Valve apparatus and controlling method therefor
10746308 ยท 2020-08-18
Assignee
Inventors
Cpc classification
F16K5/0605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K5/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K5/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
There is provided a valve apparatus provided in a pipe. The valve apparatus includes a bypass pipe connected in parallel to the pipe, a first valve configured to adjust a flow rate of a fluid flowing an inlet part of the pipe to an outlet part of the pipe, and a second valve configured to adjust a flow rate of the fluid flowing the bypass pipe to the outlet part.
Claims
1. A valve apparatus provided in a pipe, the valve apparatus comprising: a bypass pipe connected in parallel to the pipe; a first valve configured to adjust a flow rate of a fluid flowing in an inlet part of the pipe to an outlet part of the pipe; a second valve configured to adjust a flow rate of the fluid flowing in the bypass pipe to the outlet part; and a valve housing disposed between the inlet part and the outlet part to communicate with each of the inlet part and the outlet part, wherein the bypass pipe has one end communicating with the valve housing and another end communicating with the inlet part, and the first valve includes: a ball valve body rotatably provided in the valve housing to block the fluid flowing from the inlet part to the outlet part; and a first passage passing through the ball valve body in a first direction and allowing the inlet part and the outlet part to communicate with each other when the ball valve body rotates at a first angle, wherein the second valve includes: a second passage passing through the ball valve body in a second direction and allowing the bypass pipe and the first passage to communicate with each other; a third passage passing through the ball valve body in a third direction and allowing the first passage and the outlet part to communicate with each other; and a pintle valve body provided to be movable forward and backward in a longitudinal direction thereof in the bypass pipe and thereby to adjust a degree of opening of the second passage.
2. The valve apparatus of claim 1, wherein the first, second, and third directions are perpendicular to each other.
3. The valve apparatus of claim 1, wherein the first passage has a size greater than a size of each of the second and third passage.
4. The valve apparatus of claim 1, wherein the second passage has a diameter that gradually decreases toward an inside of the ball valve body, and an end of the pintle valve body corresponding to the second passage has a shape corresponding to a shape of the second passage.
5. The valve apparatus of claim 1, wherein the second passage is provided at a rotating center of the ball valve body.
6. The valve apparatus of claim 1, wherein the first valve further includes a first driving part configured to allow the ball valve body to rotate.
7. The valve apparatus of claim 6, wherein the first driving part includes: a first pinion fixed to a rotating center of the ball valve body; a first rack engaged with the first pinion to allow the first pinion to rotate; and a first driving source configured to allow the first rack to reciprocate.
8. The valve apparatus of claim 7, wherein the first driving source is a pneumatic cylinder, and the first rack is provided on a piston of the pneumatic cylinder.
9. The valve apparatus of claim 1, wherein the second valve further includes a second driving part configured to allow the pintle valve body to move forward and backward.
10. The valve apparatus of claim 9, wherein the second driving part includes: a second rack defining one surface of the pintle valve body; a second pinion engaged with the second rack to allow the second rack to reciprocate forward and backward; and a second driving motor or pneumatic cylinder configured to allow the second pinion to rotate.
11. A method for controlling the valve apparatus of claim 1, the method comprising: allowing a degree of opening of the second valve to gradually increase so that a flow rate of the fluid flowing from the bypass pipe to the outlet part increases in an initial state in which the first and second valves are closed; and allowing a degree of opening of the first valve to gradually increase so that a flow rate of the fluid flowing from the inlet part to the outlet part increases while maintaining a fully opened state of the second valve when the second valve is fully opened.
12. The method of claim 11, further comprising closing the second valve while maintaining a fully opened state of the first valve when the first valve is fully opened in the allowing of the degree of opening of the first valve to gradually increase.
13. A method for controlling the valve apparatus of claim 1, the method comprising: allowing the pintle valve body to gradually move backward in a direction in which the second passage is opened so that a flow rate of the fluid flowing through the bypass pipe to the outlet part increases in an initial state in which the first passage is closed by the ball valve body, and the second passage is closed by the pintle valve body; and allowing the ball valve body to rotate and thereby to open the first passage so a flow rate of the fluid flowing from the inlet part to the outlet part increases while maintaining a fully opened state of the second passage when the second passage is fully opened.
14. The method of claim 13, further comprising allowing the pintle valve body to move forward so that the second passage is closed while maintaining a fully opened state of the first passage when the first passage is fully opened in the opening of the first passage.
Description
DESCRIPTION OF DRAWINGS
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BEST MODE
(10) Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings in such a manner that the technical idea of the present invention may easily be carried out by a person with ordinary skill in the art to which the invention pertains. The present invention may, however, be embodied in different forms and should not be construed as limited to the embodiments set forth herein.
(11) As illustrated in
(12) The bypass pipe 110 is a constituent for bypassing a fluid of the pipe 10 and connected in parallel to the pipe 10 as illustrated in
(13) The valve housing 120 is a constituent in which a ball valve body 131 that will be described later is rotatably disposed. The valve housing 120 may be disposed between the inflow part 11 of the pipe 10 and an outflow part 12 of the pipe 10. Particularly, the valve housing 120 may have one end communicating with the inflow part 11 and the other end communicating with the outflow part 12.
(14) As illustrated in
(15) As illustrated in
(16) Particularly, the first, second, and third directions in which the first, second, and third passages 132, 141, and 142 pass through the ball valve body 131 may be perpendicular to each other as illustrated in
(17) Furthermore, as illustrated in
(18) Also, as illustrated in
(19) Also, as illustrated in
(20) Furthermore, as illustrated in
(21) Furthermore, as illustrated in
(22) Hereinafter, a method for controlling the valve apparatus according to another embodiment of the present invention will be described with reference to
(23) According to the method for controlling the valve apparatus according to another embodiment of the present invention, in an initial state in which first and second valves 130 and 140 are closed as illustrated in
(24) Thereafter, when the second valve 140 is fully opened as illustrated in
(25) Thus, about 20% of the total flow rate may be generated through the bypass pipe 110 and the second valve 140. Therefore, the flow rate and the pressure may be precisely controlled within about 20% of the total flow rate. Also, before the ball valve body 131 rotates, a difference in pressure between the inflow part 11 and the outflow part 12 of the pipe 10 may be previously reduced through the bypass pipe 110 and the second valve 140. As a result, frictional force between the ball valve body 131 and the valve housing 120 may be significantly reduced, and thus, the ball valve body 131 may rotate with small driving torque to reduce a size of a first driving part 133.
(26) Furthermore, in the method for controlling the valve apparatus according to another embodiment of the present invention, when the first valve 130 is fully opened as illustrated in
(27) Thus, the fluid may flow through only the first passage 132 to realize a stable flow.
(28) Hereinafter, characteristics of the first and second valves 130 and 140 will be additionally described with reference to
(29) The precise pressure/flow rate control may be performed by using an equivalent % (EQ %) curve that is a flow coefficient curve of the second valve 140 including the pintle valve body 143 in an initial period of the flow coefficient curve. Here, a flow rate through the second valve 140 that is the pintle valve may be about 20% with respect to the total flow rate.
(30) Also, the flow rate exceeding about 20% with respect to the total flow rate may no longer be controlled by the second valve 140 including the pintle valve body 143. Thus, the flow may be generated to form a flow coefficient curve having flow characteristics of a quick-open valve of the first valve 130 including the ball valve body 131. Here, the flow rate through the first valve 130 may be about 80% that is a remaining flow rate.
(31) As described above, the valve apparatus 100 and the method for controlling the same according to the embodiments of the present invention may have following effects.
(32) According to an embodiment of the present invention, the technical configuration including the bypass pipe 110, the first valve 130, and the second valve 140 may be provided to reduce a difference in pressure between the inflow part 11 and the outflow part 12 of the pipe 10 through the bypass pipe 110 and the second valve 140, thereby reducing the driving torque required for the operation of the first valve 130 and precisely controlling the flow rate through the two valves such as the first and second valves 130 and 140. Particularly, when the first valve 130 is the ball valve, and the second valve 140 is the pintle valve, these effects may more increase.