Gas-liquid separation condensing device for reaction of amyl glycolate
By designing a pneumatic mechanism and an electrically controlled drain pipe inside the condenser tower, the gas flow drives the rotation of the casing and condenser plate, solving the problem of condensate accumulation, enabling the normal operation of the condenser and convenient draining, and improving the practicality of the device.
Patent Information
- Application Number
- CN202520654899.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2026-03-17
- Estimated Expiration
- 2035-04-09
AI Technical Summary
The existing gas-liquid separation and condensation device for globular ester reaction is not conducive to preventing the accumulation of condensate on the condensation structure, which affects the normal operation of the device and reduces its practicality.
A device was designed that includes components such as a condensing tower, a trigger switch, an electrically controlled drain pipe, and a pneumatic mechanism. The pneumatic mechanism is driven to rotate by the gas flow, which in turn drives the sleeve and condensing plate to rotate. Centrifugal force is used to detach the condensate from the condensing structure and automatically discharge the condensate through the electrically controlled drain pipe.
It effectively prevents condensate from accumulating on the condensation structure, avoiding affecting the normal operation of the device and improving the practicality and ease of use of the device.
Smart Images

Figure CN223995730U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of condensation devices for globular ester reaction, specifically a gas-liquid separation and condensation device for globular ester reaction. Background Technology
[0002] Gruppenol is a colorless and transparent chemical substance with a strong fruity aroma. Therefore, gurpenol is mainly used in the fragrance and flavor industry. The gas-liquid separation and condensation device for gurpenol reaction is one of the commonly used equipment in the gurpenol processing. Its main function is to separate the vapor and liquid produced by the gurpenol reaction, thereby ensuring the purity of the product.
[0003] However, existing gas-liquid separation and condensation devices for galbanum reaction have the following problems:
[0004] Since the condensation of gas into liquid and its accumulation on the condensing structure can easily affect the operation of the condensing structure, it is necessary to avoid the accumulation of condensate on the condensing structure. However, the existing gas-liquid separation and condensation device for the Gruppen ester reaction is not convenient to prevent the accumulation of condensate on the condensing structure, which can easily affect the normal operation of the device and reduce its practicality.
[0005] To address the aforementioned issues, there is an urgent need for innovative design based on the existing gas-liquid separation and condensation device for the guar gum reaction. Utility Model Content
[0006] The purpose of this invention is to provide a gas-liquid separation and condensation device for guar gum reaction, in order to solve the problem mentioned in the background art that the existing gas-liquid separation and condensation devices for guar gum reaction are inconvenient to prevent the accumulation of condensate on the condensation structure, which easily affects the normal operation of the device and reduces its practicality.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a gas-liquid separation and condensation device for guar gum reaction, comprising a condensation tower, a trigger switch, and an electrically controlled drain pipe. The condensation tower has an exhaust pipe at its upper end, and a refrigerant inlet pipe and a refrigerant outlet pipe are respectively installed at the upper and lower ends of the condensation tower's side. A sleeve is provided on the upper outer wall of the refrigerant outlet pipe, and a condensing plate is fixedly connected to the upper outer wall of the sleeve. A secondary bevel gear is fixedly installed on the outer wall of the sleeve below the condensing plate. An air inlet pipe is provided at the lower end of the side of the condensation tower away from the refrigerant inlet pipe, and a trigger switch is installed on the lower surface of the end of the air inlet pipe inside the condensation tower. An electrically controlled drain pipe is provided on the surface of the condensation tower below the air inlet pipe. A square rod is fixedly connected to the inner wall of the lower end of the condensation tower on the side of the electrically controlled drain pipe, and a float plate is sleeved on the outer wall of the square rod. A positioning pipe is fixedly installed at the upper end of the square rod, and a pneumatic mechanism is provided on the inner wall of the positioning pipe.
[0008] Preferably, the refrigerant inlet pipe and the refrigerant outlet pipe are connected by a sealed bearing and a sleeve, respectively.
[0009] Preferably, the condenser plates are evenly distributed on the sleeve.
[0010] Preferably, the trigger switch and the electrically controlled drain pipe are electrically connected.
[0011] Preferably, the float plate is attached to the trigger switch and the condenser tower respectively.
[0012] Preferably, the float and the square rod form a sliding structure.
[0013] Preferably, the pneumatic mechanism includes a wind rod, fan blades, and a main bevel gear, with the wind rod movably mounted on the inner wall of the positioning tube, and fan blades and a main bevel gear fixed at both ends of the wind rod, respectively.
[0014] Preferably, the wind rod and the positioning tube form a rotating structure, the fan blades are located inside the air intake pipe, and the main bevel gear and the secondary bevel gear mesh with each other.
[0015] Compared with the prior art, the beneficial effects of this utility model are: the gas-liquid separation and condensation device for the reaction of gruppen ester is easy to prevent the condensate from accumulating on the condensation structure, thereby avoiding affecting the normal operation of the device and improving the practicality of the device;
[0016] The gas flows through the inlet pipe, which drives the pneumatic mechanism. The pneumatic mechanism then drives the secondary bevel gear to rotate, which in turn drives the sleeve to rotate. At the same time, the sleeve and the condenser plate rotate simultaneously, causing the condensate accumulated on the sleeve and the condenser plate to detach from them under the action of centrifugal force. Therefore, the device effectively prevents condensate from accumulating on the condensation structure, thus avoiding affecting the normal operation of the device and improving its practicality. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the orthographic section of the present invention;
[0018] Figure 2 This is a partial top view of the pneumatic mechanism of this utility model;
[0019] Figure 3 This is a schematic diagram of the orthographic section of the pneumatic mechanism of this utility model;
[0020] Figure 4 This is a cross-sectional view of the float plate and trigger switch in their contact state according to this utility model.
[0021] Figure 5 This is a top view of the floating plate structure of this utility model.
[0022] In the diagram: 1. Condensation tower; 2. Exhaust pipe; 3. Refrigerant inlet pipe; 4. Coolant outlet pipe; 5. Sheath; 6. Condensation plate; 7. Secondary bevel gear; 8. Inlet pipe; 9. Trigger switch; 10. Electrically controlled drain pipe; 11. Square rod; 12. Float plate; 13. Positioning pipe; 14. Pneumatic mechanism; 1401. Fan rod; 1402. Fan blade; 1403. Main bevel gear. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Please see Figure 1-5 This utility model provides a technical solution: a gas-liquid separation and condensation device for galvanic acid reaction, comprising a condensation tower 1, an exhaust pipe 2, a refrigerant inlet pipe 3, a cold coal outlet pipe 4, a sleeve 5, a condensation plate 6, a secondary bevel gear 7, an air inlet pipe 8, a trigger switch 9, an electrically controlled drain pipe 10, a square rod 11, a float plate 12, a positioning pipe 13, a pneumatic mechanism 14, a fan rod 1401, a fan blade 1402, and a main bevel gear 1403. The upper end of the condensation tower 1 is provided with an exhaust pipe 2, and the upper and lower ends of the side of the condensation tower 1 are respectively equipped with a refrigerant inlet pipe 3 and a cold coal outlet pipe 4. Furthermore, the upper outer wall of the cold coal outlet pipe 4 is provided with a sleeve 5. A condenser plate 6 is fixedly connected to the upper outer wall of the pipe 5. At the same time, a secondary bevel gear 7 is fixedly installed on the outer wall of the sleeve 5 below the condenser plate 6. An air inlet pipe 8 is provided on the lower side of the condenser tower 1 away from the refrigerant inlet pipe 3. A trigger switch 9 is installed on the lower surface of the end of the air inlet pipe 8 inside the condenser tower 1. An electrically controlled drain pipe 10 is provided on the surface of the condenser tower 1 below the air inlet pipe 8. A square rod 11 is fixedly connected to the lower inner wall of the condenser tower 1 on the side of the electrically controlled drain pipe 10. A float plate 12 is sleeved on the outer wall of the square rod 11. A positioning pipe 13 is fixedly installed on the upper end of the square rod 11. A fan mechanism 14 is provided on the inner wall of the positioning pipe 13.
[0025] The refrigerant inlet pipe 3 and the refrigerant outlet pipe 4 are connected to the sleeve 5 by a sealed bearing, which facilitates the stable rotation of the sleeve 5, thereby driving the condenser plate 6 to rotate, so that the condensate on the sleeve 5 and the condenser plate 6 is removed from the sleeve 5 and the condenser plate 6.
[0026] The condenser plates 6 are evenly distributed on the sleeve 5, which facilitates increasing the condensation area of the device.
[0027] The trigger switch 9 and the electrically controlled drain pipe 10 are electrically connected, so that the opening of the electrically controlled drain pipe 10 can be controlled by the trigger switch 9.
[0028] The float plate 12 is attached to the trigger switch 9 and the condenser tower 1 respectively, so that the float plate 12 can move under the action of buoyancy and attach to the trigger switch 9, thereby turning on the trigger switch 9.
[0029] The float 12 and the square rod 11 form a sliding structure, which facilitates the stable movement of the float 12 relative to the square rod 11.
[0030] The pneumatic mechanism 14 includes a blower rod 1401, a fan blade 1402, and a main bevel gear 1403. The blower rod 1401 is movably installed on the inner wall of the positioning tube 13, and the fan blade 1402 and the main bevel gear 1403 are fixed at both ends of the blower rod 1401, so that the pneumatic mechanism 14 can be driven when gas enters the device, thereby causing the pneumatic mechanism 14 to drive the sleeve 5 and the condenser plate 6 to rotate.
[0031] The wind rod 1401 and the positioning tube 13 form a rotating structure. The fan blade 1402 is located inside the air intake pipe 8. The main bevel gear 1403 and the secondary bevel gear 7 mesh with each other, so that when the gas flows in the air intake pipe 8, the gas drives the fan blade 1402 to rotate, which causes the fan blade 1402 to drive the wind rod 1401 to rotate relative to the positioning tube 13, thereby causing the wind rod 1401 to drive the main bevel gear 1403 to rotate the secondary bevel gear 7.
[0032] Working principle: When using this gas-liquid separation and condensation device for the gluconate reaction, firstly as follows... Figure 1-5As shown, refrigerant enters the device through refrigerant inlet pipe 3, then flows into sleeve 5 and exits the device through refrigerant outlet pipe 4, thereby reducing the temperature of sleeve 5 and condenser plate 6. Then, the gas produced by the reaction of galvanic acid enters the condenser tower 1 through inlet pipe 8. At this time, the gas contacts sleeve 5 and condenser plate 6 for condensation, while the uncondensed gas moves upward and exits the device through exhaust pipe 2. Simultaneously, the condensed liquid accumulates on sleeve 5 and condenser plate 6. Then, as the gas flows in inlet pipe 8, the gas drives fan blade 1402 to rotate. Next, fan blade 1402 drives wind rod 1401 to rotate relative to positioning pipe 13. Next, wind rod 1401 drives main bevel gear 1403 to rotate, then main bevel gear 1403 drives secondary bevel gear 7 to rotate, and then secondary bevel gear 7 drives sleeve 5 to rotate. Simultaneously, sleeve 5 drives the refrigerant... As the condenser plate 6 rotates, the condensate accumulated on the sleeve 5 and condenser plate 6 is detached from them by centrifugal force. The condensate then accumulates at the bottom of the condensation tower 1. Therefore, the device effectively prevents condensate from accumulating on the condensation structure, thus avoiding affecting the normal operation of the device and improving its practicality. As more and more condensate accumulates at the bottom of the condensation tower 1, the liquid level of the condensate rises continuously. At this time, the float plate 12 floating on the condensate moves upward along the square rod 11. Then, the float plate 12 moves and comes into contact with the trigger switch 9. Next, the trigger switch 9 sends a signal to the electrically controlled drain pipe 10. Then, the electrically controlled drain pipe 10 opens for a period of time to discharge the condensate in the condensation tower 1. Therefore, the device can automatically discharge the condensate, improving its ease of use.
[0033] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A gas-liquid separation condensing device for gpenate ester reaction, comprising a condensing tower (1), a trigger switch (9) and an electrically controlled liquid discharge pipe (10), characterized in that: The upper end of the condensing tower (1) is provided with an exhaust pipe (2), and the upper and lower ends of the side of the condensing tower (1) are respectively provided with a refrigerant inlet pipe (3) and a cold coal outlet pipe (4), and the outer wall of the upper end of the cold coal outlet pipe (4) is provided with a sleeve pipe (5), and the outer wall of the upper end of the sleeve pipe (5) is fixedly connected with a condensing plate (6), and the outer wall of the sleeve pipe (5) below the condensing plate (6) is fixedly installed with a pinion (7), the side of the condensing tower (1) away from the refrigerant inlet pipe (3) is provided with an air inlet pipe (8), and the lower surface of the end of the air inlet pipe (8) in the condensing tower (1) is installed with a trigger switch (9), and the surface of the condensing tower (1) below the air inlet pipe (8) is provided with an electric control liquid discharge pipe (10), the lower end of the condensing tower (1) on the side of the electric control liquid discharge pipe (10) is fixedly connected with a square rod (11), the outer wall of the square rod (11) is sleeved with a floating plate (12), and the upper end of the square rod (11) is fixedly installed with a positioning pipe (13), and the inner wall of the positioning pipe (13) is provided with a wind driven mechanism (14).
2. A gas-liquid separation and condensation device for use in a Grignard reaction according to claim 1, characterized in that: The refrigerant inlet pipe (3) and the cold coal outlet pipe (4) are connected by a sealing bearing and a sleeve pipe (5) respectively.
3. A gas-liquid separation and condensation device for use in a Grignard reaction according to claim 1, characterized in that: The condensing plates (6) are distributed at equal intervals on the sleeve pipe (5).
4. A gas-liquid separation and condensation device for use in a Grignard reaction according to claim 1, characterized in that: The trigger switch (9) and the electric control liquid discharge pipe (10) are electrically connected.
5. A gas-liquid separation and condensation device for use in a Grignard reaction according to claim 1, characterized in that: The floating plate (12) is attached to the trigger switch (9) and the condensing tower (1) respectively.
6. A gas-liquid separation and condensation device for use in a Grignard reaction according to claim 1, characterized in that: The floating plate (12) and the square rod (11) form a sliding structure.
7. A gas-liquid separation and condensation device for use in a Grignard reaction according to claim 1, characterized in that: The wind driven mechanism (14) comprises a wind rod (1401), a fan blade (1402) and a main bevel gear (1403), the wind rod (1401) is movably installed on the inner wall of the positioning pipe (13), and the two ends of the wind rod (1401) are respectively fixed with the fan blade (1402) and the main bevel gear (1403).
8. A gas-liquid separation and condensation device for use in a Grignard reaction according to claim 7, characterized in that: The wind rod (1401) and the positioning pipe (13) form a rotating structure, the fan blade (1402) is located in the air inlet pipe (8), and the main bevel gear (1403) is engaged with the pinion (7).