As electric vehicles (EVs) continue to
dominate the transportation sector, efficient battery thermal management has
become increasingly critical. Lithium-ion batteries, the most commonly used in
EVs, are highly sensitive to temperature changes, impacting their performance,
safety, and lifespan. One advanced solution gaining traction is the use of
thick film heaters for battery thermal management systems (BTMS). These heaters
offer fast, uniform, and energy-efficient heating, helping to maintain optimal battery
temperatures under various environmental conditions.
A thick film heater is a type of resistive
heating element that uses a conductive paste layer printed on a ceramic or
metallic substrate. These layers are typically made from metal oxides or
conductive polymers. Once printed and cured, the heater can be powered
electrically, providing surface heating over a large area. Thick film
technology is highly adaptable, allowing for custom shapes and sizes to fit
specific EV battery designs.
In EV batteries, maintaining the right
temperature range (usually 15掳C to 45掳C) is essential for:
Optimal Charging and Discharging Efficiency
Prevention of Cold-Weather Performance
Drops
Minimization of Thermal Runaway Risks
Prolonged Battery Lifespan
Thick film heaters contribute by providing
rapid, even heating directly to the battery pack, cell modules, or cooling
plates, ensuring that all cells are within the optimal thermal range.
Company鈥: Nordic
EV Tech Solutions
鈥Industry鈥: Electric Vehicle Manufacturing 鈥
Application鈥:
Ultra-low-temperature battery preheating system for Arctic-region EVs 鈥
Key Requirements鈥:
1. Extreme Temperature Resilience鈥 – Existing heaters cracked during 鈥-55掳C
thermal shock testing鈥.
2. Energy Efficiency鈥 – Legacy systems consumed 鈥1.5kWh鈥 to heat a 100kWh battery pack from -30掳C to 10掳C.
3. EMI/EMC Compliance鈥 – High-frequency switching caused interference with BMS sensors,
violating 鈥CISPR 25 Class 5鈥.
4. Certification鈥 – Required 鈥ISO 6469-3鈥 (EV safety) and 鈥UL 94 V-0鈥 (flammability) certifications.
After understanding customers requirements,
our engineer team provide a feasible solution within 24 hours, the details of thick
film heaters are:
l Aluminum Nitride (AlN) Substrate鈥: 0.25mm
thickness, thermal conductivity 鈥220 W/m路K鈥, withstood 鈥2,000 cycles鈥 of -55掳C鈫125掳C testing.
l Silver-Palladium Hybrid Ink鈥: Achieved 鈥18W/cm虏鈥 power density without delamination.
l Distributed Temperature Sensing鈥: Embedded
15 micro-NTC sensors per heater for 鈥卤0.8掳C鈥uniformity.
l Adaptive PWM Algorithm鈥: Reduced energy use by 42%
through SOC-based heating curves.
l 3D Mesh Circuit Layout鈥: Lowered parasitic
inductance to 鈥<3nH鈥, passing 鈥30V/m RF immunity tests鈥.
Item |
Legacy Heater |
Thick Film Heater |
Improvement |
Preheating |
9.5 |
鈥4.2 minutes鈥 |
鈥55% faster鈥 |
Energy |
1.5 |
鈥0.87 kWh鈥 |
鈥42% reduction鈥 |
Space |
5.8mm |
鈥2.3mm thickness鈥 |
鈥60% slimmer鈥 |
Warranty |
4.7% |
鈥0.6%鈥 |
鈥87% lower |
l Satisfaction Score鈥: 9.8/10 (via post-deployment survey).
l Market Impact鈥: Enabled Nordic EV Tech to launch the world鈥s first 鈥-40掳C-rated EV鈥, capturing 鈥31% market share鈥 in Scandinavian regions in Q4 2024.
l Awards鈥: Won 鈥2025 Global Automotive Innovation Award鈥 in \”Sustainable
Thermal Management\” category.
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