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Vacuum visualization high-temperature deformation analyzer TA-Z16A01

NegotiableUpdate on 12/23
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Overview
The vacuum visualization high-temperature deformation analyzer TA-Z16A01 $r $n $r $n product models include: TA-16B01, TA-Z16B01 $r $n $r $n, which can achieve expansion and contraction testing during the sintering process. Temperature control, convenient and fast, highly automated, time-saving and labor-saving, real-time data analysis. Are these issues troubling you during the expansion and contraction testing of the sintering process of materials? $r$n$r$n1、 Is blind burning experiment time-consuming and laborious to repeatedly conduct sintering tests? $r$n$r$n2、 Traditional testing (top rod method) can only measure deformation in a single direction. What about non-uniform changes in the horizontal and vertical directions? $r$n$r$n3、 Is it difficult to prepare test samples with strict requirements? $r$n$r$n4、 Determine the basis before testing
Product Details

Vacuum visualization high-temperature deformation analyzer TA-Z16A01

Product models include: TA-16B01, TA-Z16B01

Can achieve expansion and contraction testing during sintering process, temperature control

Convenient and efficient, highly automated, time-saving and labor-saving, real-time data analysis

Are these issues regarding the expansion and contraction tests during the material sintering process troubling you?

1. Is blind burning experiment time-consuming and laborious to repeatedly conduct sintering tests?

2. Traditional testing (top rod method) can only measure deformation in a single direction. What about non-uniform changes in the horizontal and vertical directions?

3. Is it difficult to prepare test samples with strict requirements?

4. Is it difficult to determine the baseline before testing, requires calibration, and takes a long preparation time?

Visual high-temperature deformation analyzer, optical non-contact method for measuring the expansion and contraction of material sintering process. The shape, size, and physical state changes of materials during the temperature change process are observed in real-time online, and intuitive data and graphical reports are provided through intelligent data acquisition and image processing systems. The product performance is comparable to similar products and is at the forefront in China. Visual high-temperature deformation analyzer is used for material research and manufacturing, which helps to accurately formulate material sintering or heat treatment processes, improve product quality, and reduce production costs.

Temperature control, convenient and fast, highly automated, time-saving and labor-saving

Full process photos, deformation curves, real-time data, information: height/width/area


真空可视化高温形变分析仪TA-Z16A01

Function of vacuum visualization high-temperature deformation analyzer:

High temperature test: using a temperature of 1600 ℃. 30 program segments are used to analyze complex heat treatment processes and simulate the heat treatment and sintering behavior under real industrial conditions

Measure and record the sintering shrinkage rate of the material under non-contact sample conditions, and analyze the size changes of the sample, namely the height, width, and area changes of the sample.

Real time measurement of deformation of regular or irregular shaped samples in the sintering process, which can nondestructive test small, fine, fragile or foam samples

Determine the temperature of each characteristic: sintering point, softening point, spheroidization, hemispherical, melting point

Assist in analyzing the wetting behavior of melt and matrix

The experimental data export function allows analysis curves to be exported in image format and raw data to be exported in Excel format, making it convenient for later analysis and processing, such as analyzing multiple sets of data.

Vacuum visualization high-temperature deformation analyzer is widely used:

1) Given a blank formula, identify the sintering process;

2) Given a sintering process, find a reasonable blank formula;

3) Study the sintering process kinetics of materials;

4) Sintering process control of complex shaped samples;

5) Wetting behavior between melt and matrix;

6) Widely applicable for the analysis and testing of high-temperature physical properties of various materials such as ceramics, glazes, metal materials, glass, refractory materials, minerals, brazing alloys, and semiconductors