Cup-type Moisture Meter

The cup-type moisture analyzer employs the heating weight loss method, where the sample is placed in an aluminum cup and heated to a set temperature. The moisture content is calculated by measuring the mass difference before and after heating. It is used for rapid moisture determination in materials such as coatings and plastics, offering simple operation but requiring attention to interference from volatile substances.
Selection
When selecting, consider matching the heating temperature range with sample characteristics, with 105℃ suitable for conventional materials. Choose a balance with a readability of 0.001g or 0.0001g based on accuracy requirements. A sealed heating chamber resistant to organic solvent corrosion is needed, equipped with temperature calibration and automatic shutdown protection functions.

Terms

Standards

Instruments

3Mm flow hole design, measurement of 7~ 42cSt viscosity range, suitable for Newton type liquid outflow time test, the Cup body is light and durable.

$ 170.00

6Mm flow hole design, measurement viscosity range 188~ 684cSt, aluminum alloy Cup with stainless steel filter to ensure Test accuracy, suitable for Newton type liquid outflow time measurement.

$ 170.00

It adopts aluminum alloy Cup body and stainless steel outflow nozzle structure, the outflow aperture is 6mm, and the outflow time of Newton-type liquid in the viscosity range of 188~ 684cSt can be measured, which meets the test requirements of international standards.

$ 146.00

Adopting anodic oxidation aluminum alloy Cup body and stainless steel nozzle, the outflow aperture is 6mm, the viscosity measurement range is 550~ 1500cSt, and the outflow time is 25~ 150 seconds, which is suitable for rapid viscosity testing of pRoduction lines.

$ 135.00

Using aluminum alloy Cup body and stainless steel nozzle, the outflow aperture is 4mm, the viscosity measurement range is 112~ 685cSt, and the outflow time is 25~ 150s, which is suitable for rapid testing of sample viscosity on the pRoduction line.

$ 135.00

Using aluminum alloy Cup body and stainless steel outflow nozzle, the aperture is 5mm, and the viscosity measurement range is 91~ 326cSt, which is suitable for the determination of Newton-type liquid outflow time.

$ 146.00

Using 5mm flow hole design, the measurement viscosity range of 91~ 326cSt, aluminum alloy Cup body with stainless steel filter to ensure Test accuracy, suitable for Newton type liquid outflow time measurement.

$ 170.00

Using aluminum alloy Cup body and stainless steel outflow nozzle, aperture 3mm, measurement viscosity range of 7~ 42cSt, in line with international standards to ensure measurement accuracy.

$ 146.00

Measurement range 0~ 50%, Cup measurement to reduce human error, temperature and Humidity automatic compensation function, 240 sets of data can be stored.

$ 275.00

Using conductivity Measurement principle, can measure 0~ 80% moisture range, accuracy +/- (0.5% n + 1), with 240 data storage and USB/RS-232/Bluetooth communication function.

$ 235.00

Using halogen lamp heating source, moisture temperature accuracy +/- 0.5%, moisture readability 0.02%~ 0.1%, heating temperature range 50 ℃ to 180 ℃, support timing automatic end measurement, with RS232 communication interface.

$ 585.00

Using halogen lamp heating technology, fast drying samples and real-time display Moisture content, Moisture Precision up to +/- 0.2%, Heating Temperature range 80~ 160 ℃, suitable for a variety of sample detection.

$ 359.00

Adopt replaceable filter design, support 1-8mm aperture selection; Cup annular groove can store overflowing liquid, Cup wall has no clean dead angle; comply with DIN53211 standard, with unique serial number for easy tracking.

$ 441.00

Replaceable 1-8mm aperture stainless steel filter, Cup mouth annular groove design to store overflow liquid, Cup body made of titanium anodic oxidation aluminum, outflow hole diaMeter 6mm, easy to clean and equipped with a unique serial number.

$ 420.00

1-8Mm pore diaMeter stainless steel filter can be replaced to meet different viscosity range tests; Cup mouth annular groove design can store overflowing liquid; Cup body is made of titanium anodic oxidation aluminum material, durable and easy to clean.

$ 422.00

Articles

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Comparison Between Halogen Moisture Analyzer and Karl Fischer Moisture Analyzer in Plastic Moisture Detection
This article compares the differences between halogen moisture analyzers and Karl Fischer moisture analyzers in detecting moisture in plastics.
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.
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.
Selection Differences Between Rapid Moisture Analyzers and Coulometric Moisture Analyzers
This article mainly introduces the differences between a rapid moisture analyzer and a coulometric moisture analyzer.
Selection and Differentiation of Karl Fischer Method and Halogen Method for Paint Moisture Analyzers
This article introduces two common methods for determining moisture in coatings: the Karl Fischer method and the halogen heating method.
Halogen Moisture Analyzer for Rapid Determination of Solid Content in Water-Based Coatings
This article introduces a method for rapidly measuring the solid content of water-based coatings using a halogen moisture analyzer.
Cup Test Instrument for Coating Tests the Impact and Deformation Resistance of Coatings on Metal Substrates.
This article introduces how the coating cupping tester measures the resistance to stamping deformation of coatings on metal substrates.
Thermogravimetric Analyzer for Measuring Moisture and Volatiles in Polymer Materials
Thermogravimetric analyzers determine the moisture and volatile content in polymer materials by measuring the mass changes during the heating process.
Flash Point Tester Selection: Applicable Scenarios for Closed Cup and Open Cup Methods
This article introduces the differences between the closed-cup method and the open-cup method in flash point testing.
Selection of Moisture Analyzer: Applicability of Halogen or Karl Fischer Method for Materials
This article introduces the principles and application scenarios of halogen heating method and Karl Fischer method in moisture determination.
Karl Fischer moisture analyzer measures the water content of resin particles.
This article introduces the method of measuring the moisture content of resin pellets using a Karl Fischer moisture meter.
Moisture Analyzer Combined with Karl Fischer Method for Measuring Moisture Content in Resin Solvents.
This article introduces the use of the Karl Fischer method in conjunction with a moisture analyzer to measure the water content in resin solvents.
Cupping test instrument detects the cracking resistance of coatings under deformation.
This article introduces how the cupping test instrument detects the cracking resistance of coatings under deformation. It uses a spherical punch to uniformly press against the back of the sample, causing the coating to bulge with the substrate, simulating biaxial stretching until the coating cracks. The indentation depth at this point is recorded as the key indicator.