Temperature Cycling Thermal Shock Testing Machine

The temperature cycling thermal shock test chamber simulates the material's tolerance under rapid temperature changes by quickly switching between high and low-temperature environments. Its principle involves using refrigeration and heating systems to achieve temperature transitions, thereby detecting the performance changes of samples under alternating hot and cold conditions. This equipment is used for temperature resistance testing of materials such as coatings and plastics, helping to understand the stability of products in environments with temperature variations.
Selection
When selecting a temperature cycling thermal shock test chamber, considerations should include the temperature range, transition rate, and sample size. The temperature range should cover the application requirements, the transition rate affects testing efficiency, and the sample size must match the equipment capacity. Additionally, evaluate control accuracy and energy consumption to ensure the equipment meets actual testing conditions, and refer to industry standards for validation.

Terms

Instruments

Adopt two-box mobile structure, air pressure drive test object Impact, Thermal Shock mechanism moving time within 10 seconds, temperature recovery time within 5 minutes, in line with MIL and other international test standards.

$ 19809.00

Using two-box mobile Impact structure, Thermal Shock mechanism moves within 10 seconds, temperature recovery time ≤ 5 minutes, equipped with rigid polyurethane foam insulation material, effective energy saving and waterproof and moisture proof.

$ 23682.00

The two-box mobile structure is adopted, the Thermal Shock mechanism moves within 10 seconds, and the temperature recovery time is within 5 minutes. It is equipped with HFC environmentally friendly refrigerant and binary ultra-low temperature freezing system, which has high cooling speed and efficiency. It supports paperless recording and real-time Linear dispersion display function.

$ 16840.00

The three-box structure design is adopted, the test sample is still in the test area, the temperature recovery time is ≤ 5min, and the conversion time is ≤ 10s. It has three test functions of high temperature, low temperature and Thermal Shock, meeting a variety of standard requirements.

$ 21858.00

Using three-box equipment structure, the temperature conversion time does not exceed 10 seconds, the temperature control accuracy reaches +/- 0.5 ℃, and the air circuit switching method realizes fast Thermal Shock, which is suitable for material physical and chemical change testing.

$ 38156.00

Two-box mobile structure, air pressure driven test object Impact, Thermal Shock mechanism moving time within 10 seconds, temperature recovery time within 5 minutes, in line with MIL, IEC and other specifications, with paperless recording and real-time Linear dispersion display function.

$ 17985.00

With three-box structure design, the temperature conversion time is only 10 seconds, the temperature control accuracy is up to +/- 0.5 ℃, and it is equipped with touch graphic operation interface and air passage switching system to achieve fast and stable Thermal Shock testing.

$ 36381.00

Using a two-box mobile Impact structure, the air pressure drives the test object to move up and down, the Thermal Shock mechanism moves within 10 seconds, and the temperature recovery time is within 5 minutes. Equipped with HFC environmentally friendly refrigerant and ultra-low temperature freezing system, the cooling is fast and efficient.

$ 16840.00

The three-box structure design is adopted, the temperature conversion time does not exceed 10 seconds, the temperature control accuracy is up to +/- 0.5 ℃, the Thermal Shock test is realized through the air circuit switching, and the touch graphic operation interface is equipped to simplify the operation process.

$ 16759.00

Adopting a three-box structure design, the temperature recovery time does not exceed 5 minutes, and the temperature conversion is completed within 10 seconds. It is equipped with a touch-sensitive graphic operation interface and an air path switching system to achieve fast and stable Thermal Shock testing.

$ 12660.00

Temperature range -40 ℃ to + 150 ℃, the temperature conversion time is only 10 seconds, using PID full digital automatic Control system, can quickly detect the material in the extremely high temperature and low temperature continuous environment resistance and thermal expansion and contraction changes.

$ 17303.00

The static test is realized by the Three-Box structure air path switching method, with a maximum impact time of 999 hours and a cycle period of 9999 times. It is equipped with a binary refrigeration system for rapid cooling, and supports automatic cycling or manual selective impact.

$ 12139.00

With two-box mobile Impact structure, the temperature recovery time is less than 5 minutes, and the conversion time is only 10 seconds. Equipped with rigid polyurethane foam insulation material, it has ultra-low temperature thermal conductivity and waterproof performance, and supports programmed temperature control.

$ 14564.00

Dynamic Impact is achieved with a two-box mobile structure, with a hot and cold conversion time of 10 seconds and a temperature recovery time of 5 minutes. It is equipped with rigid polyurethane foam insulation material, with ultra-low temperature thermal conductivity and multiple safety protection devices.

$ 14564.00

Three-box structure design, temperature conversion time does not exceed 10 seconds, temperature control accuracy of +/- 0.5 ℃, liner size 800 * 850 * 600mm, suitable for material thermal expansion and contraction test, easy to operate.

$ 28490.00

Articles

Rapid temperature change high and low temperature test chamber for thermal fatigue evaluation of PCB board solder joints.
This paper discusses the application of rapid temperature change high and low temperature test chambers in evaluating the thermal fatigue of PCB board solder joints. Solder joint fatigue is primarily caused by differences in material thermal expansion, and the test chamber simulates thermal stress through temperature cycling to accelerate the fatigue process.
Thermal shock test chamber measures the thermal shock resistance of polymer films.
This article introduces how to test the thermal shock resistance of polymer films using a thermal shock test chamber. The test involves rapidly switching the film between high and low temperatures to simulate the drastic temperature changes that may occur in actual use, thereby generating thermal stress within the material.
Thermal Shock Test Chamber Measures Film's Temperature Change Resistance
The thermal shock test chamber creates thermal stress inside the film by rapidly switching between high and low temperature environments, testing its resistance to temperature changes. During the test, key parameters such as temperature range and dwell time need to be set, and the film is observed for issues such as cracking or performance degradation.
Thermal Shock Test Chamber Evaluates Coating Thermal Stability
The thermal shock test chamber simulates sudden temperature changes by rapidly switching between high and low temperature environments, used to evaluate the thermal stability of coatings. In practical applications, coatings may develop internal stresses due to drastic temperature fluctuations, leading to issues such as cracking and peeling.
The essential difference between thermal shock test chambers and high-low temperature alternating test chambers.
Both thermal shock test chambers and temperature cycling test chambers are used to test the temperature resistance of products, but their core differences lie in the method and purpose of temperature change.
Technical Differences Between Two-Chamber and Three-Chamber Thermal Shock Test Chambers
The thermal shock test chamber is used to test a product's resistance to sudden temperature changes, primarily through two methods: the two-chamber method and the three-chamber method. What are the differences between them? This article will tell you!
The difference between thermal shock test chambers and constant temperature and humidity chambers
This article compares the differences between thermal shock test chambers and constant temperature and humidity chambers in terms of working principles, key performance, and applications.