Dry Type Low Temperature Thermostat

The dry low-temperature thermostatic bath utilizes compressor cooling and electric heating elements, achieving temperature control through direct contact between a metal block and the sample. It is used for constant temperature treatment of laboratory samples, maintaining stability within the range of -40℃ to 100℃, and is suitable for scenarios requiring precise temperature control, such as material testing and chemical reactions.
Selection
When selecting a dry bath incubator, consider the temperature range and precision, compatibility with module materials, heating and cooling rates, and sample capacity and dimensions. Verify the safety protection features of the equipment, and match it with specific experimental requirements based on laboratory space and power conditions.

Terms

Standards

Instruments

Equipped with powerful pressure suction pump to support peripheral groove thermostatic, Temperature Fluctuation is only +/- 0.1 ℃, pump flow 4L/min, with over-temperature and low temperature sound and light alarm and liquid level protection functions to ensure sample safety.

$ 1389.00

Equipped with a strong pressure suction pump to provide a thermostatic source for the peripheral Tank, temperature accuracy +/- 0.1 ℃, over-temperature and low temperature sound and light tracking alarm and liquid level protection functions ensure the safety and reliability of the sample.

$ 877.00

Using high temperature dry heat technology, temperature control accuracy of +/- 1 ℃, rapid heating and over-temperature protection function, studio volume 70L, easy and safe operation.

$ 574.00

Temperature range -30~ 100 ℃, Temperature Fluctuation +/- 0.1 ℃, equipped with strong pressure suction pump and external connection port, support over-temperature low temperature sound and light alarm and liquid level protection functions to ensure the safety and reliability of the sample.

$ 2362.00

Temperature range -10~ 95 ℃, using Air-Cooled fully enclosed Compressor, high cooling efficiency, low noise, the inner Tank is made of stainless steel, and the overall foaming and heat insulation performance of the low temperature Tank is good.

$ 1845.00

Adopt high temperature dry heat technology, effectively destroy the microbial cell structure through oxidation. Temperature range RT + 10~ 200 ℃, temperature fluctuation is only +/- 1 ℃, with forced convection system to improve heating efficiency, Multiple Safety protection mechanisms to ensure safe operation.

$ 438.00

Equipped with a strong pressure suction pump can provide a thermostatic source for the peripheral Tank, with a temperature accuracy of +/- 0.1 ° C, with over-temperature and low temperature sound and light alarm and liquid level protection functions to ensure the safety and reliability of the sample.

$ 1098.00

Temperature range -20~ 95 ℃, using Air-Cooled fully enclosed Compressor refrigeration, cooling fast low noise, the overall foaming performance of the Tank body is good, the inner Tank is made of stainless steel.

$ 2934.00

Temperature range -10~ 95 ℃, using Air-Cooled fully enclosed Compressor, high cooling efficiency, low noise, the inner Tank is made of stainless steel, good thermal insulation performance.

$ 2426.00

Temperature range -5~ 95 ℃, using Air-Cooled fully enclosed Compressor and overall foaming process, high cooling efficiency and good thermal insulation performance, low noise and vibration.

$ 1687.00

Temperature range -20~ 95 ℃, using Air-Cooled fully enclosed Compressor, efficient and fast cooling, low noise and less vibration, the inner Tank is made of stainless steel, and the thermal insulation performance is good.

$ 1676.00

Temperature range -10~ 95 ℃, using Air-Cooled fully enclosed Compressor, good cooling effect, low noise, the inner Tank is made of stainless steel, and the Tank body is foamed and insulated as a whole.

$ 1518.00

Temperature range -30~ 95 ℃, the use of Air-Cooled fully enclosed Compressor refrigeration, cooling fast low noise, the whole Tank foaming insulation, the inner Tank is made of stainless steel to ensure uniform and stable temperature.

$ 3696.00

Temperature range -5~ 95 ℃, using Air-Cooled fully enclosed Compressor, high cooling efficiency and low noise, the whole Tank foamed insulation, the inner Tank is made of stainless steel, PID automatic temperature control accuracy.

$ 2244.00

Temperature range -10~ 95 ℃, using Air-Cooled fully enclosed Compressor, high cooling efficiency and low noise, the inner Tank is made of stainless steel, and the overall foaming process has good thermal insulation performance.

$ 1240.00

Articles

Constant temperature bath selection: circulation method and temperature control range.
This article on thermostatic bath selection primarily analyzes two core factors: circulation mode and temperature control range. The circulation mode is divided into natural convection and forced circulation, where the former is suitable for simple static experiments, while the latter offers higher precision and is better suited for multiple samples or integration with external devices.
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.
High and low temperature alternating test chamber for measuring low-temperature embrittlement temperature of plastics
This article introduces how to use a high-low temperature alternating test chamber to determine the low-temperature brittleness temperature of plastics.
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.
Flash point tester for determination of closed cup flash point of varnish
This article introduces the method for determining the closed-cup flash point of varnish using a flash point tester. The flash point refers to the minimum temperature at which the vapor on the surface of the varnish ignites momentarily when exposed to a flame after heating. It is a crucial indicator for assessing the fire risk during its production, storage, and transportation.
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.
Key Points for Selecting Low-Temperature Test Chambers in Rubber and Plastic Brittleness Temperature Testing
In the testing of brittle temperature for rubber and plastics, the selection of a low-temperature test chamber must ensure testing accuracy. When choosing the equipment, it is essential to consider various parameters comprehensively based on the requirements of the testing standards.
The flash point tester measures the safety baseline value of the solvent.
The flash point refers to the minimum temperature at which the vapor of a flammable liquid can be ignited. It is not a fixed value but depends on the testing method and instrument. Data measured by flash point testers serve as a critical basis for evaluating the fire risk of solvents and establishing standards for safe storage and operation.
Safety Regulations for Closed Cup and Open Cup Methods for Testing the Flash Point of Coatings.
This article introduces two main testing methods for the flash point of coatings: the closed-cup method and the open-cup method. The flash point refers to the lowest temperature at which the vapor of a coating momentarily ignites upon encountering an open flame, serving as a critical indicator for assessing the risk of fire and explosion.
Tensile Testing Machine Evaluates High and Low Temperature Tensile Properties of Hot Melt Adhesive
This article introduces how to use a tensile testing machine to test the tensile properties of hot-melt adhesives at different temperatures. The performance of hot-melt adhesives varies with temperature: they may soften at high temperatures and become brittle at low temperatures.
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.