| Image | Part Number | Description / PDF | Quantity | Rfq |
|---|---|---|---|---|
|
Aavid |
PAD SOFTFLEX B016 1MM 400X200MM |
0 |
|
|
|
SUPERTHERMAL-D089-02-00-0762-0762 Aavid |
PAD SUPERTHERMAL 0.2MM D089 3X3" |
0 |
|
|
|
WAVEBLOCKER-A008-30-02-4000-2000 Aavid |
PAD WAVEBLOCK A008 3MM 400X200MM |
0 |
|
|
|
Aavid |
THERM PAD 19.05X12.7MM W/ADH |
6679 |
|
|
|
Aavid |
THERM PAD 17.45MMX14.27MM |
3189 |
|
|
|
Aavid |
PAD SOFTFLEX E038 3MM 3X3" |
0 |
|
|
|
Aavid |
THERM PAD 19.05X12.7MM GRY/GRN |
9093 |
|
|
|
Aavid |
THERM PAD 18.92MMX13.84MM |
5535 |
|
|
|
SUPERTHERMAL-A072-10-02-1500-1500 Aavid |
PAD SUPER A072 1MM 150X150MM |
0 |
|
|
|
SUPERTHERMAL-A072-30-02-1400-1400 Aavid |
PAD SUPER A072 3MM 140X140MM |
0 |
|
|
|
Aavid |
THERM PAD 19.3MMX13.97MM |
15960 |
|
|
|
Aavid |
PAD SOFTFLEX D021 1MM 3X3" |
0 |
|
|
|
Aavid |
PAD SOFTFLEX B016 2MM 400X200MM |
0 |
|
|
|
SUPERTHERMAL-C128-10-00-1300-1300 Aavid |
PAD SUPER C128 1MM 130X130MM |
0 |
|
|
|
Aavid |
PAD SOFTFLEX D021 2MM 400X200MM |
0 |
|
|
|
Aavid |
THERM PAD 42.04X27MM GRAY/GRN |
1611 |
|
|
|
Aavid |
PAD SOFTFLEX A014 2MM 3X3" |
0 |
|
|
|
SUPERTHERMAL-A072-20-02-1400-1400 Aavid |
PAD SUPER A072 2MM 140X140MM |
0 |
|
|
|
Aavid |
PAD SOFTFLEX B016 3MM 400X200MM |
0 |
|
|
|
SUPERTHERMAL-D089-02-00-1400-1400 Aavid |
PAD SUPER D089 0.2MM 140X140MM |
0 |
|
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.
| Type | Functional Features | Application Examples |
|---|---|---|
| Silicone-Based Pads | High flexibility, low compression force, dielectric insulation | Smartphones, laptops, LED lighting |
| Non-Silicone Pads | Lower cost, reduced silicone oil migration | Power supplies, industrial controls |
| Phase Change Materials (PCM) | Softening at operational temperatures for better contact | CPUs, GPUs, servers |
| Metal-Backed Pads | Aluminum/copper reinforcement for structural support | EV battery packs, high-power lasers |
| Graphite Sheets | Ultra-thin, anisotropic heat spreading | 5G base stations, wearable devices |
Typical thermal pads consist of:
| Parameter | Importance |
|---|---|
| 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 |
Major industries include:
| Manufacturer | Representative Product | Key Specification |
|---|---|---|
| Laird Performance Materials | THERM-A-GAP GEL 15 | 15 W/m K, 0.5mm thickness |
| Bergquist (Henkel) | Gap Pad 1500S | Silicone-free, 8.0 W/m K |
| 3M | 5595 PCM | Phase change at 55 C, 12 W/m K |
| Fujipoly | SARCON Matrix MG | Metal-gel hybrid, 20 W/m K |
| Momentive | TSE 3045 | Graphite sheet, 400 W/m K (in-plane) |
Key considerations:
Emerging trends include: