Thermal - Adhesives, Epoxies, Greases, Pastes

Image Part Number Description / PDF Quantity Rfq
10-8120

10-8120

GC Electronics

GREASE HTSINK TYP44 NONSIL 1.0OZ

0

65-00-GEL75-0010

65-00-GEL75-0010

Parker Chomerics

THERM-A-GAP GEL 75 7.5 W/M-K DIS

0

2624519

2624519

Henkel / Bergquist

BERGQUIST LIQUIFORM TLF 6000HG 1

0

1188100

1188100

LOCTITE / Henkel

STYCAST 2762FT (18LB),

0

A14259-05

A14259-05

Laird - Performance Materials

TGREASE 2500 0.5 KG

0

A14259-09

A14259-09

Laird - Performance Materials

TGREASE 2500 305CC

0

101700F00000G

101700F00000G

Aavid

THERMAL PASTE

0

65-1P-GEL75-2500

65-1P-GEL75-2500

Parker Chomerics

THERM-A-GAP GEL 75 7.5 W/M-K DIS

0

A10548-08

A10548-08

Laird - Performance Materials

TPUTTY 502 25CC

0

BT-402-H

BT-402-H

Wakefield-Vette

THERMALLY CONDUCTIVE EPOXY POTTI

0

A16858-09

A16858-09

Laird - Performance Materials

TFLEX CR200 10 MIL 50CC CARTRIDG

0

TGZ20-300

TGZ20-300

Leader Tech Inc.

300CC

0

A14259-02

A14259-02

Laird - Performance Materials

THERMAL GREASE 3KG TGREASE 2500

0

TC2810 37ML

TC2810 37ML

3M

THERM COND ADH TC-2810 37 ML

0

8615

8615

MG Chemicals

SUPER THERMAL GREASE

0

8610-60G

8610-60G

MG Chemicals

HEAT TRANS COMPOUND NON-SILICONE

0

S606B-30

S606B-30

t-Global Technology

SILICONE THERMAL GREASE 30G JAR

0

S606N-30

S606N-30

t-Global Technology

NON SILICONE THERMAL GREASE 30G

0

TC-2707 37ML

TC-2707 37ML

3M

THERM COND ADH TC-2707 37 ML

0

2031

2031

3M

THERMALLY CONDUCTIVE GREASE .5

0

Thermal - Adhesives, Epoxies, Greases, Pastes

1. Overview

Thermal interface materials (TIMs) are specialized substances designed to enhance heat transfer between mating surfaces. These materials fill microscopic air gaps and reduce thermal resistance in electronic, mechanical, and industrial systems. With increasing power densities in modern devices, effective thermal management has become critical for reliability, performance, and longevity.

2. Main Types & Functional Classification

TypeFunctional CharacteristicsApplication Examples
Thermal AdhesivesPermanently bond surfaces while conducting heat. Available in conductive/dielectric variants.CPU heatsink bonding, LED module assembly
Epoxy SystemsTwo-part compounds with high structural strength and thermal conductivity.Power module encapsulation, motor controller assembly
Thermal GreasesNon-curing compounds with optimal gap-filling properties.GPU cooling, automotive sensor mounting
Phase Change MaterialsTemperature-activated compounds that optimize interface at operational temperatures.Server processors, high-frequency amplifiers

3. Structure & Composition

Typical formulations include:

  • Base Materials: Silicones, epoxies, polyurethanes, or acrylates
  • Fillers: Aluminum oxide, boron nitride, silver, or graphene for conductivity
  • Additives: Rheology modifiers, adhesion promoters, and antioxidants

Material microstructure is engineered to balance thermal performance with mechanical compliance.

4. Key Technical Specifications

ParameterSignificanceTypical Range
Thermal ConductivityPrimary measure of heat transfer efficiency1-8 W/m K
Operating TemperatureDetermines application environment suitability-50 C to 200 C
ViscosityAffects application method and gap coverage500-500,000 cP
Dielectric StrengthElectrical insulation capability5-30 kV/mm
Curing Time/TemperatureProduction process compatibilityRoom temp-150 C

5. Application Fields

  • Consumer Electronics: Mobile devices, gaming consoles
  • Automotive: EV battery packs, power electronics
  • Industrial: Power supplies, laser systems
  • LED Lighting: Heat spreader attachment
  • Aerospace: Avionics thermal management

6. Leading Manufacturers & Products

ManufacturerKey ProductsSpecialty
3MTC-2810 AdhesiveHigh-conductivity die attach
DowSYLGARD 8660Low-outgassing space applications
HenkelBerger TIM 880Phase-change processor pads
Master BondEP42HT-2AOTwo-part conductive epoxy

7. Selection Guidelines

Key considerations:

  • Thermal requirements vs. operating conditions
  • Material compatibility with substrates
  • Production process integration (curing, dispensing)
  • Long-term stability under thermal cycling
  • Cost-performance tradeoff analysis

Case Study: A server manufacturer reduced CPU operating temperatures by 12 C by switching from standard grease to a phase-change material with optimized melt profile.

Industry Trends

Emerging developments include:

  • Nano-enhanced composites achieving >10 W/m K
  • UV-curable formulations for faster processing
  • Low-VOC water-based systems for environmental compliance
  • Smart materials with temperature-dependent conductivity
  • Increased demand from EV battery thermal management systems
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