Industrial high-temperature Thermometer

Industrial high-temperature thermometers measure temperature by receiving infrared energy radiated from objects and converting it into temperature readings. They are used for non-contact measurement of surface temperatures in high-temperature equipment such as furnaces and kilns, and for monitoring production temperatures in industries such as metallurgy, glass, and ceramics.
Selection
When selecting, consider that the temperature measurement range should cover actual needs, the response speed should match dynamic processes, measurement accuracy should meet process requirements, environmental durability should adapt to on-site conditions, and it should be compatible with the emissivity characteristics of the target material.
type
How it works
upper limit of temperature measurement
lower limit of temperature measurement
DS object distance ratio
precision

Terms

Standards

Instruments

The digital display temperature control is accurate and reliable, the hot air circulation system is composed of a high temperature fan and a suitable air duct to improve the Temperature uniformity in the working room, and the heating wire is installed at the bottom to heat up quickly.

$ 2171.00

Using 16-bit AD converter and K-type Thermocouple, sampling speed 16 times per second, Measurement range -50 ° C to 1300 ° C, support Fahrenheit switching and data retention functions.

$ 104.00

With 50:1 high object distance ratio and 0.1 ℃ resolution, temperature measurement range 200~ 1850 ℃, Response Time 500ms, support laser positioning and data locking, suitable for a variety of industrial scenarios.

$ 430.00

The equipment temperature range -50~ 750 ℃, object distance ratio 12:1, Response Time 500ms, with non-contact measurement, High Accuracy and Fast Response characteristics, suitable for a variety of industrial scenarios.

$ 95.00

With CAL Check ™ boot Self-check function, temperature measurement accuracy of +/- 0.2 ℃, using penetrating AISI 316 stainless steel Probe, IP65 waterproof, suitable for semi-solid and frozen material temperature measurement.

$ 199.00

Foldable stainless steel probe design, temperature range -49.9~ 49.9 ℃, Accuracy up to +/- 0.5 ℃, equipped with large LCD display and Fahrenheit switching function, easy to high temperature liquid safety measurement.

$ 318.00

Using penetrating AISI 316 stainless steel Probe, temperature range -50.0~ 220 ℃, accuracy +/- 0.2 ℃, with boot Self-check function, easy to clean and suitable for semi-solid and frozen materials.

$ 262.00

Temperature measurement range 200~ 1850 ℃, object distance ratio 80:1, Response wavelength 900~ 1700nm, support Data storage and USB connection, suitable for long-distance accurate measurement.

$ 263.00

Temperature range -80~ 130 ℃, Temperature Fluctuation ≤ +/- 0.5 ℃, using a unique equilibrate temperature control method to achieve high precision and stable temperature control, to meet the needs of a variety of environment testing.

$ 7753.00

Temperature range from -50.0 to 1350 ℃, support dual-line display real-time and maximum MIN Minimum, equipped with automatic shutdown and HOLD locking function, resolution of 0.1 ℃/1 ℃, adapt to a variety of environmental conditions.

$ 332.00

With a wide temperature measurement range of -50~ 480 ℃, the accuracy is +/- 1.5%, the Response Time is only 500ms, the object distance ratio is 12:1, suitable for fast non-contact measurement, lightweight and portable.

$ 103.00

With penetrating AISI 316 stainless steel Probe, easy to clean and insert semi-solid pRoducts. With CAL Check ™ boot self-check function, temperature accuracy of +/- 0.2 ℃, Measurement range covering -50.0~ 220 ℃.

$ 211.00

Temperature range -80~ 130 ℃, Temperature Fluctuation ≤ +/- 0.5 ℃, using a unique equilibrate temperature control method to achieve high-precision stable temperature control, to meet a variety of industry testing needs.

$ 5771.00

Temperature range -20~ 130 ℃, Temperature Fluctuation ≤ +/- 0.5 ℃, using a unique equilibrate temperature control method to achieve high precision temperature control, 304 stainless steel studio to ensure long-term stable operation.

$ 3194.00

With -50~ 900 ℃ wide range and +/- 2% accuracy, 12:1 object distance ratio for non-contact measurement, Response Time 500ms, compact and lightweight only 170g, suitable for high temperature or hazardous environment.

$ 114.00

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.
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.
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.
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.
High-temperature aging chamber for testing thermal-oxidative aging of plastic films.
This article introduces the method of testing the thermo-oxidative aging of plastic films using a high-temperature aging chamber. Thermo-oxidative aging refers to the chemical changes that occur in plastics under high temperature and oxygen exposure, leading to a decline in performance.
Humidity and heat test chamber tests the moisture absorption rate of resin under high temperature and high humidity conditions.
This article introduces the method of using a hygrothermal test chamber to measure the moisture absorption rate of resin under high temperature and high humidity conditions.
Humidity and Heat Test Chamber for Evaluating Coating Performance under High Temperature and High Humidity Conditions
This article introduces how a humidity and heat test chamber is used to evaluate the performance of coatings in high-temperature and high-humidity environments. Coatings are widely used in industries such as automotive and electronics, but they are prone to issues like reduced adhesion and blistering under actual high-temperature and high-humidity conditions.