ELASTIC PISTON AND HIGH-PRESSURE PUMPING SYSTEM
20210025384 ยท 2021-01-28
Inventors
Cpc classification
F04B53/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B19/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J1/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A piston and a high-pressure pumping system. The piston includes a piston body and a skirt. The skirt is elastic and peripherally provided at an end of the piston body. The skirt elastically abuts against an inner wall of a cylinder chamber when the piston is placed in the cylinder chamber. The high-pressure pumping system includes a cylinder and the piston. The piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber.
Claims
1. A piston, comprising a piston body and a skirt; wherein the skirt is elastic and peripherally provided at an end of the piston body; and the skirt elastically abuts against an inner wall of a cylinder chamber when the piston is placed in the cylinder chamber.
2. The piston of claim 1, wherein the piston body is elastic; an outer wall of the piston body comprises a first inclined surface; the skirt has a first protruding surface; an end of the first protruding surface is connected to an end of the first inclined surface; the other end of the first protruding surface obliquely extends outwards along a radial direction of the piston body; the other end of the first inclined surface obliquely extends outwards along the radial direction of the piston body; both of the first protruding surface and the first inclined surface elastically abut against the inner wall of the cylinder chamber; and a gap is formed by the first protruding surface, the first inclined surface and the inner wall of the cylinder chamber.
3. The piston of claim 1, wherein the piston body is elastic; an outer wall of the piston body comprises a first inclined surface and a second inclined surface; the skirt has a first protruding surface; the second inclined surface is arranged between the first protruding surface and the first inclined surface; the first protruding surface obliquely extends outwards along a radial direction of the piston body; the first inclined surface obliquely extends outwards along the radial direction of the piston body; both of the first protruding surface and the first inclined surface elastically abut against the inner wall of the cylinder chamber; the gap is formed by the first protruding surface, the second inclined surface, the first inclined surface and the inner wall of the cylinder chamber; a first angle is formed by the second inclined surface and the first inclined surface; and a second angle is formed by the first inclined surface and a central axis of the piston body.
4. The piston of claim 3, wherein the first angle is greater than 60 and less than 180; and the second angle is greater than 5 and less than 90.
5. The piston of claim 3, wherein a pressure chamber is provided at the other end of the piston body and is recessed; and a third inclined surface is circumferentially provided in the pressure chamber.
6. The piston of claim 5, wherein the third inclined surface and the first inclined surface are tilted in the same direction.
7. The piston of claim 5, wherein a thickness of a wall formed by the third inclined surface and the first inclined surface is greater than 0.1 mm.
8. The piston of claim 3, wherein the skirt further has a second protruding surface which extends outward along the radial direction of the piston body; and an end of the second protruding surface away from the piston body is connected to an end of the first protruding surface away from the second inclined surface.
9. The piston of claim 8, wherein a width of the skirt along a central axis of the piston body is greater than 0.01 mm.
10. A high-pressure pumping system, comprising a cylinder and the piston of claim 1; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
11. A high-pressure pumping system, comprising a cylinder and the piston of claim 2; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
12. A high-pressure pumping system, comprising a cylinder and the piston of claim 3; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
13. A high-pressure pumping system, comprising a cylinder and the piston of claim 4; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
14. A high-pressure pumping system, comprising a cylinder and the piston of claim 5; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
15. A high-pressure pumping system, comprising a cylinder and the piston of claim 6; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
16. A high-pressure pumping system, comprising a cylinder and the piston of claim 7; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
17. A high-pressure pumping system, comprising a cylinder and the piston of claim 8; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
18. A high-pressure pumping system, comprising a cylinder and the piston of claim 9; wherein the piston is received in the cylinder and reciprocates with respect to the inner wall of the cylinder chamber; and the skirt elastically abuts against the inner wall of the cylinder chamber when the piston is placed in the cylinder chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
[0015]
[0016]
[0017] In the drawings: 10, piston body; 11, outer wall of piston body; 12, pressure chamber; 13, third inclined surface; 111, second inclined surface; 112, first inclined surface; 20, skirt; 21, first protruding surface; 22, second protruding surface; 30, cylinder; 31, cylinder chamber; 32, inner wall of cylinder chamber; 40, gap; C, first angle; G, second angle; A, third angle; H, thickness; and B, width.
DETAILED DESCRIPTION OF EMBODIMENTS
[0018] The present application will be further described below in detail with reference to the accompanying drawings and the embodiments. The following embodiments are illustrative and not intended to limit the scope of the present application.
[0019] Provided herein is a piston, as shown in
[0020] In the present embodiment, the skirt 20 elastically abuts against the inner wall 32 of the cylinder chamber 31, so that the skirt 20 can consistently and adaptively fit with the inner wall 32 of the cylinder chamber 31 under the elastic force to create good sealing during the reciprocating movement of the piston body 10 in the cylinder chamber 31, and thus air is not able to enter the cylinder chamber 31 to mix with the fluid therein during the reciprocating movement of the piston body 10, thereby improving the operation stability and the service life of the high-pressure pumping system and reducing failure risk during the operation.
[0021] In an embodiment, as shown in
[0022] In which, the outer wall 11 of the piston body 10 is annular and extends in a direction of the central axis of the piston body 10.
[0023] The existing cylindrical piston is required to have desirable concentricity, cylindricity and diameter to match with the cylinder chamber, such that good sealing is realized between the cylindrical piston and the inner wall of the cylinder chamber, which require high accuracy for the manufacture. However, in practice, processing errors in the manufacturing process often cause insufficient sealing between the cylindrical piston and the inner wall of the cylinder chamber. In particular, front and rear ends of the cylindrical piston fail to contact the inner wall of the cylinder chamber, which leads to small gaps between the cylindrical piston and the inner wall of the cylinder chamber, resulting in issues that the cylinder has poor sealing and thus the leakage occurs.
[0024] The piston of the present embodiment realizes good sealing mainly because the first protruding surface 21 of the skirt 2 can elastically abut against the inner wall 32 of the cylinder chamber 31, which requires low accuracy for the manufacture. In addition, the first protruding surface 21 has greater elastic deformation in the radial direction due to the presence of the gap 40, so that the close fit between the first protruding surface 21 and the inner wall 32 of the cylinder chamber 31 is more easily realized. Assuming that the inner wall of the cylinder chamber is straight in a direction of its central axis and the outer wall of the piston body abuts against the inner wall of the cylinder chamber, contact points between the outer wall of the piston body and the inner wall of the cylinder chamber are on a straight line. However, due to the machining accuracy, the contact points between the outer wall of the piston body and the inner wall of the cylinder chamber generally fail to be on a straight line, that is, at least one contact point protrudes, at this time, a tiny gap is formed between the outer wall of the piston body and the inner wall of the cylinder chamber, resulting in poor sealing. In the present embodiment, both of the first protruding surface 21 and the first inclined surface 112 elastically abut against the inner wall 32 of the cylinder chamber 31, while a central area of the outer wall 11 of the piston body 10 does not contact the inner wall 32 of the cylinder chamber 31 due to the presence of the gap 40, so that the first protruding surface 21 and the first inclined surface 112 abut against the inner wall 32 of the cylinder chamber 31 on a line with two contact points. Therefore, the central axis of the piston body 10 is automatically aligned with a central axis of the cylinder chamber 31, that is, the piston of the present application can be automatically centered.
[0025] In an embodiment, as shown in
[0026] In an embodiment, as shown in
[0027] In an embodiment, as shown in
[0028] In an embodiment, as shown in
[0029] In an embodiment, a thickness H of a wall formed by the third inclined surface 13 and the first inclined surface 112 is greater than 0.1 mm, so that the first inclined surface 112 has enough structural strength, and first inclined surface 112 and the inner wall 32 of the cylinder chamber 31 are in sealed contact.
[0030] In an embodiment, as shown in
[0031] In an embodiment, a width of the skirt 20 in the direction of the central axis of the piston body 10 is greater than 0.01 mm. However, the second inclined surface 111 cannot be completely covered by the skirt 20 to ensure the existence of the gap 40.
[0032] In an embodiment, a high-pressure pumping system is provided. As shown in
[0033] In the present application, the high-pressure pumping system uses the piston of the present application to realize good sealing during the operation of the high-pressure pumping system, and the air is stopped from entering the cylinder chamber 31 to mix with the fluid therein, thereby improving the operation stability and the service life of the high-pressure pumping system and reducing failure risk during the operation.
[0034] In addition, the terms first, second and the like in the present application are for illustration purpose and not limited thereto. These terms are merely intended to distinguish the same type of information from each other. For example, without departing from the scope of the present application, first may refer to second, and similarly, second may refer to first.
[0035] The above description is only the preferred embodiments of the present application. It should be pointed out that any improvements and replacements made by those skilled in the art without departing from the technical principles of the present application shall fall within the scope of the present application.