Thermal - Pads, Sheets

Image Part Number Description / PDF Quantity Rfq
PL-05-3-254

PL-05-3-254

Wakefield-Vette

THERM PAD 25.4MMX25.4MM GREEN

248

CD-02-05-126

CD-02-05-126

Wakefield-Vette

THERM PAD TO-126 PAD WITH HOLE

1733

CD-02-05-REC-112

CD-02-05-REC-112

Wakefield-Vette

THERM PAD RECT 1.12" X 1.12"

296

173-9-230P

173-9-230P

Wakefield-Vette

THERM PAD 19.1MMX12.7MM GRAY

4340

CD-02-05-247-N

CD-02-05-247-N

Wakefield-Vette

THERM PAD TO-247 NO HOLE

1731

PL-1-3-1016-H

PL-1-3-1016-H

Wakefield-Vette

THERM PAD 101.6MMX101.6MM GREEN

297

PL-1-1-254

PL-1-1-254

Wakefield-Vette

THERM PAD 25.4MMX25.4MM GRAY

0

CD-02-05-REC-125-N

CD-02-05-REC-125-N

Wakefield-Vette

THERM PAD RECT 1.25" X 1.25"

454

CD-02-05-220-N

CD-02-05-220-N

Wakefield-Vette

THERM PAD TO-220 NO HOLE

308

CD-02-05-C-46

CD-02-05-C-46

Wakefield-Vette

THERM PAD 1.811" X 1.811"

50

CD-02-05-DO5

CD-02-05-DO5

Wakefield-Vette

THERM PAD DO-5 1.00"OD/0.250"ID

444

173-7-220P

173-7-220P

Wakefield-Vette

THERM PAD 17.81MMX12.7MM GRAY

18418

PL-1-5-1016

PL-1-5-1016

Wakefield-Vette

THERM PAD 101.6MMX101.6MM GOLD

149

PL-05-5-254-H

PL-05-5-254-H

Wakefield-Vette

THERM PAD 25.4MMX25.4MM GOLD

213

173-7-1212A

173-7-1212A

Wakefield-Vette

THERM PAD 304.8MMX304.8MM W/ADH

0

CD-02-05-220-2

CD-02-05-220-2

Wakefield-Vette

THERM PAD DUAL TO-220 2 HOLES

556

173-7-240P

173-7-240P

Wakefield-Vette

THERM PAD 19.05MMX12.7MM GRAY

0

175-6-310P

175-6-310P

Wakefield-Vette

THERM PAD 40.46MMX27.94MM GRAY

0

173-7-210P

173-7-210P

Wakefield-Vette

THERM PAD 17.45MMX14.27MM GRAY

0

175-6-320P

175-6-320P

Wakefield-Vette

THERM PAD 41.91MMX28.96MM GRAY

0

Thermal - Pads, Sheets

1. Overview

Thermal pads and sheets are thermally conductive materials used to transfer heat away from electronic components to heat sinks or ambient environments. They fill air gaps between uneven surfaces, improving thermal efficiency. These materials are critical in modern electronics, automotive systems, and industrial equipment to prevent overheating, enhance reliability, and ensure compliance with safety standards.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Silicone-Based PadsHigh flexibility, low compression force, dielectric insulationSmartphones, laptops, LED lighting
Non-Silicone PadsLower cost, reduced silicone oil migrationPower supplies, industrial controls
Phase Change Materials (PCM)Softening at operational temperatures for better contactCPUs, GPUs, servers
Metal-Backed PadsAluminum/copper reinforcement for structural supportEV battery packs, high-power lasers
Graphite SheetsUltra-thin, anisotropic heat spreading5G base stations, wearable devices

3. Structure and Composition

Typical thermal pads consist of:

  • Base Material: Silicone rubber (standard), polyurethane (low-cost), or epoxy (rigid)
  • Filler: Aluminum oxide, boron nitride, or silver-coated particles for thermal conductivity
  • Adhesive Layers: Pressure-sensitive acrylic or silicone adhesives (optional)
  • Reinforcement: Fiberglass mesh or metal foils for mechanical stability

4. Key Technical Parameters

ParameterImportance
Thermal Conductivity (W/m K)Measures heat transfer efficiency (ASTM D5470)
Thickness (mm)Impacts contact resistance and compression force
Operating Temperature Range ( C)Determines material stability under thermal stress
Hardness (Shore 00)Affects conformability to surfaces
Adhesion Strength (N/mm )Critical for mechanical fixation
Electrical Insulation (kV/mm)Essential for high-voltage applications

5. Application Fields

Major industries include:

  • Consumer Electronics: Mobile phones (e.g., Samsung Galaxy series), tablets, gaming consoles
  • Automotive: EV battery thermal management (Tesla Model 3), powertrain inverters
  • Telecom: 5G base stations (Huawei AAU modules), optical transceivers
  • Industrial: CNC machines, medical imaging equipment
  • Aerospace: Avionics cooling systems

6. Leading Manufacturers & Products

ManufacturerRepresentative ProductKey Specification
Laird Performance MaterialsTHERM-A-GAP GEL 1515 W/m K, 0.5mm thickness
Bergquist (Henkel)Gap Pad 1500SSilicone-free, 8.0 W/m K
3M5595 PCMPhase change at 55 C, 12 W/m K
FujipolySARCON Matrix MGMetal-gel hybrid, 20 W/m K
MomentiveTSE 3045Graphite sheet, 400 W/m K (in-plane)

7. Selection Guidelines

Key considerations:

  • Thermal Requirements: Calculate required thermal conductivity based on power dissipation (using Fourier's Law)
  • Mechanical Constraints: Evaluate hardness-thickness trade-offs for housing clearance
  • Environmental Factors: Check temperature/chemical resistance for outdoor/automotive use
  • Cost Optimization: Balance performance vs. budget (e.g., graphite sheets cost 30% more than silicone pads)
  • Regulatory Compliance: Ensure RoHS/REACH certification for EU markets

8. Industry Trends

Emerging trends include:

  • Ultra-Thin Materials: 0.1mm graphite sheets for foldable devices
  • High-Conductivity Composites: Boron nitride nanotube-enhanced pads (30+ W/m K)
  • Smart Thermal Interfaces: Electro-responsive materials with tunable conductivity
  • Green Manufacturing: Water-based silicone formulations reducing VOC emissions
  • Integrated Solutions: Combination pads with embedded temperature sensors

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