| Liquid Channel Cold Plate | A machined, brazed, welded, or friction-stir-welded plate containing internal channels. | Water, water-glycol mixture, dielectric fluid, or other engineered coolant. | Heat is conducted from the component into the plate and then transferred to the flowing liquid through the channel walls. | Aluminum alloys, copper, copper alloys, or copper-aluminum combinations. | Aluminum 6061: approximately 167 W/m·K; copper: approximately 385–401 W/m·K at room temperature. | High heat-transfer capacity, compact design, and controllable coolant flow. | Power electronics, battery modules, laser systems, industrial drives, and high-power computing equipment. | Check pressure drop, flow rate, leak tightness, corrosion compatibility, channel cleanliness, and flatness. |
| Brazed Cold Plate | Several metal layers are joined by brazing to form sealed internal passages and external mounting surfaces. | Usually water, water-glycol, or a specified dielectric coolant. | Internal passages distribute coolant beneath the heat source, increasing the effective heat-transfer area. | Aluminum or copper, with a compatible brazing filler material. | Depends on the selected metal; aluminum and copper commonly provide approximately 167 W/m·K and 385–401 W/m·K, respectively. | Reliable sealed passages, repeatable production, and relatively complex flow-path capability. | Electric vehicle battery systems, converters, inverters, and industrial power modules. | Request burst-pressure data, leak-test standards, brazing quality controls, and dimensional inspection records. |
| Machined Cold Plate | Coolant grooves or channels are directly milled or drilled into a solid metal plate and then sealed with a cover. | Liquid coolant, most commonly water-based coolant. | Heat travels through the plate to the machined channels, where the moving coolant removes thermal energy. | Aluminum 6061, aluminum 6063, copper, or copper alloys. | Aluminum 6061: approximately 167 W/m·K; copper: approximately 385–401 W/m·K. | Flexible geometry, fast design changes, and suitability for prototypes or lower-volume production. | Testing equipment, prototypes, LED systems, laboratory equipment, and customized electronics. | Evaluate machining tolerance, channel geometry, sealing method, surface flatness, and production scalability. |
| Extruded Cold Plate | An aluminum extrusion forms longitudinal coolant passages and external mounting surfaces in one profile. | Air or liquid, depending on the profile and system design. | The extrusion increases surface area and conducts heat toward the coolant passages or external fins. | Aluminum alloys, commonly heat-treatable extrusion grades. | Typical aluminum alloys: approximately 150–235 W/m·K, depending on grade and temper. | Cost-efficient for long profiles, lightweight, and suitable for repeated cross-sectional designs. | Battery trays, motor controllers, LED lighting, telecommunications equipment, and industrial electronics. | Confirm profile availability, allowable cutting length, sealing arrangement, wall thickness, and dimensional tolerances. |
| Friction-Stir-Welded Cold Plate | Two or more metal sections are joined using a solid-state friction-stir-welding process after channels are formed. | Water, water-glycol, or application-specific liquid coolant. | The welded assembly creates sealed channels while maintaining a robust structural connection without conventional fusion welding. | Aluminum alloys; copper-based designs are also possible for specialized requirements. | Aluminum alloys typically range from approximately 150–235 W/m·K; copper is approximately 385–401 W/m·K. | Large-format construction, strong joints, low distortion, and good suitability for automotive and energy systems. | Electric vehicle battery packs, traction inverters, charging systems, and renewable-energy converters. | Review weld integrity, cross-section inspection, pressure testing, thermal resistance, and corrosion protection. |
| Vapor Chamber Cold Plate | A sealed flat chamber containing a working fluid and internal wick structure. | Internal phase-change fluid; no external liquid loop is required for the chamber itself. | Heat evaporates the internal fluid at the hot area. Vapor spreads through the chamber, condenses in cooler regions, and returns through the wick. | Copper, stainless steel, or copper-based composite structures. | Effective in-plane thermal conductivity can be several hundred to above 1,000 W/m·K, depending on design and operating conditions. | Excellent heat spreading, low profile, and passive phase-change operation. | LED modules, telecommunications equipment, compact electronics, power semiconductor assemblies, and mobile systems. | Check orientation limits, maximum heat load, operating temperature range, flatness, vacuum integrity, and mechanical durability. |
| Two-Phase Loop Cold Plate | A cold plate integrated with an evaporator-condenser loop or pumped two-phase cooling circuit. | A refrigerant or another selected two-phase working fluid. | The working fluid evaporates near the heat source and condenses elsewhere, transporting heat with latent heat rather than only sensible heat. | Copper, aluminum, stainless steel, or mixed-metal assemblies selected for fluid compatibility. | Base-material conductivity varies; copper is approximately 385–401 W/m·K and aluminum is approximately 167–235 W/m·K. | High heat-flux capability and efficient heat transport over longer distances. | Data-center processors, high-power laser systems, aerospace electronics, and advanced power-conversion equipment. | Require detailed qualification of fluid compatibility, operating pressure, system controls, safety compliance, and maintenance requirements. |
| Air-Cooled Cold Plate or Fin Plate | A metal plate with fins, pins, or extended surfaces that increase contact area with moving air. | Natural convection air or forced air from a fan or blower. | Heat conducts through the plate and is released to air across the enlarged fin surface. | Aluminum alloys or copper; aluminum is commonly selected for its lower weight. | Aluminum 6061: approximately 167 W/m·K; copper: approximately 385–401 W/m·K. | Simple installation, no liquid leakage risk, and lower system complexity. | LED lighting, control cabinets, power supplies, motors, and moderate-power electronic devices. | Consider airflow, acoustic limits, dust accumulation, fin spacing, ambient temperature, and available installation space. |