BALL VALVE STRUCTURE
20210254727 ยท 2021-08-19
Inventors
Cpc classification
F16K5/0689
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K5/0642
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K5/0647
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K5/0626
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A ball valve structure includes a valve body having a valve chamber therein. A valve ball is accommodated in the valve chamber. The valve ball defines a flow hole therein. Two gaskets are in close contact with two opposite side surfaces of the valve ball, so that the valve ball can rotate around a fixed point in the valve chamber. One side of one of the two gaskets abuts against a washer and a compression spring, so that the gasket is elastically pressed against a surface of the valve ball. A valve stem is connected to the valve ball through the valve body for driving the valve ball to rotate, enabling the flow hole to be opened.
Claims
1. A ball valve structure, comprising: a valve body, having a valve chamber therein; a valve ball, accommodated in the valve chamber, the valve ball defining a flow hole therein, a first gasket and a second gasket being in close contact with two opposite side surfaces of the valve ball so that the valve ball can rotate around a fixed point in the valve chamber, only one side of the first gasket, facing away from the valve ball, abutting against a washer and a compression spring, the compression spring being held against the washer so that the first gasket is elastically pressed against a surface of the valve ball; a valve stem, connected to the valve ball through the valve body, for driving the valve ball to rotate, enabling the flow hole to be opened.
2. The ball valve structure as claimed in claim 1, wherein the valve body is formed with a first through hole and a second through hole respectively communicating with the valve chamber, one side of the valve ball is recessed to form an engaging portion facing the first through hole, the valve stem has an engaging end and a coupling end, the engaging end of the valve stem is inserted through the first through hole of the valve body and engaged with the engaging portion of the valve ball, and the coupling end of the valve stem extends out of the valve body and is connected with a control member.
3. The ball valve structure as claimed in claim 1, wherein the valve body is formed with a first through hole and a second through hole respectively communicating with the valve chamber, each of the first gasket and the second gasket is a hollow ring and has an abutting face facing the valve ball and corresponding to a curvature of the surface of the valve ball, one side of each of the first gasket and the second gasket, facing away from the abutting face, is provided with a communicating pipe portion, the communicating pipe portion of the second gasket is inserted into an inner flow passage communicating with the valve chamber, and the communicating pipe portion of the first gasket faces the second through hole and is sleeved with the washer.
4. The ball valve structure as claimed in claim 3, wherein a tightening bolt is screwed into the second through hole, one end portion of the tightening bolt, facing the valve chamber, abuts against the washer, the compression spring is sleeved on the end portion of the tightening bolt, one end of the compression spring presses against the end portion, and another end of the compression spring elastically presses against the washer.
5. The ball valve structure as claimed in claim 4, wherein one end of the compression spring presses against an annular raised portion on the end portion, one end face of the end portion, facing the valve chamber, is formed with a connecting hole, and the communicating pipe portion of the first gasket is inserted into the connecting hole.
6. The ball valve structure as claimed in claim 4, wherein the tightening bolt is in the form of a hollow tube, and one end of the compression spring presses against a shoulder on an inner edge of the end portion.
7. The ball valve structure as claimed in claim 6, wherein one side of the washer, facing the end portion, is provided with a pillar portion on which the compression spring is sleeved, the pillar portion has a coupling hole, and the communicating pipe portion of the first gasket is inserted into the coupling hole.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0015] Embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings.
[0016] Referring to
[0017] The valve ball 21 is accommodated in the valve chamber 12. The valve ball 21 defines a flow hole 22 therein. One side of the valve ball 21 is recessed to form an engaging portion 23 facing the first through hole 13. A first gasket 24A and a second gasket 24B are in close contact with two opposite side surfaces of the valve ball 21, so that the valve ball 21 can rotate around a fixed point in the valve chamber 12. Each gasket 24A, 24B is a hollow ring and has an abutting face 241 facing the valve ball 21 and corresponding to the curvature of the surface of the valve ball 21. The other end face of each gasket 24A, 24B, facing away from the abutting face 241, is provided with a communicating pipe portion 242 with a slightly smaller outer diameter. The communicating pipe portion 242 of the second gasket 24B located on one side (that is, the left side in
[0018] The valve stem 31 has an engaging end 32 and a coupling end 33. The engaging end 32 of the valve stem 31 is inserted through the first through hole 13 of the valve body 11 and engaged with the engaging portion 23 of the valve ball 21. The coupling end 33 of the valve stem 31 extends out of the valve body 11 and is connected with a control member 34 in the form of a rotary knob. The valve ball 21 can be rotated synchronously by turning the control member 34, enabling the flow hole 22 of the valve ball 21 to be aligned with or not to be aligned with the inner flow passage 16.
[0019] The present invention uses a single compression spring 27 to push against the first gasket 24A. When there is a gap between each gasket 24A, 24B and the valve ball 21 due to wear, the elastic force of the compression spring 27 automatically acts on the washer 25, so that each gasket 24A, 24B is still in close contact with the surface of the valve ball 21 to compensate the gap and maintain its tightness, thereby effectively prolonging its service life. Furthermore, the second gasket 24B is confined to be on the outer peripheral wall 161 of the inner flow passage 16 and is in a stationary state. When the valve ball 21 is rotated and switched, excessive deflection and shaking caused by uneven forces on both sides of the valve ball 21 can be effectively avoided, so as to prevent leakage.
[0020] On the other hand, in the present invention, the compression spring 27 is helical and has more than two loops to provide sufficient thrust. The compression spring 27 may be replaced with one having a different number of loops or a different diameter according to actual needs. When the tightening bolt 26 is assembled, there is no need for frequent adjustments. With the compression spring 27, the tightness of the switch can be effectively adjusted, so that the control member 34 connected to the valve stem 31 can be rotated more smoothly. In addition, in the present invention, since each gasket 24A, 24B is integrally formed with the communicating pipe portion 242 to be inserted into the inner flow passage 16, the washer 25 and the connecting hole 2611 to provide a limit function, so that the assembly can be easier. Besides, it can also ensure that each gasket 24A, 24B will not deflect and shake when in use. There is no need to frequently adjust the tightening bolt 26, so that the assembly of the present invention is simple and fast, so as to improve the assembly efficiency.
[0021]