Vacuum Atmosphere Furnace

The vacuum atmosphere furnace creates a specific atmosphere environment within a sealed space by evacuating air and filling it with protective gas. It utilizes resistance heating elements to heat materials, preventing oxidation or enabling specific chemical reactions. It is used in processes such as material sintering, heat treatment, and brazing.
Selection
Select the heating zone size based on the process temperature, and determine the vacuum level and atmosphere type according to the characteristics of the material being processed. Match the power and temperature control system by considering heating rate and uniformity requirements. Choose the furnace body structure material based on the frequency of use, and confirm the safety protection and gas emission configurations.

Terms

Standards

Instruments

Operating temperature up to 1700 ℃, Furnace volume 80L, aluminum oxide fiber Furnace and double chill down system, support inert and reducing atmosphere environment material sintering treatment.

$ 7867.00

Operating temperature up to 1400 ℃, Furnace volume 80L, using aluminum oxide fiber Furnace and silicon carbon Rod heating, with double chill down system and accurate Gas flow rate control, support inert atmosphere sintering process.

$ 6012.00

The highest temperature is 1400 ℃, the Furnace volume is 4.5L, and the aluminum oxide fiber Furnace and silicon carbon Rod heating elements are used to support the inert gas environment and ensure the uniform and stable sintering of the material.

$ 3720.00

Maximum temperature of 1700 ℃, Furnace volume of 12 liters, using silicon molybdenum Rod heating and aluminum oxide fiber Furnace to ensure uniform heating and durability, support inert or reducing gas environment, suitable for high temperature material processing.

$ 5979.00

Maximum temperature up to 1700 ℃, Furnace volume 36L, using aluminum oxide fiber material and silicon molybdenum Rod heating element, equipped with a chill down system to ensure sealing performance, support inert or reducing gas environment sintering.

$ 6851.00

Operating temperature of 1400 ℃, Furnace volume of 36 liters, aluminum oxide fiber Furnace and double chill down system, support material sintering process in inert gas environment.

$ 4914.00

Inlet and outlet devices are used to intRoduce inert gas to effectively prevent oxidation and decarburization of high-temperature heating workpieces. The Furnace volume is 16L and the maximum temperature is 1200 ° C. The high-temperature spraying process of the shell is durable.

$ 954.00

Operating temperature up to 1400 ℃, Furnace volume of 12 liters, using silicon carbon Rod heating element and double chill down system, support inert gas and reducing gas environment material sintering process.

$ 4285.00

With inert gas protection system, effectively prevent high temperature heating workpiece oxidation decarburization; maximum temperature 1000 ℃, Furnace size 300 * 200 * 120mm; shell made of cold plate and steel, with air intake and air outlet device on the back.

$ 541.00

Operating temperature up to 1100 ℃, Furnace size Φ 60 × 1000mm, using Air-Cooled system to ensure stable operation of the equipment, suitable for material sintering in an inert gas environment.

$ 1800.00

With inert gas protection system can prevent high temperature heating workpiece oxidation decarburization, rated temperature up to 1200 ℃, Furnace size 200 * 120 * 80mm, the shell is made of cold plate and steel and high temperature spray.

$ 588.00

With inert gas protection system to prevent oxidation and decarburization of heating workpiece, rated temperature 1200 ℃, Inner Chamber dimensions 300 * 200 * 120mm, suitable for a variety of high temperature heat treatment applications.

$ 659.00

Adopting a specific process equipped with air inlet and outlet device, inert gas can be intRoduced to achieve high temperature heating and oxidation prevention, Inner Chamber dimensions 500 * 300 * 200mm, rated temperature up to 1000 ℃, the shell is made of cold plate and section steel and sprayed at high temperature.

$ 877.00

Double shell structure with Air-Cooled system to achieve rapid cooling, 51-stage program temperature control accuracy of +/- 1 ℃, the highest Operating temperature 1400 ℃, support multi-atmosphere environment experiment, heating zone length 300mm to ensure uniform heating.

$ 3478.00

Adopting a specific air inlet and outlet device, inert gas can be intRoduced to achieve high temperature protection, with a maximum temperature of 1200 ° C, a studio volume of 30L, and a shell made of cold plate and section steel and sprayed at high temperature.

$ 1183.00

Articles

Vacuum adsorption coating machine solves the flatness challenge in the transfer of ultra-thin graphene films.
The vacuum adsorption coating machine transfers graphene films smoothly onto target substrates through controlled negative pressure, solving issues such as wrinkling, tearing, and contamination often encountered with traditional methods.
The wire bar coater with heating and vacuum adsorption is used for the preparation of perovskite solar cell layers.
This article introduces a new technique for preparing the light-absorbing layer of perovskite solar cells: a wire-bar coater with heating and vacuum adsorption capabilities.
Vacuum adsorption coating machine is used for the coating of proton exchange membrane fuel cell electrodes.
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Negative pressure method leak detector for testing vacuum packaging seal integrity
The negative pressure leak detector evaluates the seal integrity of vacuum packaging by simulating a pressure differential environment. The instrument places the sample in a testing chamber and creates a vacuum to form negative pressure. If there is a leak, air or liquid will seep into the packaging, and the result is determined by observing pressure changes or the presence of bubbles.
Sealing Tester Measures Leak Points in Flexible Packaging Bags.
This article introduces how a seal tester detects air leak points in flexible packaging bags. It primarily identifies leaks through changes in pressure or vacuum, and the operation involves preparing samples, setting parameters, and conducting standardized testing.
Vacuum adsorption coating of perovskite precursors on flexible substrates.
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Vacuum adsorption coating table solves the problem of film substrate wrinkling.
The vacuum adsorption coating platform uses a microporous array connected to a vacuum system beneath the tabletop to create a pressure difference, tightly adsorbing the film substrate. This ensures it remains flat during the coating process, preventing wrinkles that could lead to uneven coating.
How to Utilize a Vacuum Adsorption Coating Machine to Solve the Slippage Issue During Coating on Flexible PET Substrates
The vacuum adsorption coating machine stabilizes the flexible PET substrate on the coating platform through negative pressure, effectively addressing the slipping issue during the coating process. Slipping is primarily caused by factors such as the smooth surface of PET, insufficient friction, and interference from coating pressure, which can lead to uneven coatings.
Application of Vacuum Heating Integrated Coating Machine in the Preparation of High-Temperature Curing Coating Samples
This article introduces the application of the vacuum heating integrated film coater in the preparation of samples for high-temperature curing coatings. The equipment reduces bubbles in the coating by creating a vacuum environment and integrates programmable heating and curing functions, enabling precise temperature control to promote the chemical cross-linking of the coating and form a uniform film.
Negative Pressure Method Sealing Tester for Detecting Leakage in Food Packaging
The negative pressure method seal tester creates a pressure difference inside and outside the packaging by evacuating air to detect leaks in food packaging. If there is a leak in the packaging, water will enter the packaging or produce continuous bubbles under the pressure difference, thereby determining the seal integrity. The test requires controlling parameters such as vacuum level and time, and should be conducted in accordance with relevant standards.
Principle and Application of Vacuum Decay Leak Testing Equipment
The vacuum decay leak tester is a non-destructive detection device that quantitatively detects leaks by monitoring minute pressure changes in the test chamber after vacuum evacuation.
Key Points for Operating Vacuum Adsorption Coating Machines on Flexible Substrates
Vacuum adsorption coating technology is a key process in flexible electronics, functional coatings, and the preparation of new materials. This technique uses vacuum negative pressure to ensure that flexible substrates are smoothly and evenly adsorbed onto the coating platform. Combined with precision coating, it effectively reduces defects such as wrinkles and bubbles, thereby enhancing the uniformity and consistency of the coating.
Detailed Explanation of Laboratory Vacuum Adsorption Platform: Flatness is the Cornerstone of Successful Coating
The vacuum adsorption platform is a key device in coating experiments, which stabilizes the substrate by negative pressure adsorption, providing a reference plane for coating. The flatness of the platform surface is crucial, as even minor deviations can lead to defects such as uneven coating thickness or the appearance of streaks.
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.
Coating Process of Slurries with Different Viscosities on Vacuum Adsorption Coating Machines
This article explores the process adaptability of slurries with different viscosities on vacuum adsorption coating machines. The slurries are categorized into low, medium, and high viscosity, and their flow characteristics during the coating process, along with key process control points, are discussed respectively.