency
Enhanced long-term reliability
Better performance for high heat flux applications

Applications & Performance Advantages

This hybrid copper + VC cooling architecture is especially suitable for:

  • OSFP modules
  • QSFP-DD transceivers
  • AI networking systems
  • High-speed switches
  • Data center optical applications

Compared with conventional solid aluminum heatsinks, the Renxin VC-integrated copper cooling solution provides significantly improved thermal performance while maintaining compatibility with existing air-cooled infrastructure.

6.2°C

Maximum temperature reduction achieved with VC integrated copper heatsink architecture

Advanced thermal solutions for AI networking and data center optical systems
Multiple Vapor Chamber integration architectures for optical transceivers

Vapor Chamber Integration Options

We can design and manufacture the following options:

  • Full VC solutions for ride-on heat sinks.
  • Pedestal VCs soldered to the ride-on heat sink base.
  • Thin VCs embedded in the transceiver housing, itself, making direct contact with heat source/s
Embedded SFP Vapor Chamber (Inside Top Housing)

Results from our verification tests showed that vapor chambers integrated at the board level of the transceiver can provide up to 25% improvement in resistance compared to traditional methods (Testing is based on 30W @6 CFM fed to heatsink)

Ride-on Vapor Chamber Heatsink (Sits on Top Housing)

Results from our verification tests showed improvement to resistance by 20%-35% compared to conventional solid metal heatsinks.

Request a Quote

Share your optical module type, power dissipation, airflow condition, available space, material preference, and thermal targets. Our engineering team can support customized copper heatsink and Vapor Chamber cooling solutions for your application.

Request a Quote
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