Understanding Aging Test Machine: Core Functions and Technical Variants
An aging test machine replicates natural aging processes through controlled environmental parameters such as temperature, humidity, radiation, and pressure, enabling accelerated evaluation of material durability. The our offers various specialized models tailored to specific testing requirements:

UV Accelerated Aging Chamber
UV Accelerated Aging Chamber stands out for simulating sunlight-induced degradation, featuring UVA-340 (340nm) and UVB-313 (313nm) lamps to mimic different solar radiation intensities. Operating at temperatures from 22°C to 160°C with 1%-100% relative humidity, these chambers are widely used for testing building materials, automotive paints, and electronic enclosures. A notable application is evaluating color fastness of textiles, where UV exposure reveals potential fading issues within weeks instead of years .Get detailed information

Ozone Aging Test Machine
Ozone Aging Test Machine focuses on rubber products, maintaining precise ozone concentrations to assess cracking and degradation. Critical for tire manufacturing and sealant production, this equipment ensures rubber components withstand atmospheric ozone exposure over extended periods .Get detailed information

PCT/HAST High-Pressure Chambers
PCT/HAST High-Pressure Chambers represent the cutting edge of aging test technology, combining high temperature (100°C-132°C), 100% humidity, and pressure (0.2MPa) to simulate decades of environmental stress in weeks. These systems are crucial for photovoltaic modules, semiconductor packaging, and battery cells, where moisture penetration and pressure-induced failures can have catastrophic consequences .Get detailed information
Industry Applications
The versatility of aging test machines makes them invaluable across diverse industries, each with unique testing protocols:
In the automotive sector, aging test machines validate component durability under harsh conditions. Leading manufacturers subject car paints to xenon arc lamp testing (simulating full solar spectrum) to ensure no fading or cracking after 5 years of exposure. Meanwhile, engine seals undergo combined high-temperature and humidity tests to guarantee performance in extreme climates, with some achieving a 40% improvement in low-temperature charging efficiency through targeted aging optimization .
Electronics and semiconductor industries rely on HAST (Highly Accelerated Stress Test) chambers to identify potential failures in PCBs, IC chips, and connectors. By exposing components to 132°C, 100% humidity, and elevated pressure, manufacturers can detect delamination, corrosion, and insulation breakdown before mass production . A smartphone brand reportedly conducts 14-day continuous tests on 1,000+ prototypes, covering 200+ parameters including high-temperature charging and low-temperature photography .
The photovoltaic industry uses PCT aging test machines to verify module durability, focusing on EVA encapsulants and backsheet materials. These tests simulate 25 years of outdoor exposure by combining UV radiation, temperature cycling (-40°C to 85°C), and humidity, ensuring modules maintain >80% efficiency throughout their service life. One study showed that properly aged modules experienced 30% fewer field failures .
Aerospace and defense applications demand the most rigorous testing, with satellite components enduring -55°C to 125°C temperature cycles, 95% humidity, and continuous vibration. Aging test machines help achieve MTBF (Mean Time Between Failures) rates exceeding 100,000 hours, critical for mission-critical equipment .
How to choose the appropriate aging machine
Selecting the appropriate aging test machine requires careful consideration of three key factors:
Material and Product Characteristics: Rubber products require ozone chambers, while polymeric materials need thermal aging systems. Electronic components often benefit from combined temperature-humidity testing .
Test Standards and Accelerated Factors: Determine required standards (such as ASTM or ISO protocols) and calculate acceleration factors to balance test duration and accuracy. PCT chambers typically offer the highest acceleration rates for time-sensitive projects .
Smart Features Requirements: Evaluate needs for real-time monitoring, automatic calibration, and data analytics. Production facilities may prioritize fully automated systems, while research labs might value flexibility in parameter adjustment .
Regular maintenance is crucial for reliable performance. Calibrate sensors quarterly, inspect seals monthly for wear, and implement energy-saving modes during idle periods to extend equipment lifespan and reduce operational costs.
Products Description
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Model |
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Studio size |
PCT40: 400mm x L500 mm round test chamber |
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Performance |
Temperature and humidity range |
+100 °C ~ +135 °C (saturated vapor temperature), 100 vapor humidity |
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Temperature fluctuation |
±0.5°C |
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Humidity distribution mean |
3% |
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Pressurization time |
0.00 Kg ~ 1.04 Kg / cm2 Approximately 45 points |
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Temperature display accuracy |
0.1 ° C |
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Pressure fluctuation |
±0.02Kg |
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Temperature and humidity operation control system |
Controller |
Imported LCD digital display P, I, D + S, S, R. Micro PLC + color touch screen |
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Range of accuracy |
Setting accuracy: temperature ±0.1 °C, indicating accuracy: temperature ± 0.1 ° C, resolution: ± 0.1 ° C |
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Temperature Sensor |
Platinum resistance PT100Ω |
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Heating system |
Fully independent system, nickel-chromium alloy electric heating heater |
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Circulatory system |
Steam convection hot row |
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Material used |
Outer box material |
High quality carbon steel plate. Phosphating electrostatic spray treatment / SUS304 stainless steel matte line hairline treatment |
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Inner box material |
SUS304 stainless steel high quality mirror light panel |
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Insulation material |
Polyurethane rigid foam, ultra-fine glass fiber cotton |
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Standard configuration |
1 sample rack, 3 layers of partition |
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safety protection |
Overvoltage, short circuit, over temperature, over current protection |
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voltage |
AC220V/ 50±0.5Hz single phase |
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Note: |
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