WDW Dual-Column Microcomputer-Controlled High- and Low-Temperature Electronic Universal Testing Machine (with Video Extensometer)
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Description
Product Introduction:
The microcomputer-controlled high‑ and low‑temperature electronic universal testing machine consists of a testing machine frame, fixtures, a temperature chamber, and computer software. The temperature chamber is integrated into the main unit; after opening the chamber door, the specimen is securely clamped in a dedicated fixture. The chamber then heats or cools to the specified temperature, at which point the aluminum profile undergoes tensile, compressive, longitudinal shear, transverse tensile, transverse tensile of thermal‑break profiles, torsional resistance, and other composite performance tests. The entire process is fully computer‑controlled, with test force–deformation curves generated and key parameters—such as tensile force, shear force, tensile strength, torque, flexural strength, deflection, and fracture load—automatically calculated and displayed. The system also prints out mechanical property indicators including Fm, Rm, Rp, ReH, ReL, Re, A, Z, Ae, Ag, Agt, At, μ, and E, along with load–deformation, stress–strain, load–time, deformation–time, and displacement–time curves. This product line is environmentally friendly, operates quietly, and delivers high efficiency, featuring an exceptionally wide speed‑control range and substantial crossbeam travel. Equipped with a diverse array of auxiliary fixtures, it offers broad application prospects in mechanical property testing of aluminum alloy profiles, steel, rubber, plastics, and composite materials, and is widely used across sectors such as quality inspection, education and research, aerospace, ferrous metallurgy, wire rope and rigging, automotive and motorcycle industries, as well as the plastics, rubber, and textile industries.
This machine complies with GB/T 10592-2008 “Technical Specifications for High‑and Low‑Temperature Test Chambers” and can be configured with appropriate high‑ and low‑temperature test chambers to meet the requirements of different materials. It also conforms to GB/T 3354-2014 “Test Method for Tensile Properties of Unidirectional Fiber‑Reinforced Polymer Matrix Composites,” GB/T 2611 “General Technical Requirements for Testing Machines,” JB/T 7406.1 “Terminology for Testing Machines—Material Testing Machines,” and GB/T 16491 “Electronic Universal Testing Machine.”
Technical Specifications:
Parameter Category |
Parameter content |
Maximum test force |
2–300 kN (customizable), standard configuration: 20 kN |
Test force measurement range |
0.4%-100%FS |
Test force indication accuracy |
Better than ±0.5% of the indicated value |
Test force resolution |
±1/500,000 (no gear changes throughout the entire journey) |
Beam displacement measurement accuracy |
Resolution better than 0.0025 mm |
Test speed range |
0.001–500 mm/min, stepless speed regulation |
Speed control accuracy |
±1% (0.001–10 mm/min); ±0.5% (10–500 mm/min) |
Constant force and constant displacement control range |
0.2%-100%FS |
Constant force and constant displacement control accuracy |
When the setpoint is less than 10% of full scale, it shall be within ±1.0% of the setpoint. When the setpoint is ≥10%FS, it shall be within ±0.1% of the setpoint. |
Video extensometer resolution |
Up to 1μm (0.001 mm) |
Video extensometer test field of view |
Standard: 0–120 mm |
Supports gauge length range |
Extended usage: ≤500 mm (customization required) |
Real-time sampling frame rate |
Supports up to 100 fps |
Video extensometer accuracy class |
ISO 9513 Class 0.5 |
Test space |
A: Tensile space: 900 mm B: Compression space: 800 mm C: Effective test width: 420 mm Other sizes can be custom-made upon request. |
External dimensions of the high/low temperature main chamber (width × height × depth) |
390mm×780mm×1520mm |
Inner chamber dimensions of the high/low temperature main chamber (width × height × depth) |
240mm × 590mm × 400mm (other dimensions available upon request) |
Temperature range |
-45℃ ~ +150℃ |
Temperature accuracy |
0.3% |
Temperature fluctuation degree |
±0.5℃ |
Temperature uniformity |
±2℃ |
Cooling rate |
0.7~1℃/min |
Observation window |
Hollow Electric Heating Glass Observation Window |
Temperature control method |
PID automatic temperature control |
Exterior wall material |
Cold-rolled steel plate coating |
Inner wall material |
Stainless steel sheet material |
Adiabatic material |
Flame-retardant thermal insulation material |
Lighting lamp |
1 lamp (moisture-proof, explosion-proof, installed in an appropriate location, with an external control switch) |
Air conditioning system |
Temperature Control: PID automatic temperature control; Air circulation device: centrifugal fan; Heating method: stainless steel electric heater, forced-air internal circulation with temperature control; Air-cooling method: mechanical compression refrigeration; Temperature measurement sensor: platinum resistance; Refrigeration compressor: dual-compressor system (using refrigerant R-134a); Italian Aspala fully enclosed air-cooled unit. |
Fixture type |
Tension, compression, bending |
Platen size |
φ100 mm |
System power supply |
Single-phase 220V ±10%, 50Hz, Power: 0.75 kW |
Work environment |
Room temperature—35°C, with relative humidity not exceeding 80% |
Product Solution Description:
(1) Host Machine
1.1 The host adopts a floor-mounted frame structure, offering high strength, minimal deformation, and an elegant, aesthetically pleasing appearance.
1.2 Employs imported high-precision ball screws for efficient and smooth transmission;
1.3 Employs a high-precision spoke-type load cell, offering high measurement accuracy and excellent stability.
1.4 The transmission system employs an arc-tooth synchronous belt drive, ensuring backlash-free operation in both directions during transmission.
1.5 Employs an AC servo motor and drive system to ensure smooth transmission and stable torque, equipped with protection features against overcurrent, overvoltage, and overload; the speed regulation ratio can reach as high as 1:100,000.
1.6 The fixture is specially designed to provide secure clamping, convenient operation, and eliminates jaw slippage.
1.7 Special manufacturing processes ensure the coaxiality of the testing machine, effectively eliminating the influence of irregular specimens on the sensor.
(II) Control System
The STC300 all-digital closed-loop measurement and control system boasts numerous advanced features and technological innovations, primarily reflected in:
1. Four closed-loop control modes have been implemented: test force, specimen deformation, crosshead displacement, and the testing process.
2. The data acquisition system comprises four high-precision 24-bit A/D conversion channels, with a maximum resolution of 1/300,000 and no channel switching throughout the entire measurement range.
3. Uses original, branded integrated circuits from BB, AD, Xilinx, and other manufacturers; fully digital design.
4. Complies with the PCI bus standard; the microcomputer automatically recognizes and installs it, enabling “plug-and‑test” functionality.
5. The electronic measurement system contains no analog components such as potentiometers, ensuring interchangeability and facilitating maintenance and replacement.
(3) Video Equipment Description
A video extensometer is a non-contact, high-precision, real-time measurement system that employs a single digital camera and real-time image-processing algorithms. By capturing images of the specimen during testing and analyzing changes in image features, it can dynamically measure strain, displacement, and other parameters in real time. It interfaces with the testing machine’s signals to determine stress–strain curves and various other mechanical property parameters, making it suitable for a wide range of mechanical tests.
Features of Video Extensometers
- Non-contact measurement: eliminates the additional measurement errors introduced by contact-based methods such as strain gauges and clip-on extensometers.
- Full‑process tracking: No downtime is required throughout the entire procedure, and specimen fracture will not damage the measurement system, enabling end-to-end traceability.
- Diverse experimental scenarios: In addition to standard conditions, it can also accommodate specialized tests involving large deformations, minute deformations, and extreme temperatures.
- Wide material compatibility: Virtually no restrictions on materials; testing can be performed on specimens of various sizes and compositions.
- Sub-pixel measurement accuracy: Based on image-processing correlation methods, the calculation accuracy reaches the sub-pixel level.
- Gauge Length Customization: Customize the gauge length to any value within several hundred millimeters.
- Multi-directional simultaneous measurement: Enables concurrent calculation of longitudinal and transverse strains.
(4) Control Software:
- It complies with the relevant provisions of more than thirty national standards, including GB/T 2611 and GB 228-2021, and can perform tests and process data according to a variety of standards such as GB, ISO, JIS, ASTM, DIN, as well as user‑provided specifications, while also offering excellent scalability.
- 1. The computer control system boasts high integration, stable performance, and convenient adjustment. It enables real-time acquisition of experimental data and provides dynamic, real-time display of experimental characteristic curves. Experimental data files can be saved in either the widely used Access database format or the more robust SQL Server database, facilitating resource sharing among clients, network management, and subsequent user reanalysis. Moreover, the software effortlessly supports user‑defined Word 2000–style reports, addressing the challenge of varying reporting requirements across different users or within the same user at different times. The system can process raw data for test force, displacement, and time, as well as derived curves.
- 2. Protection Features: This machine is equipped with both software‑based and mechanical limit‑protection mechanisms, with the percentage of automatic shutdown upon exceeding the maximum load dynamically adjustable; it also incorporates multiple protection functions, including overcurrent, overvoltage, and overload protection.
- 3. The load channels can be automatically labeled, providing intuitive and convenient visualization.
- 4. Batch testing enables hierarchical display of curves and automatic curve tracking.
- 5. This software allows users to set custom speeds and adjust them via the computer. It also supports high-precision speed calibration, enabling real-time adjustment of speed levels and encoders.
- 6. Monitoring the testing process: Real-time display of various parameters, including test force, displacement, and load–displacement curves, is available during the test.
- 7. Software Permission Hierarchical Management Function: To enhance the security of the software and its data, this software supports role-based access control by configuring distinct password protections.
- 8. Result Reproduction Function: After completing the test procedure and saving the data, users can reopen the file at any time to re-analyze the experimental data as needed.
- 9. Users can select load–time, load–displacement, displacement–time, and other curves as needed for testing, with options for data display, storage, analysis, and printing.
- 10. Point-by-point traversal of the curve: Users can click on the curve with the mouse to obtain the force and deformation values at each point, thereby calculating various parameters for every location.
- 11. Result Comparison Function: Allows simultaneous viewing of multiple test curves and enables comparison of the characteristics of samples under analysis through curve superposition and local magnification.
- 12. Force Interface: The force-channel interface and test software can be equipped with various sensors according to user requirements, and support calibration, parameter modification, and routine testing.
- 13. Data sampling frequency: A high-speed sampling rate can be selected according to the user’s test requirements.
Basic configuration:
- 1. Testing machine mainframe (floor-mounted frame structure)
- 1.1 AC Servo Motors and Servo Drives
- 1.2 High-Precision Load Sensor
- 1.3 Imported precision ball screw assemblies
- 1.4 Reduction System (Arc-tooth Synchronous Belt Drive)
- 1.5 High- and Low-Temperature Test Chamber (with Sliding Rails)
- 2. Dual-channel programmable amplifier, resolution 1/500,000
- 3. LT-specific control software
- 4. Standard fixtures include: one tensile fixture and one compression fixture (φ100 mm) (a hydraulic automatic tensile fixture is available as an option).
- 5. Video extensometer (optional: standard rotary large‑deformation extensometer)
- 6. Lenovo-brand computers
- 7. HP A4 Inkjet Printer
- 8. Technical Documentation: User Manual, Software User Guide, Certificate of Conformity, Packing List
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