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ECS-M High Pressure Microwave Reactor (3 MPa, 220°C, 3L) with Magnetic Stirring, EMHPMRMS

ECS-M High Pressure Microwave Reactor (3 MPa, 220°C, 3L) with Magnetic Stirring, EMHPMRMS

In Stock SKU: EMHPMRMS
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High-Pressure Microwave Reactor with Magnetic Stirring is a precision laboratory instrument that combines volumetric microwave heating with a sealed, pressurized environment. By operating under high pressure, the reactor allows solvents (water, alcohols, or glycols) to reach temperatures well above their atmospheric boiling points, significantly accelerating the crystal growth of battery materials while maintaining a homogenous morphology.

Part Number
  • EMHPMRMS (EM-HPMRMS)
Power
  • AC220V or AC380V±10%, three-phases, 50/60Hz, 6000W
Key Features for Microwave Reactor
  • Microwave Source Power: 3200W, 2450 MHz, continuous power output (no pulse)
  • Reactor Material: SS304, inside coated with PTFE for anti-corrosion purpose
  • Inside Chamber Volume: ~120 L (height is 545 mm)
  • Reaction Vessel: 3 L high pressure PTFE tank with high sealing quality and support temperature & pressure measurement 
  • Design Temperature: 0-210°C (ultimate is 220°C), optical fiber temperature measurement
  • Operation Pressure: 0-2.5 MPa (ultimate pressure 3 MPa). The automatic pressure release function is available.  
  • Magnetic Stirring, PTFE stirring bar, speed adjustable
  • PLC control and HMI touch screen monitor
Certification
  • CE certified
  • UL and CSA certification is available upon request at extra cost
  • One-year warranty and life-time technical support.
Dimension
  • L920 * W690 * H970 mm
Weight
  • ~120 kg

 

References:

K. W. Hemawan, et al., Improved microwave plasma cavity reactor for diamond synthesis at high-pressure and high power density, Diamond and Related Materials, 2010, 19, 1446-1452

S. Horikoshi, et al., A hybrid microreactor/microwave high-pressure flow system of a novel concept design and its application to the synthesis of silver nanoparticles, Chemical Engineering and Processing: Process Intensification, 2013, 73, 59-66

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