Viscosity Test Refrigeration Thermostatic Bath

The viscosity test refrigeration constant temperature bath maintains the liquid in the sample bath at the set temperature through compressor cooling and heater temperature control. It provides a stable temperature environment for viscosity testing of samples such as coatings and inks, eliminating the influence of temperature fluctuations on viscosity data. In the laboratory, it is used in conjunction with a rotational viscometer to ensure consistent testing conditions for samples across different batches.
Selection
When selecting, focus on temperature control accuracy and stability, typically requiring ±0.1℃. Choose based on the testing temperature range: standard models cover 5-60℃, while extended-range models expand to -20-100℃. Match the tank capacity to the sample volume, with 5-15L being common. Pay attention to the balance between compressor power and cooling speed, and check the corrosion resistance of the tank material. Reserve external circulation interfaces for expanded functionality.

Terms

Standards

Instruments

With water Bath thermostatic oscillation and low temperature refrigeration dual functions, thermostatic range 0-100 ℃, temperature accuracy +/- 0.5 ℃, support reciprocating oscillation and digital constant speed operation, suitable for a variety of sample fostering needs.

$ 1027.00

Using semiconductor refrigeration technology implementation RT + 5~ 100 ℃ Temperature range, temperature control accuracy ≤ +/- 0.5 ℃, with 5 groups of programming functions and module Temperature uniformity ≤ +/- 0.3 ℃, compact design supports a variety of module replacement.

$ 808.00

With internal and external circulation thermostatic function, Temperature range -10~ 100 ℃, Temperature Fluctuation +/- 0.05~ 0.1 ℃, support eight Rotation speed control, repRoducibility +/- 1%, suitable for accurate viscosity testing.

$ 1421.00

The 24-hole design is compatible with the testtube with a diaMeter of less than 12mm, the maximum Operating temperature is 100 ° C, and the electronic ice box and intelligent thermostatic metal Bath module are optional to meet different temperature requirements.

$ 148.00

Temperature control accuracy of +/- 0.5 ℃, Module Temperature uniformity +/- 0.3 ℃, support 5 groups of programming and multi-point temperature control, with automatic fault detection and over-temperature protection functions, compact design for module replacement.

$ 535.00

Temperature range -10~ 100 ℃ and accuracy +/- 0.5 ℃, support 5 point programming operation; use metal module to avoid pollution, with temperature calibrating and over-temperature protection functions, intuitive and reliable operation interface.

$ 808.00

With three uses of water Bath, thermostatic and boiling disinfection, Temperature range RT +~ 100 ℃, Tank volume 36L, suitable for a variety of experimental heating and equipment processing needs.

$ 209.00

The adapter only needs 10-20mL sample volume, equipped with 21, 27, 28, 29 rotors, easy to disassemble and clean, can be connected to Thermostatic Bath to achieve temperature control, expand the viscosity measurement range.

$ 470.00

Adopt non-fluorine environmental protection Compressor refrigeration system, Temperature Uniformity +/- 0.05 ℃, equipped with High Accuracy PID control and large screen LCD display, domestic circulation system to avoid pump heat affecting the temperature field, Multiple Safety protection devices to ensure reliable operation.

$ 4661.00

With water shortage and air burning function, Temperature Fluctuation +/- 0.3 ℃, Temperature range RT + 5~ 99 ℃, integrated sink and water Bath dual-use, easy to clean and safe operation.

$ 391.00

Equipped with round water Bath cover and aluminum Cup body, flow hole diaMeter 5.6mm, capacity 50ml, in line with GB/T1723 standard, suitable for viscosity measurement.

$ 152.00

Temperature control accuracy of +/- 0.5 ℃, Temperature Uniformity +/- 0.3 ℃, with over-temperature protection and automatic fault detection function, transparent cover design for easy observation of the experimental process, module can be easily replaced and cleaned.

$ 848.00

Water Bath and water Bath are integrated to achieve dual-use, using one-time stamping stainless steel liner for easy cleaning, temperature control accuracy +/- 0.3 ℃, equipped with water shortage and air burning and independent temperature limit safety system to ensure safe operation.

$ 562.00

Using non-fluorine environmental protection Compressor refrigeration, Temperature Uniformity up to +/- 0.05 ℃, equipped with 13L/min High Flow rate circulating pump, with low water level protection and temperature runaway alarm and other multiple safety functions.

$ 1121.00

The use of fully enclosed environmental protection Compressor refrigeration system, Temperature range -40~ 100 ℃, temperature resolution 0.1 ℃, large screen backlight LCD display is clear, easy to operate and monitor.

$ 3817.00

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.
Constant temperature bath selection: circulation method and temperature control range.
This article on thermostatic bath selection primarily analyzes two core factors: circulation mode and temperature control range. The circulation mode is divided into natural convection and forced circulation, where the former is suitable for simple static experiments, while the latter offers higher precision and is better suited for multiple samples or integration with external devices.
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.
The Impact of Cooling Circulating Water Chillers on the Temperature Stability of Digesters
The cooling circulator helps maintain a stable temperature for the digester by circulating the cooling medium, thereby improving the repeatability of experiments. Its working principle involves using a refrigeration system to lower the water temperature, and then circulating the cooled water to the digester through a circulation pump to absorb excess heat.
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.