Temperature-controlled viscoMeter

The temperature-controlled viscometer determines viscosity by heating or cooling a sample and measuring its flow resistance. It is used to monitor changes in the viscosity of materials such as coatings and inks at different temperatures, ensuring stable process conditions.
Selection
When selecting, consider that the measurement range covers the viscosity of the sample, the temperature control accuracy matches the process requirements, the corrosion resistance of the material adapts to the characteristics of the sample, the ease of operation meets daily use, and refer to the reliability of the brand.

Terms

Standards

Instruments

The internal resistance range is less than or equal to 5mΩ, the peak current is up to 1000A, and it is automatically controlled by PLC. It has the function of temperature monitoring and can set short-circuit stop conditions to ensure accurate and reliable test data.

$ 1632.00

Measurement accuracy of 0.1 ℃, range of 0~ 100 ℃, real-time display of temperature values, suitable for a variety of Viscometer models, to ensure a stable test environment.

$ 135.00

Adapt to a variety of Viscometer use, suitable for factory field applications, real-time printing measurement results, no need to hand copy, easy operation, can save labor time.

$ 183.00

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

Rotation speed is continuously adjustable by microcomputer controlled stepper motor, viscosity range is 10~ 6000000 mPa.s, Measurement accuracy +/- 3% F.S., compact structure and good anti-interference performance.

$ 719.00

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

$ 1155.00

Temperature control accuracy of +/- 0.1 ℃, Oscillation Frequency Range start to 320rpm, stainless steel cavity corrosion resistance, smooth operation and easy operation, suitable for a variety of comparative tests.

$ 1071.00

The test program can be uploaded to the Viscometer host, the analysis record data can be collected, the rheological Linear dispersion and Excel can be generated, and five sets of data can be plotted and compared at the same time.

$ 204.00

Air-Cooled fully enclosed Compressor and overall foaming process, high cooling efficiency and good insulation performance, Temperature range of -40~ 95 ℃, Tank size of 300 * 240 * 150mm.

$ 3599.00

Using Air-Cooled fully enclosed Compressor and overall foaming process, high cooling efficiency and good insulation performance, Temperature range -20~ 95 ℃, Tank size is 300 * 150 * 150mm.

$ 1106.00

Silicone oil standard solution, calibrated viscosity 380cp, capacity 400ml, suitable for Viscometer calibrating.

$ 185.00

It has two oscillation functions of reciprocating and rotating, temperature control accuracy +/- 1 ℃, stepless speed regulation range start~ 300rpm, spring test bottle clip supports a variety of comparison tests, smooth operation and easy operation.

$ 483.00

With reciprocating and rotating two oscillation modes, temperature control accuracy +/- 1 ℃, Oscillation Frequency start~ 300rpm, stepless speed regulation smooth operation, stainless steel cavity corrosion resistance, suitable for a variety of comparative tests.

$ 601.00

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.
Guide to Selecting a Laboratory Rotational Viscometer for Coatings Development
This article introduces how to select a laboratory rotational viscometer in coatings research and development. It first explains the principle of rotational viscometers measuring viscosity based on shear resistance, and then points out that key parameters to consider during selection include measurement range, shear rate, temperature control, and rotor configuration.
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.
Temperature-controlled Rotational Viscometer Simulates Coating Rheology in Construction Environments
This article introduces how to use a temperature-controlled rotational viscometer to simulate construction environments in order to study the flow characteristics of coatings. The viscosity of coatings changes under different temperatures and shear conditions, which affects their application performance.
Standard Method for Measuring the Melt Viscosity of Hot Melt Adhesives with a Rotational Viscometer
This article introduces the standard method for measuring the molten viscosity of hot-melt adhesives using a rotational viscometer. During the measurement, the hot-melt adhesive sample must be fully melted and degassed, placed into a measuring cup, and then measured with the rotational viscometer at a set temperature.
Method for measuring ink viscosity with a rotational viscometer
A rotational viscometer measures viscosity by detecting the torque experienced by the rotor as it rotates in the ink, with the calculation formula being η = K × (T/ω). Before measurement, it is necessary to select an appropriate rotor, control the temperature, and calibrate the instrument.