ContPerson : Luo Zhuan
Numéro de téléphone : 15605601921
WhatsApp : +8615605601921
September 4, 2026
In cutting-edge research fields like materials science, geology, and metallurgy, the ability to perform in-situ observation and analysis of materials under extreme high-temperature conditions is crucial for understanding their intrinsic mechanisms, phase transition patterns, and microstructural evolution. Traditional high-temperature experiments often face limitations in equipment performance, struggling to simultaneously achieve ultra-high temperatures while maintaining precise sample positioning and dynamic observation capabilities.
Understanding how materials change at high temperatures—through melting, phase transitions, grain growth, or redox reactions—forms the foundation for developing new materials. Conventional microscopy methods typically operate at room temperature, unable to capture dynamic high-temperature processes. Simultaneous heating and microscopic observation presents several technical challenges:
The H1400-RG-XY microscope heating stage represents a significant advancement for in-situ high-temperature analysis in geology and metallurgy. This precision instrument combines 1400°C heating capability, ±0.1°C temperature stability, and innovative XY-axis sample manipulation, along with rapid quenching and rotatable optical windows.
Ultra-High Temperature Control: The system maintains precise temperature regulation from room temperature to 1400°C with ±0.1°C stability, ensuring reliable data even at maximum temperatures. Its 150°C/min heating rate accelerates experimental cycles.
Integrated XY-Axis Manipulation: This breakthrough feature enables ±6mm (X) and ±5mm (Y) movement with 0.01mm precision during high-temperature operation—critical for studying specific regions like melt inclusions or phase transition zones without interrupting experiments.
Enhanced Optical Design: The reflection-based optical path incorporates a rotatable φ3mm JGS2 fused quartz window (220-2500 nm transmission). This innovative solution allows manual rotation to maintain clear observation paths when contamination occurs—a common high-temperature microscopy challenge.
Rapid Quenching System: A dedicated cooling mechanism preserves transient high-temperature microstructures by quickly transferring samples to cooling points.
Atmosphere Control: The chamber design supports various gas environments for realistic material behavior simulation.
Automated Control: The proprietary TNEX software platform enables programmable multi-step temperature protocols with synchronized data recording and microscopic imaging.
| Parameter | Specification |
|---|---|
| Temperature Range | RT to 1400°C |
| Temperature Stability | ±0.1°C |
| Maximum Heating Rate | 150°C/min |
| Sample Stage | Ceramic through-hole type (20x4x20mm) |
| Sample Movement | X/Y: ±6mm/±5mm; 0.01mm precision |
| Optical Window | φ3mm x 2mm JGS2 fused quartz (220-2500 nm), rotatable |
| Working Distance | 11.6mm (window to sample surface) |
This technology serves universities, geological surveys, metallurgical labs, and industrial R&D centers worldwide, particularly in materials research under extreme conditions. Key applications include:
The H1400-RG-XY microscope heating stage establishes new standards for high-temperature materials analysis through its 1400°C capability, precise temperature control, revolutionary sample manipulation, and rapid quenching features. By overcoming traditional technical limitations, this platform significantly enhances research efficiency and depth across multiple scientific disciplines.
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