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Battery Pack Thermal Management System Soft Silicone Foam Compression Pads

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Battery Pack Thermal Management System Soft Silicone Foam Compression Pads

Country/Region china
Categories Mechanical Transmission Parts
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Product Details

Battery Thermal Management System Soft Silicone Foam Battery Compression Pads High flame retardant silicone rubber 

Description
ColourThe basic colour is white, and other colours of products are agreed upon by the supply and demand parties
UniformityThe colour should be even
StomaPerforations of ≧3mm are not allowed.
StainsFoam products are not allowed to have stains

 

 

Silicone foam insulation has emerged as a superior solution for battery protection and thermal management systems in the rapidly evolving field of new energy vehicles (NEVs). This article delves into the inherent advantages of silicone foam insulation, highlighting its unique capabilities and why it surpasses traditional materials. By understanding its benefits, we can explore its critical role in enhancing NEV battery performance, safety, and longevity.

 

Excellent Resilience:
Silicone foam insulation boasts exceptional resilience, making it an ideal choice for battery protection. Experimental data reveals that even after undergoing 8,000 cycles of compression, the material experiences minimal deformation, with less than 5% change. This outstanding rebound property ensures long-term effectiveness and reliability, safeguarding NEV batteries throughout their operational lifespan.

 

Comprehensive Prtection:
Silicone foam insulation provides more than just insulation. It offers additional advantages, including dustproofing, waterproofing, heat dissipation, and shock absorption. These properties are pivotal for NEV battery protection systems, shielding the battery pack from external contaminants, preventing moisture ingress, efficiently managing heat generated during operation, and minimizing the impact of vibrations and shocks. Such comprehensive protection contributes to the overall performance, safety, and durability of NEV batteries.

 

Unyielding Performance under Extreme Conditions:
Silicone foam insulation undergoes rigorous testing to evaluate its performance under harsh environmental conditions. Experimental data from stress relaxation tests conducted at 85°C and 85% relative humidity for 1,000 hours demonstrates that the material exhibits a stress relaxation rate of only 20.98%. This exceptional result attests to its ability to maintain mechanical integrity and provide consistent performance, even in demanding situations. NEV batteries can rely on silicone foam insulation to deliver unwavering protection, regardless of challenging operating conditions.

 

Superior Compression Resistance:
Silicone foam insulation has excellent resistance to crushing and retains its shape and performance even after extensive use. The material exhibits a consistently low compression set, ranging from 0.34% to 0.72% in a 10,000-belt 1 million compression cycle test, ensuring its long-lasting durability and effectiveness in protecting new energy vehicle batteries.

These results highlight the material's resilience and ability to maintain its shape and performance, even after prolonged use. NEV batteries benefit from the long-lasting durability provided by silicone foam insulation.

 

Minimal Water Absorption:
Silicone foam insulation exhibits an impressively low water absorption rate of only 0.266%. This characteristic is crucial in NEV battery protection, as it ensures the material remains stable and unaffected by moisture. The low water absorption rate prevents any adverse effects on the battery pack's performance, even in humid environments. It further reinforces the material's suitability for NEV applications.

As the NEV industry continues to advance, silicone foam insulation emerges as the optimal choice for battery protection and thermal management systems. Its exceptional resilience, comprehensive protection features, unyielding performance under extreme conditions, superior compression resistance, and minimal water absorption set it apart from traditional materials. Silicone foam insulation plays a pivotal role in enhancing NEV battery performance, safety, and longevity. Its numerous advantages make it a compelling solution that should be widely adopted in the NEV industry, driving innovation and ensuring the continued success of new energy vehicles.

 

 

Features
  • Lightweight and high strength
  • Clean and environmentally friendly
  • Good buffer protection performance
  • Good surface protection properties
  • Good waterproof performance
  • Good thermal insulation performance
  • Good chemical resistance
  • Recyclable
Specification

The main performance parameters are shown in Table

Serial numberTest itemsUnitTest StandardSR No.
SR 35-ASR 40-ASR 50-ASR 60-A
1HardnessShore AGB/T531.1-200835±740±1050±1060±10
2Densityg/cm34.3.20.8≤μ±3σ≤1.41.00≤μ±3σ≤1.511.00≤μ±3σ≤1.511.1≤μ±3σ≤1.5
325 Compression curveMPaGB/T 7757-200910%:0.12≤μ±3σ≤0.2210%:0.25≤μ±3σ≤0.5310%:0.25≤μ±3σ≤0.7510%: 0.45≤μ±3σ≤0.80
20%:0.25≤μ±3σ≤0.4520%:0.50≤μ±3σ≤0.8620%:0.63≤μ±3σ≤1.7720%: 0.95≤μ±3σ≤1.45
30%:0.45≤μ±3σ≤0.730%:0.68≤μ±3σ≤1.3230%:1.20≤μ±3σ≤2.2430%: 1.50≤μ±3σ≤2.50
425 Shear performance under pressure  Strength: µ-3σ≥0.8Shear strength under pressure: µ-3σ≥0.5Shear strength under pressure: µ-3σ≥0.2Shear strength under pressure: µ-3σ≥0.8
Modulus: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75
525 Tensile strengthMPaGB/T 528-2009µ-3σ≥0.8µ-3σ≥1.1µ-3σ≥1.65/
6-30 Compression curveMPaGB/T 7757-200910%:0.08≤μ±3σ≤.0.2210%:0.25≤μ±3σ≤0.5310%:0.35≤μ±3σ≤0.6510%:0.55≤μ±3σ≤0.90
20%:0.25≤μ±3σ≤0.4520%:0.50≤μ±3σ≤0.8620%:0.90≤μ±3σ≤1.2020%:1.10≤μ±3σ≤1.95
30%:0.45≤μ±3σ≤0.930%:0.68≤μ±3σ≤1.3230%:1.50≤μ±3σ≤2.0030%: 2.00≤μ±3σ≤3.95
7-30 Shear performance under pressure  Strength: µ-3σ≥0.8Shear strength under pressure: µ-3σ≥0.5Shear strength under pressure: µ-3σ≥0.2Shear strength under pressure: µ-3σ≥0.8
Modulus: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75
8-30 Tensile strengthMPaGB/T 528-2009µ-3σ≥0.8µ-3σ≥1.1µ-3σ≥1.65/
960 Compression curveMPaGB/T 7757-200910%:0.12≤μ±3σ≤0.2210%:0.25≤μ±3σ≤0.5310%:0.35≤μ±3σ≤0.7010%: 0.35≤μ±3σ≤0.80
20%:0.25≤μ±3σ≤0.4520%:0.50≤μ±3σ≤0.8620%:0.80≤μ±3σ≤1.3020%:0.65≤μ±3σ≤1.60
30%:0.45≤μ±3σ≤0.730%:0.68≤μ±3σ≤1.3230%:1.00≤μ±3σ≤2.1030%: 1.00≤μ±3σ≤2.50
1060 Shear performance under pressure  Strength: µ-3σ≥0.8Shear strength under pressure: µ-3σ≥0.5Shear strength under pressure: µ-3σ≥0.2Shear strength under pressure: µ-3σ≥0.8
Modulus: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75
1160 Tensile strengthMPaGB/T 528-2009µ-3σ≥0.8µ-3σ≥1.1µ-3σ≥1.65/
12Double 85 post-aging compression curveMPaGB/T 7757-200910%:0.12≤μ±3σ≤0.2210%:0.25≤μ±3σ≤0.5310%: 0.50≤μ±3σ≤0.7010%: 0.40≤μ±3σ≤1.90
20%:0.25≤μ±3σ≤0.4520%:0.50≤μ±3σ≤0.8620%: 0.90≤μ±3σ≤1.3020%: 1.00≤μ±3σ≤3.20
30%:0.45≤μ±3σ≤0.7530%:0.68≤μ±3σ≤1.3230%: 1.40≤μ±3σ≤2.1030%: 1.70≤μ±3σ≤5.50
13Double 85 post-aging shear performance under pressure  Strength: µ-3σ≥0.8Shear strength under pressure: µ-3σ≥0.5Shear strength under pressure: µ-3σ≥0.2Shear strength under pressure: µ-3σ≥0.8
Modulus: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75
14Double 85 post-aging Tensile strengthMPaGB/T 528-2009µ-3σ≥0.8µ-3σ≥1.1µ-3σ≥1.65/
15Compression curve after high and low temperature cycleMPaGB/T 7757-200910%:0.12≤μ±3σ≤0.2210%:0.25≤μ±3σ≤0.5310%: 0.45≤μ±3σ≤0.6510%: 0.50≤μ±3σ≤2.20
20%:0.25≤μ±3σ≤0.4520%:0.50≤μ±3σ≤0.8620%: 0.85≤μ±3σ≤1.3520%: 1.00≤μ±3σ≤4.00
30%:0.45≤μ±3σ≤0.730%:0.68≤μ±3σ≤1.3230%: 1.30≤μ±3σ≤2.5030%: 1.80≤μ±3σ≤6.80
16Shear performance under pressure after high and low temperatureMPaASTM C273C /273M-16Strength: µ-3σ≥0.8Shear strength under pressure: µ-3σ≥0.5Shear strength under pressure: µ-3σ≥0.2Shear strength under pressure: µ-3σ≥0.8
Modulus: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75Shear modulus under pressure: Min≥0.75
17Tensile strength after high and low temperature cycleMPaGB/T 528-2009µ-3σ≥0.8µ-3σ≥1.1µ-3σ≥1.65/
18Flame retardant/UL94UL94 V0(2mm)V0(t≥2mm)V0(t≥2mm)V0(t≥2mm)
V1(1≤t2mm)V1(1≤t2mm)V1(1≤t2mm)
HB(0.4≤t1mm)HB(0.4≤t1mm)HB(0.4≤t1mm)
19Forbidden object/RoHS &REACH & ELVRoHS &REACH & ELVRoHS &REACH & ELVRoHS &REACH & ELVRoHS &REACH & ELV
20Insulation1000V DC 60sµ-3σ≥500µ-3σ≥500µ-3σ≥500µ-3σ≥500
21ImpedancemA2700V DC 60sµ+3σ≤1µ+3σ≤1µ+3σ≤1µ+3σ≤1
22Thermal conductivityW/(m·K)GB/T 10295-2008µ+3σ≤0.8µ+3σ≤0.8µ+3σ≤0.8µ+3σ≤0.8
23Specific heat capacityJ/(g·K)ASTM E1269-2011µ-3σ≥0.9µ-3σ≥0.9µ-3σ≥0.9µ-3σ≥0.9
24Stress retention rate%GB/T1685-2008≥40≥40≥40≥40
2525 Shear strength with double-sided adhesiveMPaASTM D1002Min≥0.8Min≥0.8Min≥1.1Min≥1.5
26-30 Shear strength with double-sided adhesiveMPaASTM D1002Min≥0.6Min≥0.8Min≥1.1Min≥1.5
2760 Shear strength with double-sided adhesiveMPaASTM D1002Min≥0.6Min≥0.8Min≥0.6Min≥1.5
28Double 85 ageing shear strength with double-sided adhesiveMPaASTM D1002Min≥0.6Min≥0.8Min≥1.1Min≥1.5
29Shear strength after high and low-temperature cycle with double-sided adhesiveMPaASTM D1002Min≥0.6Min≥0.8Min≥1.1Min≥1.5

Typical Applications

  • The functions of heat insulation, buffering, flame retardancy,
  • Thermal runaway protection and
  • New energy passenger vehicle cells and modules
Package & Delivery
 

 

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