Automatic scanning spectroPhotoMeter

An automatic scanning spectrophotometer works by splitting light from a source and irradiating a sample to measure the absorption of light at different wavelengths. It is used for color analysis of paints and inks, detection of plastic components, and quality control in the papermaking industry, enabling the determination of solution concentrations and material reflection properties.
Selection
Select the transmission or reflection measurement mode based on the sample morphology; the wavelength range should cover the characteristic absorption peaks of the substance to be measured; consider the influence of slit width on resolution; verify baseline stability and stray light indicators; the accompanying software must support industry-standard testing methods.

Terms

Standards

Instruments

Proportional double beam of light path and Holographic grating, stray light ≤ 0.15% T, Wavelength range 190~ 1100nm, support automatic zero adjustment and eight Sample Chamber linkage, with professional power-off protection function.

$ 2591.00

Measurement accuracy of +/- 2% F. S, viscosity range of 1~ 2000000mPa · s, with automatic scanning function and automatic stop measurement, support multi-rotor specifications and eight Rotation speed switching.

$ 559.00

Using microcomputer drive technology and imported stepper motor, Rotation speed is accurate and stable, viscosity range 1~ 100000mPa · s, with automatic scanning function, can automatically recommend rotor and Rotation speed combination, improve measurement efficiency.

$ 465.00

Using professional mechanical design and microcomputer control technology, Measurement accuracy of +/- 2% F. S, with automatic scanning function to intelligently select rotor and Rotation speed, support RS-232 communication and temperature sensor interface expansion.

$ 520.00

Adopt imported stepper motor to ensure smooth speed, measurement accuracy of +/- 1% F.S, repRoducibility of +/- 0.5% F.S., support automatic scanning function to help select the appropriate Rotor speed, suitable for accurate measurement of low viscosity fluids.

$ 620.00

Using microcomputer drive technology, equipped with imported stepper motor, Speed range 6/12/30/60rpm, viscosity measurement range 1~ 100000mPa · s, with automatic scanning function, can automatically prompt the appropriate Rotor speed combination to ensure High Accuracy and Repeatability.

$ 507.00

Using microcomputer drive technology and imported stepper motor, speed range 0.3-60 rpm, viscosity measurement range 1-2000000mPa · s, with automatic scanning function, can automatically prompt the best Rotor speed combination to ensure High Accuracy and repeability.

$ 514.00

Using microcomputer drive technology and imported stepper motor, speed range 6/12/30/60rpm, viscosity measurement range 1~ 100000mPa · s, with automatic scanning function can automatically prompt the appropriate Rotor speed combination to ensure High Accuracy and repeability.

$ 567.00

Using microcomputer drive technology and imported stepper motor, Speed range 0.3-60 rpm, viscosity measurement range 1-2000000mPa · s, with automatic scanning function to help select the right Rotor speed, ensure High Accuracy and Repeatability.

$ 469.00

Microcomputer drive technology and imported stepper motor to ensure smooth speed, measurement accuracy of +/- 1% F. S, repRoducibility +/- 0.5% F. S, with automatic scanning function to help choose the right Rotor speed, with ultra-low viscosity adapter to support viscosity measurement as low as 1cP.

$ 659.00

Equipped with a large screen LCD graphic display, can accommodate 5-100mm Cuvette, wavelength Precision +/- 0.3nm, with automatic wavelength Adjustment, supports multiple test modes including Light spectrum scanning and kinetic testing.

$ 1397.00

The width is 5cm, the optical path is 10mm, and the dimensions are 12.5 × 52.5 × 45mm, which is suitable for the use of Spectrophotometer to ensure Optical inspection detection accuracy.

$ 114.00

Width 2cm, optical path 10mm, dimensions 12.5 × 22.5 × 45mm, specially designed for Spectrophotometer matching Cuvette, to ensure Optical inspection detection accuracy.

$ 101.00

The width is 3cm, the optical path is 10mm, and the dimensions are 12.5 × 32.5 × 45mm. As a special accessory for Spectrophotometer, it ensures the stability of the optical path and the accuracy of measurement.

$ 106.00

1200L/mm UV dedicated grating and proportional double beam of light design, stray light ≤ 0.03% T, equipped with 10cm sample holder and automatic octet cell, support wavelength scanning and a variety of test modes.

$ 3623.00

Articles

Use of Fluorescence Spectrophotometer in Measuring Excitation and Emission Spectra of Anti-Counterfeiting Fluorescent Inks
This article introduces the application of fluorescence spectrophotometry in the spectral measurement of anti-counterfeiting fluorescent inks, including instrument calibration, sample preparation, and methods for measuring excitation and emission spectra.
UV spectrophotometer for measuring residual monomers in polymer solutions.
This article introduces a method for determining residual monomers in polymer solutions using ultraviolet spectrophotometry. The principle relies on the characteristic absorption of monomers in the ultraviolet region, calculating their content based on the relationship between absorbance and concentration.
Differential Scanning Calorimetry measures the phase transition temperature of liquid crystal polymers.
This article introduces the method of determining the phase transition temperature of liquid crystal polymers using a differential scanning calorimeter. The differential scanning calorimeter analyzes the phase transition behavior of materials by comparing the heat difference between the sample and a reference material, recording the heat flow curve during temperature changes.
Differential Scanning Calorimetry measures the heat of curing reaction of thermosetting polymers.
Differential scanning calorimetry is a commonly used technique for studying the curing reactions of thermosetting polymers. It measures the heat released by a sample during heating to obtain key parameters such as reaction enthalpy and curing temperature.
UV-Vis-NIR spectrophotometer measures the transmittance of anti-reflection coatings.
This article introduces the method of measuring the transmittance of anti-reflective coatings using a UV-Vis-NIR spectrophotometer. The instrument is based on the Beer-Lambert law, calculating transmittance by comparing the light intensity of the sample and the reference, covering a wide spectral range from ultraviolet to near-infrared.
Differential Scanning Calorimetry for Measuring the Degree of Cure of Polymer Optical Waveguide Materials
This article introduces a method for determining the degree of curing in polymer optical waveguide materials using a differential scanning calorimeter. The degree of curing is a key indicator affecting material performance, and this instrument quantitatively analyzes it by measuring the thermal effects during the curing reaction.
Differential Scanning Calorimetry for Measuring Compatibility of Plastic Blends
Differential scanning calorimetry assesses the compatibility of plastic blends by measuring the heat flow changes during heating or cooling processes.
DSC analyzer measures the glass transition of degradable films.
This article explains how to use a differential scanning calorimeter to measure the glass transition temperature of a degradable film. It first clarifies that the glass transition is the process by which a material changes from a glassy state to a highly elastic state, which appears as a baseline shift on the curve.
Differential Scanning Calorimetry for Measuring the Melting Temperature of Thin Films
Differential scanning calorimetry analyzes thermal transitions in materials by measuring the heat flow difference between the sample and a reference. When determining the melting temperature of thin films, the sample must be uniformly prepared, with a mass between 3 and 10 milligrams. Testing is typically conducted at heating rates ranging from 5 to 20°C/min under a nitrogen protective atmosphere.
Comparison of Selection Parameters for Stylus and Laser Roughness Measuring Instruments
Stylus-type roughness measuring instruments perform contact scanning to measure two-dimensional profile parameters in accordance with standards such as ISO 4287, while laser-based instruments utilize non-contact optical principles and refer to ISO 25178.
Differential scanning calorimetry for determining the glass transition temperature of epoxy resin
Differential scanning calorimetry analyzes the thermal properties of materials by measuring the heat flow difference between the sample and a reference material.
Determination of Transmittance of Resin Solutions Using UV-Visible Spectrophotometer
This article introduces the method of measuring the transmittance of resin solutions using a UV-Vis spectrophotometer.
Differential Scanning Calorimetry Study on the Curing Reaction Kinetics of Epoxy Resin
This article introduces the method of using differential scanning calorimetry to study the curing reaction kinetics of epoxy resins.
Differential Scanning Calorimetry Study on the Compatibility of Resin Blends
This article introduces how to use differential scanning calorimetry to study the compatibility of resin blends. Differential scanning calorimetry analyzes the thermal properties of materials by measuring the heat changes in the sample during heating.
The role of DSC thermal analyzer in the detection of hot melt adhesive crystallinity
The crystallinity of hot melt adhesive directly affects its properties such as bonding strength. Differential scanning calorimetry captures the thermal effect peaks corresponding to melting and crystallization by measuring the heat flow changes of the sample during heating and cooling processes.