Rapid recovery device for extraction reagent

By designing a combined structure of an iron frame, a glass coil condenser, and a material changing trolley, the problem of low extraction reagent recovery efficiency was solved, enabling unified processing and rapid discharge of multiple extraction raw materials, thereby improving the recovery efficiency and ease of operation of the extraction reagent.

CN224207452UActive Publication Date: 2026-05-08中纺标(浙江)检测有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
中纺标(浙江)检测有限公司
Filing Date
2025-07-09
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

In existing technologies, the recovery efficiency of extraction reagents is low, requiring multiple recovery devices and each bottle must be poured into a unified recovery system after it is full, resulting in slow efficiency.

Method used

Design a rapid recovery device including an iron stand, a glass coil condenser, a liquid collection flask, and a material changing trolley. It connects to the loading flask through multiple liquid inlet pipes to achieve unified extraction and rapid discharge of multiple extraction raw materials. Combined with an adjustable telescopic frame and sliding rail structure, it is convenient for use with flasks of different sizes.

Benefits of technology

It enables rapid recovery of extraction reagents, avoiding the need for multiple separate recovery devices, and its height and position can be adjusted as needed, improving the convenience and efficiency of operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a rapid recovery device for an extraction reagent and belongs to the technical field of liquid extraction equipment. Which comprises two iron stands which are symmetrically arranged left and right, and is characterized in that each iron stand is formed by combining a bottom plate, a vertical rod, a clamping sleeve, an adjusting bolt, a supporting rod and a clamping sleeve, a glass coil pipe condenser is connected between the clamping sleeves on the two iron stands in a sleeved mode, and a water outlet pipe is inwards connected to the top of the side face of the glass coil pipe condenser in an inserted mode; the liquid inlet branch pipes are arranged on the outer ring of the bottom of the glass coil pipe condenser, and the output end of each liquid inlet branch pipe is sleeved with the charging flask used for containing the raw materials needing to be extracted, so that the raw materials needing to be extracted can be extracted in a unified mode, extraction liquid can be discharged through the liquid outlet in a unified mode finally, and the extraction efficiency is improved. The condition that each charging flask needs to be provided with one extraction device is avoided, so that the size of the liquid collecting flask can be changed according to the extraction condition.
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Description

Technical Field

[0001] This utility model belongs to the technical field of liquid extraction equipment, specifically relating to a rapid recovery device for extraction reagents. Background Technology

[0002] A chemical reagent that can form a soluble extractant in the organic phase with the extracted substance. In hydrometallurgy, the role of the extractant is to react with the metal being extracted through a complex chemical reaction to form an extractant that is extracted into the organic phase, and also to extract the metal from the organic phase into the aqueous phase through a certain chemical reaction, thereby achieving the purpose of metal purification and enrichment.

[0003] In routine extraction and recovery, each bottle is typically handled by a single recovery device. The recovery of the same reagent requires multiple recovery devices, and each bottle needs to be sampled and poured into a recovery bottle after it is full. This process is inefficient and therefore requires an improvement in the recovery method. Utility Model Content

[0004] The present invention aims to solve the technical problems existing in the prior art and provide a rapid recovery device for extraction reagents.

[0005] The above-mentioned technical problems of this utility model are mainly solved by the following technical solution: a rapid recovery device for extraction reagents, comprising two iron frames arranged symmetrically on the left and right, characterized in that: the iron frames are composed of a base plate, uprights, snap-fit ​​sleeves, adjusting bolts, support rods and clamps combined together; a glass coil condenser is sleeved between the clamps on the two iron frames; a water outlet pipe is inserted inward from the top of the side of the glass coil condenser; a water inlet pipe is inserted inward from the top of the side of the glass coil condenser; a first coil and a second coil are respectively arranged between the water outlet pipe and the water inlet pipe; the first coil and the second coil are connected to the water outlet pipe and the water inlet pipe; the first coil and the second coil are located inside the glass coil condenser; a liquid outlet is provided at the bottom of the glass coil condenser; a liquid collection flask is provided at the bottom of the liquid outlet; a material changing trolley is provided at the bottom of the liquid collection flask; multiple liquid inlet branches are connected around the bottom of the glass coil condenser; a material filling flask is inserted into the output end of each liquid inlet branch.

[0006] Preferably, a first sealing sleeve is fitted at the connection between the liquid collection flask and the liquid outlet, and a second sealing sleeve is fitted at the connection between the filling flask and the liquid inlet pipe.

[0007] Preferably, the material changing trolley includes a chassis, a limiting seat, a telescopic frame, and a slide rail. The chassis is positioned at the bottom of the liquid collection flask, the limiting seat is positioned at the four corners of the top of the chassis and clamps the liquid collection flask, the telescopic frame is arranged in four groups at the four corners of the chassis, and each telescopic frame has a pulley at its bottom. The slide rail is arranged in two symmetrical groups, and the material changing trolley slides left and right along the slide rail.

[0008] The beneficial effects of this utility model are as follows: By setting multiple liquid inlet pipes on the outer ring of the bottom of the glass coil condenser, and attaching a loading flask for the raw material to be extracted to the output end of each liquid inlet pipe, multiple raw materials to be extracted can be extracted at the same time, and the extract can be discharged through the outlet at the end. This avoids the situation where each loading flask needs to be equipped with an extraction device. The size of the liquid collection flask can be changed according to the extraction situation. The top of the bottom material changing trolley is equipped with four telescopic frames that can be extended and retracted vertically. When changing to a larger flask, the height can be quickly adjusted according to the height. At the same time, the height of the material changing trolley and the multiple loading flasks is higher than the height of the bottom plate. This is used to place the heating device at the bottom and the lifting device for the slide rail. Alternatively, when placing a larger flask, the lifting device can be omitted, so that the slide rail is at the same height as the bottom frame, making collection more convenient and faster. Attached Figure Description

[0009] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0010] Figure 2 This is a cross-sectional structural schematic diagram of this utility model.

[0011] In the diagram: 11. Base plate; 12. Upright pole; 13. Clip sleeve; 14. Adjusting bolt; 15. Support rod; 16. Jacket; 2. Glass coil condenser; 21. Water outlet pipe; 22. Water inlet pipe; 23. First coil; 24. Second coil; 25. Liquid outlet; 26. First sealing sleeve; 3. Liquid collection flask; 41. Liquid inlet branch pipe; 42. Filling flask; 43. Second sealing sleeve; 51. Base plate; 52. Limiting seat; 53. Telescopic frame; 54. Slide rail. Detailed Implementation

[0012] The technical solution of this utility model will be further described in detail below through embodiments and in conjunction with the accompanying drawings.

[0013] Example: A rapid recovery device for extraction reagents, such as... Figures 1-2As shown, the device includes two symmetrically arranged iron frames. The frame is characterized by being composed of a base plate 11, uprights 12, snap-fit ​​sleeves 13, adjusting bolts 14, support rods 15, and clamps 16. The uprights 12 are inserted into one side of the top of the base plate 11, with their bottoms penetrating the base plate 11 and fixed by bolts. The snap-fit ​​sleeves 13 are slidably fitted onto the surface of the uprights 12. The adjustment bolts 14 on one side are inserted and press against the uprights 12 to achieve positioning. The support rods 15 and the front clamps 16 are interlocked. A glass coil condenser 2 is fitted between the clamps 16 on the two iron frames. The two clamps 16 simultaneously clamp the surface of the glass condenser, primarily for stability and to prevent it from falling. A water outlet pipe 21 is inserted inward from the top of the side of the glass coil condenser 2. A water inlet pipe 22 is inserted inward from the top of the side of the condenser 2. A first coil 23 and a second coil 24 are respectively arranged between the water outlet pipe 21 and the water inlet pipe 22. The first coil 23 and the second coil 24 are connected to the water outlet pipe 21 and the water inlet pipe 22. The first coil 23 and the second coil 24 are located inside the glass coil condenser 2. A liquid outlet 25 is provided at the bottom of the glass coil condenser 2. A liquid collection flask 3 is provided at the bottom of the liquid outlet 25. A first sealing sleeve 26 is fitted at the connection between the liquid collection flask 3 and the liquid outlet 25. A material changing trolley is provided at the bottom of the liquid collection flask 3. Multiple liquid inlet branches 41 are connected around the bottom of the glass coil condenser 2. A material filling flask 42 is inserted into the output end of each liquid inlet branch 41. A second sealing sleeve 43 is fitted at the connection between the material filling flask 42 and the liquid inlet branch 41.

[0014] The material changing trolley includes a chassis 51, a limiting seat 52, a telescopic frame 53, and a slide rail 54. The chassis 11 is positioned at the bottom of the liquid collection flask 3. The limiting seat 52 is positioned at the four corners of the top of the chassis 11 and clamps the liquid collection flask 3. The telescopic frame 53 is arranged in four groups at the four corners of the chassis 51, and each telescopic frame 53 has a pulley at its bottom. The slide rail 54 is arranged in two symmetrical groups, and the material changing trolley slides left and right through the slide rail 54. The height of the material changing trolley and the multiple loading flasks 42 is higher than the height of the chassis 11. This is used to place a heating device at the bottom and to raise the slide rail 54. Alternatively, when placing a larger flask, the raising device can be omitted, making the slide rail 54 the same height as the chassis, making collection more convenient and faster. It is mainly used to reserve some height for the subsequent use of a raised seat and a heating device. The heating device can be a heating jacket or a water bath.

[0015] Finally, it should be noted that the above embodiments are merely representative examples of this utility model. Obviously, this utility model is not limited to the above embodiments and many variations are possible. Any simple modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of this utility model should be considered to fall within the protection scope of this utility model.

Claims

1. A rapid recovery device for extraction reagents, comprising two iron stands arranged symmetrically on the left and right sides, characterized in that: The iron frame is composed of a base plate (11), uprights (12), snap-fit ​​sleeves (13), adjusting bolts (14), support rods (15), and clamps (16). A glass coil condenser (2) is fitted between the clamps (16) on the two iron frames. A water outlet pipe (21) is inserted inward from the top of the side of the glass coil condenser (2), and a water inlet pipe (22) is inserted inward from the top of the side of the glass coil condenser (2). A first coil (23) and a second coil (24) are respectively arranged between the water outlet pipe (21) and the water inlet pipe (22). (23) and the second coil (24) are connected to the water outlet pipe (21) and the water inlet pipe (22). The first coil (23) and the second coil (24) are located inside the glass coil condenser (2). The bottom of the glass coil condenser (2) is provided with a liquid outlet (25). The bottom of the liquid outlet (25) is provided with a liquid collection flask (3). The bottom of the liquid collection flask (3) is provided with a material changing trolley. Multiple liquid inlet pipes (41) are connected around the bottom of the glass coil condenser (2). Each liquid inlet pipe (41) has a material filling flask (42) inserted into its output end.

2. The rapid recovery device for extraction reagents according to claim 1, characterized in that: A first sealing sleeve (26) is fitted at the connection between the liquid collection flask (3) and the liquid outlet (25), and a second sealing sleeve (43) is fitted at the connection between the filling flask (42) and the liquid inlet pipe (41).

3. The rapid recovery device for extraction reagents according to claim 1, characterized in that: The material changing trolley includes a chassis (51), a limiting seat (52), a telescopic frame (53), and a slide rail (54). The base plate (11) is set at the bottom of the liquid collection flask (3). The limiting seat (52) is set at the four corners of the top of the base plate (11) and clamps the liquid collection flask (3). The telescopic frame (53) is divided into four groups and is set at the four corners of the chassis (51). Each telescopic frame (53) is equipped with a pulley at the bottom. The slide rail (54) is divided into two groups and is symmetrically arranged. The material changing trolley slides left and right through the slide rail (54).