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Exploring the Causes of Defrosting in Thermal Shock Test Chambers

Source:LINPIN Time:2025-03-28 Category:Industry News

Frost formation in a thermal shock test chamber is a sublimation phenomenon where moisture inside the chamber condenses under low-temperature conditions. But why does this happen? Is it simply because the chamber temperature is too low?

In a thermal shock test chamber, airflow and moisture are channeled through specific pathways. During operation, the sealed environment of the chamber creates a closed-loop system. When simulating extreme temperature conditions, fluctuations in temperature and humidity cause water vapor to condense and freeze, leading to frost or crystallization.

However, prolonged frost accumulation can have adverse effects:

Increased load on the refrigeration compressor, significantly reducing cooling efficiency.
Compromised test reliability due to unstable temperature control.
Therefore, timely defrosting is essential once frost is detected.

Defrosting Methods
Many modern test chambers are equipped with automatic defrosting systems, which typically follow this process:

The low-temperature compartment initiates defrosting.
An electromagnetic valve redirects high-temperature, high-pressure gas from the compressor’s exhaust to the refrigeration evaporator.
The evaporator absorbs heat, raising its surface temperature to melt frost into water.
The water is drained through a dedicated channel, completing the defrosting cycle.
Best Practices to Minimize Frost
Limit door openings during operation, as frequent access introduces external moisture and accelerates frost buildup.
Regular maintenance helps sustain optimal performance.
While defrosting is a routine task that users can manage by troubleshooting, technical issues should be promptly addressed by contacting the manufacturer’s after-sales support.

Key Takeaway:
Understanding frost causes and defrosting mechanisms ensures long-term chamber efficiency and accurate test results. For operational challenges, always consult professional support.

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Salt-spray cabinets artificially intensify corrosive agents so that months or even years of marine or industrial atmospheric attack are reproduced within a few hours or days. This paper systematically describes the working mechanism of the equipment, the control logic of its critical parameters, and the quantitative correspondence between test results and natural exposure. The aim is to provide industry with the technical basis for tailoring test programmes to specific products.
High-temperature test chambers are widely used in environmental testing industries. Below are the key structural characteristics of these devices
Temperature shock test chambers on the market are divided into two main types. One type is the two-chamber model, which includes a high-temperature zone and a low-temperature zone.
Temperature is the most fundamental—and most brutal—physical parameter influencing the reliability of materials, components and complete systems. GB/T 2423.1, GB/T 2423.2, GJB 150.3A, GJB 150.4A, DO-160 Section 4/5, IEC 60068-2-1/-2 and MIL-STD-810H all quantify requirements for temperature slew rate, dwell time, heat load and measurement uncertainty.
If a constant temperature and humidity test chamber malfunctions due to improper operation or lack of maintenance, it will not only affect the progress of work but also incur costs much higher than those of regular maintenance.
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