Introduction

Jacketed Glass Reactor features a 5 lid allows easy attachment of instruments for uninterrupted reaction monitoring. Its jacket design enables uniform temperature distribution during experiments. Our reactor suits applications like chemical synthesis, pharmaceutical research, and materials development in academic and industrial labs.

This laboratory glass reactor is designed to meet the rigorous requirements of modern laboratory operations, ensuring high precision, reliability, and ease of use for various experimental applications.

Applications

Jacketed Glass Reactor is used for carrying out controlled chemical reactions, temperature-sensitive processes, and material synthesis under laboratory conditions. This setup allows users to regulate heat exchange using circulating fluids, making it suitable for distillation, crystallization, and pharmaceutical research.

Specifications

Glass Vessel Volume 5 L (Cylindrical)
Jacket Volume 1.5 L
Glass Vessel Flange Φ 170 mm
Glass Vessel Opening OD Φ 215 mm
Glass Vessel Lid Openings 5
Center Opening of Lid 50 mm
Side Opening of Lid 24/29 × 3, 29/32, S35
Seal Ring on Vessel Lid Φ212 × Φ168 × 3
Drain Port Ground Clearance 400 mm
Glass Material High borosilicate 3.3
Stirring Port 50# flange port
Sensor Port 24 standard milling port
Condenser Connection Port 35 standard ball port
Additional Port 24standard milling port
Constant Pressure Funnel Port 2# standard milling port
Volume 500 ml
Interface 29/32
Condenser Area 0.045 m²
Main Frame SUS304
Support Parts of Stirrer , , Glass
Working Temperature -80 to 200 degree
Bearable Temperature Difference ≤ 80 degree
Pressure in Vessel -0.1 to 0.0 MPa
Pressure in Jacket ≤ +0.03 MPa
Vacuum System Pressure Rise Rate ≤ 2 kPa/h
Ambient Temperature 5 to35 °C
Environment Relative Humidity ≤ 65%
Stirring Paddle Paddle type
Stirring Speed 50 to 500 rpm
Speed Control Frequency speed control
Explosion-Proof Motor Power 180 W
Explosion-Proof Grade ExdⅡBT4
Support Parts for Stirrer
Temperature Sensor Pt100
Temperature Display Accuracy ±0.1 °C
Circulation Hose Port Rc 3/4
Jacket Interface 35 mm
Power Consumption 50 W
Power Supply 220 to 240 V~, 50/60 Hz
Dimensions (W×D×H) 660×530×1600 mm
Packing dimensions 1530 × 680 × 740 mm
Net weight 50kg
Gross Weight 92kg

Features

Convenient sampling access points

Durable support frame structure

Variable speed stirring control

Fast-release clamp mechanism

Easy sample withdrawal ports

FAQs

1. What advantages does Jacketed Glass Reactor offer for staged reagent addition?

Jacketed Glass Reactor includes multiple lid openings designed to support staggered reagent addition throughout different stages of a chemical process. This functionality is critical for multistep reactions where the order and timing of component addition influence both yield and purity. The well-spaced ports prevent cross-interference, enabling simultaneous operation of multiple devices such as condensers, probes, or gas inlets. Researchers can maintain uninterrupted stirring and thermal conditions even while introducing new materials. It supports integration with peristaltic pumps or syringe injectors for controlled delivery. The design allows experiments requiring programmed dosing or stepwise mixing without opening the main chamber. Flexibility in configuration ensures better process control for dynamic or timed reactions. By reducing manual handling, it promotes better reproducibility across trials.

2. How does Jacketed Glass Reactor help with temperature-sensitive compound development?

Jacketed Glass Reactor supports consistent thermal environments that are essential for reactions involving compounds with narrow stability margins. The outer jacket enables regulated heating or cooling through fluid circulation, avoiding the use of direct-contact heating elements that can cause localized degradation. This protects delicate intermediates that may decompose at varying temperatures and ensures that reaction profiles remain consistent across durations. Its closed-loop control compatibility allows for swift changes in thermal input without disturbing the internal reaction conditions. In pharmaceutical research, where temperature control affects the polymorphic outcome of active ingredients, this is particularly important. Temperature shifts can be gradual or sudden depending on the process requirement. Researchers also benefit from reduced energy loss due to efficient heat transfer design. This combination ensures material integrity across multiple synthesis runs.

3. Can Jacketed Glass Reactor reduce residue retention after draining?

The Jacketed Glass Reactor is engineered with a bottom discharge valve that minimizes residual material inside the vessel after completion of the process. Its drain position and smooth interior surface direct contents toward the outlet without requiring vessel tilting or scraping. This feature is especially advantageous for small-scale synthesis where recovery yield matters. The design ensures limited product hold-up, which reduces contamination risk between batches. Operators experience faster draining times with less mechanical effort. Its outlet geometry supports direct connection to filtration systems or containers without complex setup. Residue minimization shortens downtime between experiments and lowers cleaning effort. As a result, the unit improves laboratory productivity and resource efficiency during repeated workflows.

4. What makes Jacketed Glass Reactor suitable for inert atmosphere applications?

The Jacketed Glass Reactor is ideal for conducting reactions under controlled atmospheric conditions, such as inert nitrogen or argon environments. Its structural seals and joint integrity help prevent infiltration of ambient air, which is crucial when working with air-sensitive reagents. By connecting to a gas inlet port, users can maintain a dry and oxygen-free chamber during the entire process. This supports safe handling of pyrophoric, moisture-reactive, or highly unstable compounds. Port alignment is designed to isolate gas flow from mechanical agitation areas. Even when operated under low vacuum, the reactor maintains its seal, making it reliable for pressure-sensitive synthesis. Experiments involving catalysts or organometallic systems particularly benefit from this configuration. Researchers can set up purging cycles without needing to open the main chamber between steps.

5. Does Jacketed Glass Reactor support real-time sampling during reactions?

Jacketed Glass Reactor enables non-disruptive sample collection through dedicated lid ports, allowing chemists to draw samples during a live reaction without halting the process. These ports accommodate standard lab tools such as septum-covered syringes, dip tubes, or micro-funnels. They help maintain a closed system, preventing contamination or reaction deviation due to external exposure. This is crucial for time-based studies where monitoring pH, turbidity, or intermediate yield at different intervals determines the next phase of synthesis. Real-time insights enhance process understanding and reduce the need for full replication. Researchers can modify parameters mid-run based on observed results. This makes it a preferred choice in kinetic research and validation trials. Additionally, the ports support clean sample withdrawal without excessive agitation.

6. How does Jacketed Glass Reactor enhance visibility for live reaction tracking?

The Jacketed Glass Reactor uses high-transparency borosilicate glass that enables constant observation of internal reaction dynamics, allowing visual confirmation of mixing uniformity, phase separation, or gas evolution. This eliminates the need to rely solely on sensor data during initial exploratory trials. For reactions involving changes in color, opacity, or bubble formation, the visual feedback can signal endpoints or deviations before instrumentation detects them. This is particularly useful for teaching environments or process troubleshooting. Clear sightlines also support observation of solid deposition or precipitation as they occur. The design accommodates external light sources, minimizing glare or distortion. Visibility remains unaffected even when using external fluid jackets or insulation sleeves. The glass structure is resistant to fogging, further aiding clarity during longer runs.

7. What advantages does Jacketed Glass Reactor offer for staged reagent addition?

Jacketed Glass Reactor includes multiple lid openings designed to support staggered reagent addition throughout different stages of a chemical process. This functionality is critical for multistep reactions where the order and timing of component addition influence both yield and purity. The well-spaced ports prevent cross-interference, enabling simultaneous operation of multiple devices such as condensers, probes, or gas inlets. Researchers can maintain uninterrupted stirring and thermal conditions even while introducing new materials. It supports integration with peristaltic pumps or syringe injectors for controlled delivery. The design allows experiments requiring programmed dosing or stepwise mixing without opening the main chamber. Flexibility in configuration ensures better process control for dynamic or timed reactions. By reducing manual handling, it promotes better reproducibility across trials.

8. How does Jacketed Glass Reactor help with temperature-sensitive compound development?

Jacketed Glass Reactor supports consistent thermal environments that are essential for reactions involving compounds with narrow stability margins. The outer jacket enables regulated heating or cooling through fluid circulation, avoiding the use of direct-contact heating elements that can cause localized degradation. This protects delicate intermediates that may decompose at varying temperatures and ensures that reaction profiles remain consistent across durations. Its closed-loop control compatibility allows for swift changes in thermal input without disturbing the internal reaction conditions. In pharmaceutical research, where temperature control affects the polymorphic outcome of active ingredients, this is particularly important. Temperature shifts can be gradual or sudden depending on the process requirement. Researchers also benefit from reduced energy loss due to efficient heat transfer design. This combination ensures material integrity across multiple synthesis runs.

9. Can Jacketed Glass Reactor reduce residue retention after draining?

The Jacketed Glass Reactor is engineered with a bottom discharge valve that minimizes residual material inside the vessel after completion of the process. Its drain position and smooth interior surface direct contents toward the outlet without requiring vessel tilting or scraping. This feature is especially advantageous for small-scale synthesis where recovery yield matters. The design ensures limited product hold-up, which reduces contamination risk between batches. Operators experience faster draining times with less mechanical effort. Its outlet geometry supports direct connection to filtration systems or containers without complex setup. Residue minimization shortens downtime between experiments and lowers cleaning effort. As a result, the unit improves laboratory productivity and resource efficiency during repeated workflows.

10. What makes Jacketed Glass Reactor suitable for inert atmosphere applications?

The Jacketed Glass Reactor is ideal for conducting reactions under controlled atmospheric conditions, such as inert nitrogen or argon environments. Its structural seals and joint integrity help prevent infiltration of ambient air, which is crucial when working with air-sensitive reagents. By connecting to a gas inlet port, users can maintain a dry and oxygen-free chamber during the entire process. This supports safe handling of pyrophoric, moisture-reactive, or highly unstable compounds. Port alignment is designed to isolate gas flow from mechanical agitation areas. Even when operated under low vacuum, the reactor maintains its seal, making it reliable for pressure-sensitive synthesis. Experiments involving catalysts or organometallic systems particularly benefit from this configuration. Researchers can set up purging cycles without needing to open the main chamber between steps.

11. Does Jacketed Glass Reactor support real-time sampling during reactions?

Jacketed Glass Reactor enables non-disruptive sample collection through dedicated lid ports, allowing chemists to draw samples during a live reaction without halting the process. These ports accommodate standard lab tools such as septum-covered syringes, dip tubes, or micro-funnels. They help maintain a closed system, preventing contamination or reaction deviation due to external exposure. This is crucial for time-based studies where monitoring pH, turbidity, or intermediate yield at different intervals determines the next phase of synthesis. Real-time insights enhance process understanding and reduce the need for full replication. Researchers can modify parameters mid-run based on observed results. This makes it a preferred choice in kinetic research and validation trials. Additionally, the ports support clean sample withdrawal without excessive agitation.

12. How does Jacketed Glass Reactor enhance visibility for live reaction tracking?

The Jacketed Glass Reactor uses high-transparency borosilicate glass that enables constant observation of internal reaction dynamics, allowing visual confirmation of mixing uniformity, phase separation, or gas evolution. This eliminates the need to rely solely on sensor data during initial exploratory trials. For reactions involving changes in color, opacity, or bubble formation, the visual feedback can signal endpoints or deviations before instrumentation detects them. This is particularly useful for teaching environments or process troubleshooting. Clear sightlines also support observation of solid deposition or precipitation as they occur. The design accommodates external light sources, minimizing glare or distortion. Visibility remains unaffected even when using external fluid jackets or insulation sleeves. The glass structure is resistant to fogging, further aiding clarity during longer runs.

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