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Jacketed Glass Reactor LJGR-A30

Jacketed Glass Reactor LJGR-A30

Jacketed Glass Reactor LJGR-A30 has a 20 L vessel, suitable for medium-scale synthesis, distillation with consistent mixing performance in laboratory use. Its dual-seal design maintains stable reaction conditions over time. The external loop buffer ensures continuous and reliable circulation for effective thermal transfer throughout the process. Our reactor supports diverse applications in university research, biopharmaceuticals, and aerospace materials. 

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Glass Vessel Volume 20 L Cylindrical
Glass Vessel Lid Diameter Φ 265 mm
Jacketed Volume 7000 ml
Dropping Funnel 1000 ml
Temperature Range -80℃ to 250℃
Temperature Measurement Accuracy +/-1℃
Stirring Speed 0 to 1400 rpm
Vacuum Degree 0.098 Mpa
Power Consumption 120 W
Power Supply 220V/50Hz
Condenser Dimension (D×H) 100×600 mm
Dimensions (W×D×H) 780×550×1970 mm
Weight 56 kg
  • Modular design for customization

  • Versatile multi-purpose reaction vessel

  • Reinforced chemical resistance coating

  • Angled outlet for drainage

  • Overflow protection on funnel

Jacketed Glass Reactor LJGR-A30 serves for controlled synthesis, distillation, and concentration of chemical materials. This enables accurate temperature management and efficient mixing for a variety of laboratory and industrial experiments.

Models of Jacketed Glass Reactor

Jacketed Glass Reactor supports controlled mixing with adjustable stirring speed, ensuring consistent reaction dynamics in varied experiments. They maintain thermal stability using a jacketed layer for fluid circulation without exposing the medium. Their borosilicate glass build withstands thermal stress and chemical exposure over time. These systems include a display panel for monitoring key parameters during operation. Our glass reactor is suited for synthesis, distillation, extraction, crystallization, and pharmaceutical development.

Jacketed Glass Reactor LJGR-A37

Jacketed Glass Reactor LJGR-A37

  • Glass Vessel Volume : 10 L Cylindrical
  • Glass Vessel Lid Diameter : Φ 265 mm
  • Jacketed Volume : 5000 ml
  • Dropping Funnel : 1000 ml
Jacketed Glass Reactor LJGR-B20

Jacketed Glass Reactor LJGR-B20

  • Glass Vessel Volume : 5 L
  • Jacketed Volume : 0.8 L
  • Flanged out of the oil circulation port : Low feed high outlet
  • Reaction bottle cover : Five port
Jacketed Glass Reactor LJGR-A27

Jacketed Glass Reactor LJGR-A27

  • Glass Vessel Volume : 150 L Cylindrical
  • Receiving Bottle : 10 L
  • Glass Vessel Lid Diameter : Φ 340 mm
  • Jacketed Volume : 35000 ml
Jacketed Glass Reactor LJGR-B11
Jacketed Glass Reactor LJGR-B11
  • Glass Vessel Volume : 10 L Cylindrical
  • Dropping Funnel Volume : 1000 ml
  • Dropping Funnel Interface : 40/38
  • Glass Vessel Flange : Φ 215 mm
Jacketed Glass Reactor LJGR-B24
Jacketed Glass Reactor LJGR-B24
  • Glass Vessel Volume : 100 L
  • Jacketed Volume : 18 L
  • Flanged out of the oil circulation port : Low feed high outlet
  • Reaction bottle cover : Six port
Jacketed Glass Reactor LJGR-B12

Jacketed Glass Reactor LJGR-B12

  • Glass Vessel Volume : 20 L Cylindrical
  • Dropping Funnel Volume : 2000 ml
  • Dropping Funnel Interface : 40/38
  • Glass Vessel Flange : Φ 215 mm
Jacketed Glass Reactor LJGR-A18

Jacketed Glass Reactor LJGR-A18

  • Glass Vessel Volume : 1 L Cylindrical
  • Glass Vessel Lid Diameter : Φ 150 mm
  • Jacketed Volume : 200 ml
  • Dropping Funnel : 250 ml
Jacketed Glass Reactor LJGR-A35

Jacketed Glass Reactor LJGR-A35

  • Glass Vessel Volume : 200 L Cylindrical
  • Receiving Bottle : 10 L
  • Glass Vessel Lid Diameter : Φ 340 mm
  • Jacketed Volume : 40000 ml
Jacketed Glass Reactor LJGR-A30 FAQ's
  • The Jacketed Glass Reactor LJGR-A30 is designed to handle a broad range of chemical substances, including reactive and corrosive materials, without compromising its components. Its construction minimizes unwanted reactions that could affect experimental outcomes. The stable internal environment it maintains protects sensitive samples and ensures consistent results. Reinforced materials enhance durability under aggressive chemical exposure. This makes the reactor reliable for multi-step syntheses and formulation work involving volatile substances. Laboratories conducting advanced chemical processes find it especially beneficial. The design helps preserve integrity throughout prolonged experiments. Its resistance to corrosive agents is a key advantage for demanding research.

  • Our Jacketed Glass Reactor LJGR-A30 supports long-duration use without a decline in operational stability or effectiveness. Components have been selected for robustness and endurance to withstand continuous working conditions. The stirring mechanism guarantees consistent mixing even during extended runs. Its thermal regulation system maintains steady internal temperatures throughout lengthy procedures. This reliability allows for uninterrupted syntheses or extractions over many hours. The glass vessel resists fatigue and stress accumulation, ensuring repeated use under diverse experimental setups. Cooling and heating functions remain stable despite fluctuating lab demands. These features suit researchers needing dependable, long-term performance.

  • Labtron’s Jacketed Glass Reactor LJGR-A30 offers excellent compatibility with common laboratory equipment and workflows. Flexible inlet and outlet configurations enable seamless connection to thermal circulators or collection devices. The compact design fits well within limited bench space while providing easy access to critical parts. This reduces setup time and learning curves for new operators. Modular assembly supports quick installation, transport, and component rearrangement without specialized tools. The system adapts to various lab layouts without causing workflow disruptions. Its size and design minimize space conflicts typical of larger-scale reactors. This flexibility makes it a practical addition to many research environments.

  • Jacketed Glass Reactor LJGR-A30 creates a controlled environment suitable for handling delicate biological and biochemical materials. Its dual-jacket design allows smooth and gradual temperature changes, reducing thermal stress on sensitive samples. Adjustable stirring speeds accommodate gentle mixing necessary in biological processes. The system maintains stable conditions during both heating and cooling phases to preserve sample integrity. This helps prevent damage to proteins, enzymes, or other fragile compounds. The reactor is widely used in biopharmaceutical research, fermentation, and protein synthesis applications. Uniform temperature control ensures consistent outcomes in lab-scale biological experiments. It supports a broad range of delicate sample requirements.

  • The transparent glass vessel of the Jacketed Glass Reactor LJGR-A30 allows continuous visual monitoring without interrupting the experiment. Operators can observe mixing quality, color changes, crystallization, or phase transitions in real time. This visibility helps detect anomalies early and adjust procedures promptly. Clear sightlines reduce dependence on external sensors for routine observation. Adjustable lighting can be used to enhance visibility during different stages of the process. Visual access promotes better control over reagent addition and dosing. This feature improves user confidence and safety during complex or sensitive reactions. It’s particularly valuable for experiments requiring close supervision.

  • The external loop buffer enhances the Jacketed Glass Reactor LJGR-A30’s thermal management by ensuring smooth and consistent fluid circulation through the jacket. This design prevents sudden temperature fluctuations inside the reaction chamber. By maintaining steady heat exchange, it protects sensitive compounds from thermal shock or degradation. The loop buffer also reduces turbulence within the jacket, helping preserve reaction stability. It is compatible with various thermostatic control systems commonly used in laboratories. This feature is especially useful during long processes that require constant temperature regulation. The system helps prevent pressure spikes that could compromise experiment integrity. Overall, it contributes to more reliable and controlled reaction conditions.

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