Gas drying device
By designing a gas-liquid separation device in the gas drying device to generate a rotating airflow and collecting moisture by gravity, the problem of incomplete moisture removal in the prior art is solved, and efficient moisture removal and equipment stability are achieved.
Patent Information
- Application Number
- CN202422084452.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2023-12-21
- Filing Date
- 2024-08-27
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-08-27
AI Technical Summary
Existing high-pressure gas dryers cannot remove moisture efficiently, resulting in moisture residue affecting the life of the mechanical equipment and poor corrosion prevention effect.
A gas drying device is designed to generate a rotating air flow through the multi-porous diameter change in the gas-liquid separation device, and the moisture is collected into the moisture collection cup by gravity, and the drying gas is discharged through the drying high-pressure gas outlet.
It achieves efficient removal of moisture, improves the stability of equipment operation and prevents corrosion, and ensures the normal operation of mechanical equipment.
Smart Images

Figure CN223209254U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of gas drying, and more particularly to a gas drying device provided technically, wherein gas-liquid separation is generated by a gas-liquid separation device with multiple aperture changes, moisture is collected and discharged by gravity to a moisture collection cup below, and dry high-pressure gas is transported from the gas-liquid separation device to a dry high-pressure gas outlet, thereby achieving the effect of high-efficiency moisture removal. Background Art
[0002] Maintaining dry high-pressure air is crucial for ensuring stable equipment operation, accurate measurements, and preventing corrosion and condensation. This dryness helps ensure the smooth operation of various industrial and scientific applications. However, while conventional high-pressure gas dryers can remove some moisture, their effectiveness is limited, resulting in some moisture being delivered along with the high-pressure gas into mechanical equipment or related equipment using high-pressure gas. This not only shortens the lifespan of the equipment but also effectively prevents corrosion and condensation. Conventional high-pressure gas dryers are in need of improvement.
[0003] Therefore, in view of the problems existing in the above-mentioned conventional structures, how to develop a more ideal and practical innovative structure is what consumers are eagerly looking forward to, and it is also the goal and direction that relevant industries must strive to develop and break through.
[0004] In view of this, the author of this invention, with many years of experience in manufacturing, developing and designing related products, has, after detailed design and careful evaluation aimed at the above-mentioned goals, finally arrived at this utility model which is truly practical. Utility Model Content
[0005] The main purpose of the utility model is to provide a gas drying device, which produces gas-liquid separation through the change of multiple pore diameters of the gas-liquid separation device. The moisture is collected and discharged by gravity to the moisture collection cup below, and the dry high-pressure gas is transported from the gas-liquid separation device to the dry high-pressure gas outlet, thereby achieving the effect of high-efficiency moisture removal.
[0006] To achieve the above-mentioned object, the present invention provides a gas drying device, characterized in that it comprises:
[0007] A flow guide head seat, with a high-pressure gas inlet on one side and a dry high-pressure gas outlet on the other side;
[0008] A guide sleeve is arranged below the guide head seat;
[0009] a gas-liquid separation device disposed within the guide sleeve, wherein a through hole is formed from the top of the gas-liquid separation device, the through hole being connected to the dry high-pressure gas outlet, the gas-liquid separation device comprising an outer sleeve, wherein the outer sleeve is provided with one or more layers of hollow gas-liquid separation discs, wherein the gas-liquid separation discs are provided with several cylinders below, each of which is provided with a small through hole, the small through hole being connected to the gas-liquid separation discs; and
[0010] A moisture collecting cup is arranged below the guide sleeve.
[0011] The gas drying device, wherein: the high-pressure gas inlet assembly is provided with a quick-release male seat or a quick-release female seat.
[0012] The gas drying device, wherein: the dry high-pressure gas outlet assembly is provided with a quick-release male seat or a quick-release female seat.
[0013] The gas drying device, wherein: three layers of the gas-liquid separation disks with hollow interiors are arranged in the outer sleeve.
[0014] The gas drying device, wherein: five cylindrical bodies are provided below the gas-liquid separation plate.
[0015] Accordingly, high-pressure wet gas enters the guide sleeve and the gas-liquid separation device, generating a rotating airflow, which is then separated by multiple aperture changes. The moisture is collected and discharged by gravity to the moisture collection cup below, while the dry high-pressure gas is transported from the gas-liquid separation device to the dry high-pressure gas outlet, thereby achieving the effect of highly efficient moisture removal.
[0016] With regard to the technology, means and effects adopted by the present invention, a preferred embodiment is now listed and described in detail with reference to the accompanying drawings. It is believed that the above-mentioned purpose, structure and characteristics of the present invention can be deeply and specifically understood from them. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a three-dimensional schematic diagram of one embodiment of the utility model.
[0018] Figure 2 It is a three-dimensional exploded schematic diagram of one embodiment of the utility model.
[0019] Figure 3 It is a planar cross-sectional view of one embodiment of the present utility model.
[0020] Figure 4 This is a plane cross-sectional view of the intake state of one embodiment of the utility model.
[0021] Figure 5 This is a planar cross-sectional view of the gas outlet state of one embodiment of the present invention.
[0022] Figure 6 This is a cross-sectional view from the bottom of one embodiment of the present invention.
[0023] Explanation of the accompanying reference numerals: 10-flow guide seat; 11-high-pressure gas inlet; 12-dry high-pressure gas outlet; 20-flow guide sleeve; 30-gas-liquid separation device; 31-through hole; 32-outer sleeve; 33-gas-liquid separation disc; 331-cylinder; 332-small through hole; 40-moisture collection cup; A-quick-release male seat; B-quick-release female seat. DETAILED DESCRIPTION
[0024] The utility model provides a design of a gas drying device.
[0025] In order to have a further understanding and recognition of the purpose, features and effects of the present invention, the following is a detailed description of the embodiments and the accompanying drawings:
[0026] See also Figures 1 to 6 As shown, the utility model provides a gas drying device, comprising:
[0027] A flow guide head 10, with a high-pressure gas inlet 11 on one side and a dry high-pressure gas outlet 12 on the other side;
[0028] A guide sleeve 20 is installed below the guide head seat 10 .
[0029] a gas-liquid separation device 30 disposed within the guide sleeve 20, with a through hole 31 extending from the top of the gas-liquid separation device 30 to the dry high-pressure gas outlet 12, the gas-liquid separation device 30 including an outer sleeve 32, the outer sleeve 32 having one or more hollow gas-liquid separation discs 33 disposed therein, the gas-liquid separation discs 33 having several cylindrical bodies 331 disposed below, each of the cylindrical bodies 331 having a small through hole 332 disposed therein to connect to the gas-liquid separation discs 33; and
[0030] A moisture collection cup 40 is installed below the guide sleeve 20. The high-pressure wet gas enters the space between the guide sleeve 20 and the gas-liquid separator 30 to generate a rotating airflow. The gas-liquid separator 30 then undergoes multiple aperture changes to separate the gas and liquid. The moisture is collected and discharged by gravity into the moisture collection cup 40 below, while the dry high-pressure gas is transported from the gas-liquid separator 30 to the dry high-pressure gas outlet 12, thereby achieving a highly efficient moisture removal effect.
[0031] In the gas drying device, the high-pressure gas inlet 11 is provided with a quick-release male socket (A) or a quick-release female socket (B).
[0032] In the gas drying device, the dry high-pressure gas outlet 12 is provided with a quick-release male seat (A) or a quick-release female seat (B).
[0033] In the gas drying device, the outer sleeve 32 is provided with more than one layer of the gas-liquid separation disk 33 with a hollow interior, and preferably three layers of the gas-liquid separation disk 33 are provided.
[0034] In the gas drying device, several cylindrical bodies 331 are provided below the gas-liquid separation plate 33 , and five cylindrical bodies 331 are preferably provided.
[0035] As can be seen from the above, the gas drying device of the present utility model is indeed the first of its kind in the industry and meets the novelty requirement of a utility model patent. Its comprehensive innovative design also meets the progressiveness requirement of a utility model patent. The gas-liquid separation is achieved by varying the multiple apertures of the gas-liquid separation device, and moisture is collected and removed by gravity in the moisture collection cup below. The dry high-pressure gas is then transported from the gas-liquid separation device to the dry high-pressure gas outlet, thereby achieving the effect of highly efficient moisture removal and meeting better industrial applicability.
[0036] The foregoing description is a detailed description of the technical features of the present invention with respect to the preferred embodiments of the present invention; and a person skilled in the art should be able to make changes and modifications to the present invention without departing from the spirit and principles of the present invention, and such changes and modifications should all be included in the scope of protection of the present invention.
Claims
1. A gas drying device, characterized in that: include: A flow guide head seat, with a high-pressure gas inlet on one side and a dry high-pressure gas outlet on the other side; A guide sleeve is arranged below the guide head seat; a gas-liquid separation device disposed within the guide sleeve, wherein a through hole is formed from the top of the gas-liquid separation device, the through hole being connected to the dry high-pressure gas outlet, the gas-liquid separation device comprising an outer sleeve, wherein the outer sleeve is provided with one or more layers of hollow gas-liquid separation discs, wherein the gas-liquid separation discs are provided with several cylinders below, each of which is provided with a small through hole, the small through hole being connected to the gas-liquid separation discs; and A moisture collecting cup is arranged below the guide sleeve.
2. The gas drying device according to claim 1, wherein: The high-pressure gas inlet assembly is provided with a quick-release male seat or a quick-release female seat.
3. The gas drying device according to claim 2, wherein: The dry high-pressure gas outlet assembly is provided with a quick-release male seat or a quick-release female seat.
4. The gas drying device according to claim 3, wherein: Three layers of gas-liquid separation discs with hollow interiors are arranged in the outer sleeve.
5. The gas drying device according to claim 4, characterized in that: Five cylindrical bodies are arranged below the gas-liquid separation plate.