Electric Blast High-Temperature Oven

The electric hot air blast high-temperature oven heats the air through electric heating tubes, and the fan circulates the hot air to maintain uniform temperature inside the chamber. It is used for material drying, curing, heat treatment, etc., and in the coatings and plastics industries for sample drying and performance testing.
Selection
When selecting, consider that the temperature range must cover experimental requirements, the inner chamber size should match the sample volume, temperature control accuracy affects result stability, fan performance determines temperature uniformity, material corrosion resistance should suit the experimental environment, and safety features include over-temperature protection and grounding measures.

Terms

Standards

Instruments

Microcomputer intelligent PID control technology to ensure temperature Accuracy +/- 0.5 ℃, the external hot air circulation system makes the indoor temperature stable, high temperature silicone sealing door edge and high temperature heating tube to ensure safety and durability.

$ 323.00

Microcomputer intelligent PID control technology ensures temperature Accuracy +/- 0.5 ℃, external hot air circulation system stabilizes studio temperature, high temperature silicone sealing and high temperature heating tube enhance safety and service life.

$ 394.00

Temperature range RT + 10~ 300 ℃, Temperature Fluctuation +/- 1 ℃, stainless steel liner corrosion resistance, electric heating tube heating fast and uniform, intelligent digital display easy to operate.

$ 403.00

Adopt microcomputer intelligent PID control technology, Temperature Fluctuation +/- 1%, Accuracy +/- 0.5 ℃. External hot air circulation system ensures temperature stability, high temperature silicone sealing door edge and high temperature heating tube ensure safety and durability.

$ 632.00

Microcomputer P.I.D temperature controller, temperature control accuracy +/- 1.0 ℃, volume 136L, with hot air circulation system to improve Temperature Uniformity, support independent temperature limit alarm and optional programming function.

$ 749.00

Microcomputer intelligent PID control technology, Temperature Fluctuation +/- 1%, Accuracy +/- 0.5 ℃, external hot air circulation system to ensure stable temperature, high temperature silicone sealing door safe and durable.

$ 1401.00

Microcomputer PID control technology, Temperature Accuracy +/- 0.5 ℃, equipped with external hot air circulation system to ensure temperature stability, studio shelf spacing adjustable, easy access to different specifications of samples, high temperature silicone sealing door edge to ensure safety.

$ 362.00

Using microcomputer intelligent PID control technology, Temperature Fluctuation +/- 1%, equipped with external hot air circulation system to ensure temperature stability, studio shelf spacing adjustable easy access to samples, high temperature silicone sealing to ensure safety.

$ 498.00

Microcomputer intelligent PID control technology, Temperature Accuracy up to +/- 0.5 ℃, Fluctuation +/- 1%, equipped with external hot air circulation system and high temperature silicone sealing, to ensure temperature stability and safe operation, Inner Chamber dimensions 550 * 550 * 450mm.

$ 951.00

Adopt microcomputer intelligent PID temperature control system, Temperature range RT + 5~ 300 ℃, Temperature Accuracy +/- 1 ℃. Equipped with hot air circulation system to ensure uniform temperature, Inner Chamber dimensions 1000 * 1000 * 1000mm, shelf height and quantity can be adjusted.

$ 1087.00

Using microcomputer intelligent PID control technology, temperature control accuracy of +/- 0.5 ℃, equipped with external hot air circulation system to ensure uniform and stable temperature, studio shelf spacing adjustable easy access to samples.

$ 372.00

Microcomputer intelligent PID control technology ensures temperature Accuracy +/- 0.5 ℃, external hot air circulation system makes the indoor temperature stable, studio shelf spacing adjustable for easy access to samples.

$ 285.00

Microcomputer intelligent PID control technology, Temperature Accuracy +/- 0.5 ℃, Fluctuation +/- 1%, external hot air circulation system to ensure stable temperature, studio shelf adjustable.

$ 301.00

Adopt microcomputer intelligent PID control technology, Temperature Fluctuation +/- 1%, Accuracy +/- 0.5 ℃. External hot air circulation system ensures stable temperature, adjustable number of studio shelf spacing, convenient access to samples of different specifications.

$ 772.00

Microcomputer intelligent PID digital display temperature control, temperature Accuracy +/- 1 ℃, equipped with hot air circulation system and double-decked tempered Glass observation window, studio shelf height can be adjusted, support independent temperature control function.

$ 327.00

Articles

Application of High-Temperature Viscometer in Testing the Melt Viscosity Characteristics of Hot Melt Ink
This article introduces a method for testing the melt viscosity of hot-melt ink using a high-temperature viscometer. The test employs a rotational viscometer to measure the viscosity of three ink samples at different temperatures.
Application of High-Temperature Universal Testing Machine in the Study of Hot Modulus of Rupture of Refractory Materials
This article introduces the application of a high-temperature universal testing machine in measuring the hot modulus of rupture of refractory materials. It explains the working principle, testing procedure, and key parameters of the testing machine, such as the effects of heating rate, holding time, and loading rate.
How is a high-temperature muffle furnace applied in ash determination?
This article introduces the application of high-temperature muffle furnaces in ash determination. The principle of ash determination involves completely burning the sample at high temperatures, leaving behind inorganic mineral residues. The muffle furnace provides a stable and controllable thermal environment, ensuring accurate results.
Laboratory Drying Oven Model Selection - Difference Between Forced Air Convection and Non-Forced Air Convection
This article on the selection of laboratory drying ovens primarily introduces the differences between forced convection (air-blowing) and natural convection (non-air-blowing) drying ovens.
Ultrasonic Thickness Gauge Selection: Technical Considerations for Probe Configuration and Measurement Modes
This article primarily introduces the technical factors to consider when selecting an ultrasonic thickness gauge. In terms of probe configuration, the frequency affects both resolution and penetration depth, while crystal size determines adaptability to curvature and surface conditions. Dual-element probes offer a smaller dead zone compared to single-element probes, and delay-line probes are suitable for thin-wall and high-temperature applications.
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.
Temperature Oscillation Suppression in Reflux Synthesis Using Laboratory Stirring Heating Mantles
This article explores the causes and suppression methods of temperature oscillations in laboratory heating mantles during reflux synthesis.
High-temperature viscometer evaluates the flow characteristics of ceramic coatings before sintering.
This article introduces how to use a high-temperature viscometer to evaluate the flow characteristics of ceramic coatings before sintering. During measurement, the instrument detects changes in the viscosity of the coating sample under simulated sintering temperature conditions using rotational or oscillatory principles.
High-temperature viscometer measures the flow behavior of powder coatings in the molten state.
This article introduces the use of a high-temperature viscometer to measure the flow behavior of powder coatings in their molten state. Powder coatings need to melt and flow before curing, a process that directly affects the smoothness and performance of the coating.
Temperature uniformity of high-temperature aging test chamber for UV resistance testing of inks
This article discusses how the temperature uniformity of high-temperature aging test chambers affects the accuracy of ink UV resistance testing. Temperature uniformity refers to the deviation in temperature at various points inside the chamber, with smaller deviations leading to more reliable test results.
High-temperature aging test chamber accelerates life testing of electronic components.
The high-temperature aging test chamber accelerates the physical and chemical changes within electronic components by simulating high-temperature environments, thereby predicting their long-term performance and failure modes.
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.
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.
Hot air aging oven measures the long-term thermal-oxygen life of engineering plastics.
This article introduces how to use a hot air aging oven to test the long-term thermal-oxidative lifespan of engineering plastics. The test is based on the Arrhenius equation, which accelerates material aging at high temperatures to simulate performance changes under actual usage conditions.
Melt flow index tester measures the processing fluidity of high-temperature engineering plastics.
This article introduces how a melt flow indexer measures the processing fluidity of high-temperature engineering plastics. It first explains the working principle of the instrument, which involves measuring the rate at which molten plastic passes through a standard die under specific temperature and pressure conditions to obtain the melt flow rate value.