Experimental Precision Oven

Experimental precision ovens generate a uniform and stable temperature environment within an enclosed space through electric heating and temperature control systems, used for sample drying, curing, or heat treatment. They are applied in laboratory scenarios requiring precise temperature control, such as material moisture determination, coating curing, and plastic aging testing.
Selection
When selecting, pay attention to the temperature range and fluctuation index, determine the internal volume based on sample size, and consider the corrosion resistance of stainless steel material. Ensure compatibility with the load-bearing capacity of sample racks, verify power specifications, and confirm safety features such as over-temperature protection.

Terms

Standards

Instruments

Volume 80L, Temperature resolution up to 0.1 ℃, support multi-stage programmable control, with self-diagnosis and independent temperature limit alarm function, simplify the complex experimental process.

$ 740.00

Mirror stainless steel liner for easy cleaning, PID fuzzy logic controller to ensure Temperature Fluctuation +/- 0.2 ℃, with independent temperature limit alarm system, box with test hole for easy experimental operation.

$ 808.00

Precision PID control technology, Temperature Fluctuation +/- 1%, mirror stainless steel liner anti-acid and alkali corrosion, combined with good air duct design to ensure Temperature uniformity, suitable for applications with high Temperature uniformity requirements.

$ 403.00

Precision PID Control Temperature Fluctuation +/- 1%, mirror stainless steel liner anti-acid and alkali corrosion, studio volume 130L, equipped with independent temperature controller interface to ensure the safety of high-value samples.

$ 649.00

Temperature control accuracy of +/- 1 ℃, Temperature Uniformity +/- 1 ℃, equipped with imported pumps to ensure uniform temperature, strong corrosion resistance, compact structure, long service life.

$ 522.00

Using scraping method to achieve 0.005-3mm wet film thickness, Spreader accuracy of +/- 5%, equipped with hot air circulation Oven and automatic constant tension control to ensure Spreader uniformity and Stability.

$ 40415.00

Large LCD screen, Menu Operating interface, Temperature Fluctuation +/- 1 ℃, Mirror stainless steel liner for easy cleaning, Thickened box design low surface temperature, Thermal Power reduced by more than 25%.

$ 803.00

Temperature range 10~ 250 ℃, Temperature Fluctuation +/- 1 ℃, equipped with mirror stainless steel liner and programmable controller, support multi-stage Program settings, easy to automate the control of complex experimental processes.

$ 967.00

Application width 300mm, Spreader accuracy +/- 0.005mm, Drawdown blade can be quickly disassembled and cleaned, three independent temperature control oven to ensure uniform drying, suitable for a variety of substrates and Stock processing.

$ 24279.00

Multi-stage programmable controller, support 7 groups of 63-step Program settings, Temperature Fluctuation +/- 1 ℃, with mirror stainless steel liner and independent temperature limit alarm system to ensure the safety and stability of the experimental process, Thermal Power is reduced by more than 25% compared with traditional equipment.

$ 917.00

Temperature range 10~ 200 ℃, Temperature Fluctuation +/- 1 ℃, equipped with LCD screen and test hole, support multi-stage programming and fault self-diagnosis function, easy to operate and data management.

$ 601.00

Temperature range 10~ 200 ℃, Temperature resolution 0.1 ℃, mirror stainless steel liner is easy to clean, multi-stage programmable function supports automatic operation, independent temperature limit alarm ensures safety, energy saving design reduces Thermal Power by more than 25%.

$ 646.00

Adopt PID control technology to ensure Temperature Fluctuation +/- 1%, mirror stainless steel liner to prevent acid and alkali corrosion, Inner Chamber dimensions 420 * 450 * 350mm to facilitate sample access, combined with good air duct design to ensure Temperature uniformity.

$ 570.00

Intelligent PID control technology, Temperature Fluctuation +/- 1%, mirror stainless steel liner anti-acid and alkali corrosion, air duct design to ensure uniform temperature, with RS485 Communication interface and independent temperature limiter optional.

$ 729.00

Using dip coating process with double roll extrusion residual material, Spreader thickness adjustable, mechanical speed 0.1-1 m/min, Oven temperature 50-150 ℃ +/- 3 ℃, suitable for a variety of Coating Spreader.

$ 21051.00

Articles

Research on the Stepwise Curing Process of Coatings Using Multi-Stage Temperature Control Ovens
This article investigates a novel process for achieving stepwise curing of coatings using a multi-stage temperature-controlled oven.
Evaluation of thermal aging life of hot melt adhesives using high-temperature oven method
This article introduces a method for evaluating the thermal aging life of hot melt adhesives using a high-temperature oven. The principle is based on the Arrhenius equation, where aging is accelerated by increasing the temperature to simulate performance changes under long-term use.
Thermogravimetric Analyzer for Determining the Solid Content of Coatings
Thermogravimetric analyzers determine the solid content of coatings by monitoring the change in sample mass with temperature, offering faster and more precise results compared to traditional oven methods.
What is the deviation between the moisture meter's rapid moisture measurement and the oven method?
This article primarily compares the differences between rapid moisture analyzers and traditional oven methods in measuring moisture. Understanding these differences helps in using rapid moisture analyzers more appropriately, ensuring data reliability while maintaining efficiency.
Key Technical Points for Determining Paper Moisture Using the 105℃ Oven Method
This article introduces the specific procedure for measuring paper moisture using the 105°C oven method. The process involves placing paper samples into a 105°C oven and drying them until their weight remains constant, then calculating the moisture content based on the weight difference before and after drying.
Oven combined with analytical balance for determination of solid content
This article introduces a method for determining the solid content of samples in the laboratory by combining an oven and an analytical balance.
Temperature gradient control in high-temperature ovens during thermal resistance testing.
The heat resistance test simulates the performance of materials under high temperatures using a high-temperature oven, and the accuracy of its results is highly dependent on the uniformity of temperature inside the oven. If the temperature gradient is poorly controlled, it can lead to uneven heating of samples from the same batch, compromising the validity of the test.
What are the differences between a vacuum oven and a conventional oven?
The main difference between a vacuum oven and a conventional oven lies in their working pressure. Conventional ovens operate at atmospheric pressure, heating through air convection, making them suitable for routine drying tasks. In contrast, vacuum ovens are evacuated to low pressure to reduce air presence, primarily relying on thermal radiation for heat transfer. This makes them ideal for processing heat-sensitive, oxidation-prone materials or those requiring thorough drying.
Natural Convection vs Forced Air Drying: What’s the Difference Between the Two "Schools" of Laboratory Ovens?
This article introduces two drying methods for laboratory ovens: natural convection and forced air drying. What are the differences between them?