High-temperature varnish viscosity Tester

The high-temperature varnish viscometer measures the flow resistance of fluids at specific temperatures to reflect viscosity. Its function is to monitor the coating performance of paints under high-temperature conditions during production, and it is applied in quality control for varnishes that require high-temperature curing, such as in automotive and industrial baking finishes.
Selection
When selecting, consider the maximum operating temperature range of the varnish to ensure compatibility with the instrument's temperature control. Choose between rotational or capillary measurement methods based on material characteristics. Check the instrument's accuracy and repeatability indicators. Confirm the simplicity of the operation interface and data output functionality. Evaluate the equipment's maintenance requirements and durability.

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

Rotation speed is accurate and stable with high subdivision stepper motor. Measurement accuracy is +/- 1% F.S. The embedded integral heating design makes the heating uniform and the thermal inertia is small, and supports the whole process monitoring of viscosity-temperature Linear dispersion changes.

$ 1703.00

The stainless steel sample container is easy to clean, only 16 ml sample volume, Temperature range 0.1 ℃ -100 ℃, L-type Measurement range 0.7-2000 mpas, to achieve accurate viscosity measurement.

$ 2252.00

Aperture 4.26mm, viscosity range 200-1200cSt, outflow time 20-80 seconds, in line with ASTM standard design, can quickly determine the Newton type liquid viscosity, suitable for a variety of viscosity test scenarios.

$ 115.00

6Mm diaMeter outflow hole design, stainless steel material durable anti-corrosion, can be freely replaced with filter holder, expand the scope of application of viscosity Cup test, to meet different viscosity measurement needs.

$ 150.00

8Mm diaMeter outflow hole design, durable stainless steel material, can be freely replaced with filter holder, expand the test range of viscosity Cup, meet different viscosity measurement needs.

$ 155.00

Rotation speed is accurate and stable with high subdivision stepper motor, viscosity range of 10~ 1000000mPa · s, temperature accuracy +/- 0.1 ℃, support continuously variable speed and direct liquid crystal display, no need for secondary calculation.

$ 1886.00

Made of stainless steel, equipped with 5mm diaMeter outflow hole, can be used with DIN viscosity Cup to achieve diverse viscosity testing requirements by replacing different diaMeter filters.

$ 155.00

Adopting high-temperature non-alkali fiberglass insulation layer sealing resistance wire, the heating area is large and the temperature rises quickly, the maximum operating temperature is 380 ° C and supports continuous work, and the hemispherical design is not easy to bruise Glass ware.

$ 222.00

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

The equipment integrates viscosity measurement and temperature control, temperature control accuracy +/- 0.1 ℃, supports 2-16ml small sample volume, uses SC4 rotor to provide accurate viscosity data, electric lifting and automatic optimization program to improve operation convenience.

$ 5881.00

Rotation speed is accurate and stable with high subdivision stepper motor, viscosity range of 50~ 10000000mPa · s, temperature control accuracy +/- 0.1 ℃, support real-time monitoring of viscosity-temperature Linear dispersion and over-limit alarm function.

$ 2475.00

Range 20~ 2,000,000 mPa · s, repRoducibility +/- 0.5% F. S, LCD display viscosity, Rotation speed, temperature and torque, easy operation and high accuracy.

$ 595.00

The small sample adapter only needs 2-16ml sample volume, temperature accuracy of +/- 0.1 ℃, supports stepless speed measurement and automatic lifting system, with viscosity and temperature correction function and a variety of data storage methods.

$ 5023.00

Rotation speed is accurate and stable, viscosity range is 50~ 10000000mPa · s, temperature accuracy is +/- 0.1 ℃, manual automatic measurement and stepless speed control are supported.

$ 2207.00

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 Cone-and-Plate Viscometer in Determining the Rheological Curve of Non-Newtonian Fluids in UV Inks
This article introduces how a cone-plate viscometer measures the rheological curve of UV ink. UV ink is a non-Newtonian fluid whose viscosity changes with shear rate.
Lab Mixer Selection - Viscosity Determines Torque
This article mainly discusses how to select a laboratory mixer based on the viscosity of the material. The higher the viscosity, the greater the torque required. Low-viscosity liquids are suitable for high speed and low torque, while high-viscosity materials require low speed and high torque.
The impact of temperature uniformity in laboratory water baths on viscosity measurement
This article discusses the importance of temperature uniformity in laboratory water baths for viscosity measurement. Viscosity is highly sensitive to temperature variations, and uneven temperature distribution within the water bath can lead to deviations in measurement results.
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.
The Zahn cup is used for the daily inspection of the viscosity of electrophoretic paint bath solutions.
This article introduces the application of the Zahn cup in daily inspections of the viscosity of electrophoretic paint bath solutions. The viscosity of electrophoretic paint affects coating quality, making daily inspections crucial. The Zahn cup is simple to operate, cost-effective, and suitable for rapid on-site measurements.
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.
Handheld viscosity cups are used for rapid assessment of paint viscosity at construction sites.
A handheld viscosity cup is a portable tool used to quickly assess the viscosity of coatings at construction sites. It operates based on the flow-out time method, calculating viscosity by measuring the time it takes for the coating to flow out of the cup's orifice. It is suitable for Newtonian or approximately Newtonian fluids.
Application of Desktop Viscometer Cups in Batch Sample Screening at Quality Inspection Centers
This article introduces the application of desktop viscosity cups in batch sample screening at quality inspection centers. Viscosity cups estimate viscosity by measuring the outflow time of fluids, making them suitable for rapid screening.
Practical Guide to Selecting Rotors and Speeds for Rotational Viscometers
A rotational viscometer measures viscosity by detecting the resistance encountered by a rotor rotating in the sample. When selecting a rotor, it is necessary to consider the estimated viscosity range of the sample, ensuring that the torque reading falls within 10% to 90% of the instrument's measurement range, while also taking into account the sample volume and rheological properties.
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-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.
When selecting a laboratory disperser, it is essential to evaluate the dispersion capacity and the speed range.
When selecting a laboratory disperser, it is crucial to evaluate the dispersion capacity and speed range. The dispersion capacity should be determined based on parameters such as material viscosity and solid content to avoid uneven dispersion or localized overheating caused by excessive or insufficient capacity.
Rotational rheometer measures the viscosity and processing performance of polymer melts.
A rotational rheometer applies a controlled shear field to measure rheological parameters such as the viscosity of polymer melts. The melt typically exhibits shear-thinning behavior, where its viscosity changes with the shear rate, directly affecting processing methods such as extrusion and injection molding.
The coating machine applies the OLED light-emitting layer onto ITO glass.
This article introduces the technique of using a coating machine to apply OLED luminescent layers onto ITO glass. The coating principle involves matching solution rheology with substrate surface energy, allowing control over film thickness by adjusting parameters such as viscosity and speed.