High-Low Temperature Fast Thermal Cycling Chamber

The high and low temperature rapid thermal cycling test chamber rapidly switches temperature environments within a closed space by utilizing compressor refrigeration and electric heating tubes. It is used to simulate the tolerance of products under conditions of sudden cooling and heating, commonly applied in reliability verification for products such as electronic components and automotive parts.
Selection
When selecting, ensure the temperature range covers testing requirements, choose the temperature change rate according to standards, and match the workspace size to the sample volume. Confirm the temperature control accuracy and uniformity specifications of the equipment, check the compatibility between the cooling system's power and heat dissipation conditions, and pay attention to the corrosion resistance of the cabinet material and the configuration of safety protection features.

Terms

Standards

Instruments

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 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

The three-box structure is used to achieve a completely static test zone, with a temperature conversion time of ≤ 10 seconds and a temperature recovery of ≤ 5 minutes. It has an Impact range of 150 ° C in the high temperature zone and -55 ° C in the low temperature zone, meeting the needs of rapid temperature change testing.

$ 24133.00

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

Adopting a two-box mobile structure, the high temperature zone reaches 150 ° C and the low temperature zone reaches -40 ° C, the conversion time is within 10 seconds, and the recovery time is within 5 minutes. It is equipped with a touch screen controller and rigid polyurethane insulation material.

$ 21406.00

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

Adopting triple-channel thermal insulation structure, the throttle switching time is completed within 10 seconds, and the temperature recovery time is completed within 5 minutes. With 96 test specification settings, the Impact time can reach 9999 minutes, and the cycle period is 9999 times, meeting the needs of High Accuracy Temperature Control.

$ 16372.00

Dynamic impact testing is achieved with a two-box mobile structure. The impact conversion time is within 10 seconds, and the temperature recovery time is within 5 minutes. It is equipped with rigid polyurethane foam insulation materials to ensure low thermal conductivity and meet a number of national standards.

$ 12289.00

Adopt three-box structure to achieve rapid temperature conversion, conversion time ≤ 10 seconds, temperature control accuracy of +/- 0.5 ℃, equipped with air passage switching system and microcomputer equilibrate temperature control system to ensure test Stability.

$ 24150.00

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 triple-channel thermal insulation structure, the damper switching time is completed within 10 seconds, and the temperature recovery time is within 5 minutes. With 96 test specification settings, the maximum Impact time is 9999 minutes, meeting the needs of high and low temperature rapid change testing.

$ 27829.00

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

The three-box heat storage and cold storage structure is adopted, the temperature conversion time is ≤ 10 seconds, and the temperature recovery time is ≤ 5 minutes, which can realize the rapid Impact test of high temperature 150 ℃ to low temperature -55 ℃, and meet the environmental adaptability verification of the extreme temperature of the material.

$ 18437.00

The three-box structure is used to realize the static test sample, the strong cooling hot air circuit switching technology, the temperature conversion time is less than or equal to 10 seconds, the temperature recovery time is less than or equal to 5 minutes, and the temperature control function is independent in the high temperature zone, the low temperature zone and the test zone.

$ 15032.00

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

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.
Application of Three-Chamber High and Low Temperature Test Chambers in Rapid Temperature Cycling for Electronic Products
The three-chamber high-low temperature test chamber is used for reliability testing of electronic products, enabling rapid temperature transitions through independent high temperature, low temperature, and test zones. Compared to traditional single-chamber equipment, it reduces temperature change time and enhances testing efficiency.
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This article introduces how to use a high-low temperature alternating test chamber to determine the low-temperature brittleness temperature of plastics.
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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 necessity of explosion-proof high and low temperature test chambers in lithium battery testing
Lithium batteries pose a risk of thermal runaway or even explosion when tested under extreme temperatures. Explosion-proof high-low temperature test chambers, designed with pressure relief structures, explosion-proof electrical components, and intelligent monitoring systems, can safely release energy and ensure the safety of the testing process.
Tensile Testing Machine Evaluates High and Low Temperature Tensile Properties of Hot Melt Adhesive
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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.