Thermal - Heat Sinks

Image Part Number Description / PDF Quantity Rfq
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Aavid

BOARD LEVEL HEAT SINK

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Aavid

BOARD LEVEL HEAT SINK

0

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531002B02100G

Aavid

BOARD LEVEL HEAT SINK

0

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7021BG

Aavid

BOARD LEVEL HEAT SINK

0

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7021B-MT6G

Aavid

HEAT SINK

0

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Aavid

BOARD LEVEL HEAT SINK

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578105B00000G

578105B00000G

Aavid

BOARD LEVEL HEAT SINK

0

508122B00000G

508122B00000G

Aavid

HEATSINK DUAL MNT TO-220

0

508322B00000G

508322B00000G

Aavid

HEAT SINK

0

530801B05150G

530801B05150G

Aavid

BOARD LEVEL HEAT SINK

0

341600F00000G

341600F00000G

Aavid

HEATSINK

0

533702B02552G

533702B02552G

Aavid

BOARD LEVEL HEAT SINK

0

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523002D00000G

Aavid

BOARD LEVEL HEAT SINK

0

2321BG

2321BG

Aavid

HEAT SINK

0

530614B05300G

530614B05300G

Aavid

HEAT SINK

0

500303B00000G

500303B00000G

Aavid

BOARD LEVEL HEAT SINK

0

6273BG

6273BG

Aavid

HEATSINK

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2240B ASSYG

2240B ASSYG

Aavid

HEATSINK

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1130BG

1130BG

Aavid

HEATSINK

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501706B00000G

501706B00000G

Aavid

BOARD LEVEL HEAT SINK

0

Thermal - Heat Sinks

1. Overview

Thermal heat sinks are passive or active cooling components designed to absorb and dissipate heat generated by electronic devices. They play a critical role in maintaining optimal operating temperatures for semiconductors, processors, and power modules. As modern electronics trend toward higher power density and miniaturization, effective thermal management through heat sinks has become essential for ensuring reliability, performance, and longevity of systems in applications ranging from consumer electronics to industrial machinery.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Passive Air-Cooled Heat SinksAluminum/copper fins without moving partsDesktop CPUs, LED lighting
Active Air-Cooled Heat SinksFans integrated with fin arraysGaming PCs, industrial control cabinets
Liquid-Cooled Heat SinksInternal channels for coolant circulationData center servers, EV battery packs
Heat Pipe Heat SinksVapor chamber technology for ultra-thin profilesSmartphones, aerospace electronics
Phase Change Heat SinksParaffin-based materials absorbing latent heatShort-duration high-load applications

3. Structure and Components

Typical heat sink structures include:

  • Finned Arrays: Corrugated metal surfaces (aluminum extrusions or folded copper sheets) for maximizing surface area
  • Base Plates: Machined or forged bases with micro-channel patterns for direct component contact
  • Thermal Interface Materials (TIMs): Graphite pads or phase-change materials between heat sink and component
  • Mounting Hardware: Spring-loaded pins or adhesive backers for secure installation
  • Protective Coatings: Anodized finishes or nickel plating for corrosion resistance

4. Key Technical Specifications

ParameterDescriptionImportance
Thermal Resistance0.5-10 C/W range depending on designDirectly impacts cooling efficiency
Material ConductivityAl: 180-240 W/m K | Cu: 390-400 W/m KDetermines heat transfer speed
Fin Density5-50 fins per inch (FPI)Affects airflow resistance and surface area
Operating Temperature-50 C to +250 C typical rangeDefines environmental suitability
Weight50g-10kg depending on applicationCritical for aerospace and mobile uses

5. Application Fields

  • Consumer Electronics: CPU/GPU cooling in computers, smartphone SoC thermal pads
  • Telecommunications: 5G base station power amplifiers, optical transceivers
  • Industrial: VFD motor controllers, welding equipment
  • Automotive: Electric vehicle (EV) battery packs, onboard chargers
  • Aerospace: Avionics cooling systems, satellite power modules

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
Aavid (TE Connectivity)HiK Plate Heat SinksEmbedded heat pipes, thermal conductivity >400 W/m K
Cooler MasterHyper 212 RGB4 direct-contact heat pipes, 64 CFM fan
Delta ElectronicsCD7010 Liquid Cooler2-phase immersion cooling system
ThermaltakeFloe Riing RGB 360mm360mm radiator with RGB lighting
Boyd CorporationPhase Change PCM150150W thermal capacity for pulsed loads

7. Selection Guidelines

Key considerations include:

  • Calculate required thermal dissipation using Q = (Toperating - Tambient)/Rthermal
  • Verify dimensional compatibility with component footprint and clearance
  • Assess environmental conditions (humidity, vibration, corrosion potential)
  • Balance performance vs cost: Extruded aluminum offers best cost/performance ratio
  • Consider integration with existing cooling systems (e.g., existing fan airflow rates)

Case Study: For a 150W CPU with 70 C max operating temperature and 25 C ambient, required thermal resistance must be 0.3 C/W. Recommended solution: Copper base heat sink with 6 heat pipes and 120mm PWM fan.

8. Industry Trends

Emerging developments include:

  • Graphene-enhanced composites achieving 500+ W/m K conductivity
  • 3D-printed lattice structures reducing weight by 40% while maintaining performance
  • Smart heat sinks with embedded thermal sensors and adaptive fan control
  • Two-phase immersion cooling systems for data centers (up to 90% energy savings)
  • Microchannel liquid cooling for 5G millimeter-wave transmitters

Market forecasts predict a CAGR of 6.8% through 2030, driven by EV and 5G infrastructure demands.

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