CONE VALVE
20180283568 ยท 2018-10-04
Assignee
Inventors
Cpc classification
F04B43/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C22B23/0415
CHEMISTRY; METALLURGY
F16K15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/1087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16K15/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/1025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A cone valve, which significantly reduces a risk of damaging a valve seat, even if it is used as a check valve when feeding slurry containing highly abrasive coarse particles such as slurry of nickel oxide ore. The cone valve of the present invention is a cone valve used as a check valve when feeding slurry, comprising: a valve seat; a valve body for performing opening and closing operation by reciprocally moving in predetermined directions with respect to the valve seat; and a coil spring incorporated to make the valve body contact the valve seat, wherein an annular abutting surface is provided in the valve seat by a contact with an end of the valve body, and the valve seat is configured to have a thickened part in which a thickness in normal direction of the abutting surface is increased inward from the abutting surface.
Claims
1. A cone valve used as a check valve when feeding slurry, comprising: a valve seat; a valve body for performing opening and closing operation by reciprocally moving in predetermined directions with respect to the valve seat; and a coil spring incorporated to make the valve body contact the valve seat, wherein an annular abutting surface is provided in the valve seat by a contact with an end of the valve body, and the valve seat is configured to have a thickened part in which a thickness in normal direction of the abutting surface is increased inward from the abutting surface.
2. The cone valve according to claim 1, wherein the end of the valve body is formed to be a side surface, which is bent to be separated from the abutting surface at outermost periphery of the abutting surface, and a bending direction of the side surface is in reciprocal movement direction of the valve body, or in inner direction of the abutting surface from the reciprocal movement direction.
3. The cone valve according to claim 1, wherein the end of the valve body is formed in disc shape and its maximum diameter is 226 to 236 mm.
4. The cone valve according to claim 1, wherein entire length of the coil spring is at least shorter than stroke length of the valve body, when the entire length is equal to or less than free length.
5. The cone valve according to claim 1, wherein the slurry is slurry of nickel oxide ore.
6. The cone valve according to claim 2, wherein the slurry is slurry of nickel oxide ore.
7. The cone valve according to claim 3, wherein the slurry is slurry of nickel oxide ore.
8. The cone valve according to claim 4, wherein the slurry is slurry of nickel oxide ore.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF THE INVENTION
[0033] Hereinafter, it is explained in detail about preferred embodiments of the present invention. In addition, the embodiments explained in the below are not unjustly limiting the content of the present invention described in claims, and not all of the configurations explained in the embodiments are necessary as the means for solving the problem of the present invention.
First Embodiment
[0034] At first, explaining about a use mode of a cone valve relating to one embodiment of the present invention by using drawings.
[0035] A cone valve 1 relating to one embodiment of the present invention is a cone valve used as a check valve when feeding slurry containing high abrasive coarse particles (maximum particle size is 1 to 2 mm), for example when feeding ore slurry obtained by pre-treatment of nickel oxide ore, and for example, it will be installed in a feeding device 100 as illustrated in
[0036] As illustrated in
[0037] And, the feeding device 100 is configured such that when diaphragm part of the diaphragm type pump 103 moves to right (to one direction) and sucks in, the upstream side cone valve 1a will be in the open state, and the downstream side cone valve 1b will be in the closed state, and slurry will be supplied from the upstream side slurry tank (pressure is approximately 1.5 MPaG) 101 to the diaphragm type pump 103, as illustrated by solid line arrow A in
[0038] On the other hand, the feeding device 100 is configured such that when diaphragm part of the diaphragm type pump 103 moves to left (to other direction) and discharges, the upstream side cone valve 1a will be in the closed state, and the downstream side cone valve 1b will be in the open state, and slurry will be supplied from the diaphragm type pump 103 to the downstream side slurry tank (pressure is 4.0 MPaG or more) 102, as illustrated by dotted line arrow B in
[0039] Thus, it is configured that, when feeding the slurry containing highly abrasive coarse particles, the cone valve 1 is repeatedly switched to open state and closed state, along with the repeated movement of the diaphragm part of the diaphragm type pump 103 in left and right directions (one or other direction) under the condition of high temperature and high pressure (1.5 MPaG to 4.0 MPaG).
[0040] Next, explaining about a configuration of a cone valve relating to one embodiment of the present invention by using drawings.
[0041] As illustrated in
[0042] As illustrated in
[0043] As illustrated in
[0044] In the embodiment, as illustrated in
[0045] When the valve body 11 repeats opening and closing operation, the valve body 11 and the valve seat 13 will be worn, and abutting surface itself will move to inner peripheral side. Therefore, in the embodiment, it is configured to comprise a thickened part at inner side from the abutting surface when it is new, by anticipating such movements of the abutting surface itself toward inner peripheral side. In this way, it will be durable to impact also in the future. In addition, thickness of the thickened part of such valve seat 13 is for example 20 to 40 mm.
[0046] In addition, when the valve body 11 repeats opening and closing operation, abutting surfaces of the valve body 11 and the valve seat 13 will be worn, and width of the abutting surfaces will be enlarged. It is difficult to improve strength at outer peripheral side of the valve body 11, so it is better to make the abutting surfaces tend not to be extended to the outer peripheral side. Concretely, a surface of the valve body 11 is bent from outermost periphery of the abutting surface to out of the abutting surface (inward from outermost periphery of the abutting surface), but this bending direction may be in reciprocal movement direction of the valve body 11, or in inner peripheral side of the abutting surface from the reciprocal movement direction, in other words, it may be in inner direction of the abutting surface from the reciprocal movement direction of the valve body 11. In this way, it is possible to prevent enlargement of outer diameter of the abutting surface, as a diameter of the valve body 11 is not enlarged near the abutting surface.
[0047] Also, as illustrated in
[0048] In addition, the sliding and supporting part 18 may slidably support the valve part 10 via a sliding member 20 formed by a material excellent in sliding property and low friction property, or the sliding and supporting part 18 may slidably support the valve part 10 directly. Further, a coil spring 14 is arranged at outer peripheral surface of the sliding and supporting part 18 at the other end side from the connections 19.
[0049] Also, as illustrated in
[0050] As illustrated in
[0051] Also, in the embodiment, as illustrated in
[0052] When the valve body 11 is in proximity of the valve seat 13, or when it is in the closed state in which the valve body 11 is abutted to the valve seat 13, as illustrated in
[0053] In such cone valve 1, it will turn to the closed state from the open state, when the entire length L1 of the coil spring 14 is equal to the free length, in other words, when elastic force from the coil spring 14 is 0, so it is possible to minimize the impact when the valve body 11 is abutted to the valve seat 13.
[0054] Also, as illustrated in
[0055] The cone valve 1 having the above configuration flows the fluid from the other end area 15a at the other end side of the main body 12 toward the end area 15b at the end side of the main body 12, by separating the valve body 11 from the valve seat 13 by pushing up the valve body 11 to the end side of the main body 12 against the energizing force of the coil spring 14, when the fluid pressurized more than the prescribed value is fed from the other end side to the end side of the main body 12.
[0056] On the other hand, when the pressure at the end side of the main body 12 becomes or is higher than the pressure at the other end side of the main body 12, the cone valve 1 pushes down the valve body 11 to the other end side of the main body 12 with the help of the coil spring 14 to contact the valve body 11 to the valve seat 13. And, the cone valve 1 shuts off the end area 15b at the end side of the main body 12 and the other end area 15a at the other end side of the main body 12 by putting a lid on the insertion part 15 by the valve body 11, and prevents the fluid from flowing backward from the end area 15b of the main body 12 to the other end area 15a of the main body 12.
[0057] Here, the inventors presumed as below about the cause of occurring malfunction of the cone valve, i.e. the cause of occurring communication between the upstream side and the downstream side of the cone valve. When the cone valve changes from the open state to the closed state, the highly abrasive particles inevitably contained in slurry will be interposed in a gap between the valve body and the valve seat, and the surface of either one of the valve body and the valve seat will be damaged. It depends on a size of a crack by the damage or a position of the crack, but the crack grows gradually by the repeated opening and closing of the cone valve (when stroke is 60%, approximately 1908 times/Hr), and at certain point, the crack becomes a flow channel allowing the slurry to flow backward, and through this crack, the communication between the upstream side and the downstream side of the cone valve begins. Then, the slurry always flows through the gap between the valve body and the valve seat and the abrasion progresses, and finally, large communicating part will be formed, so the feeding efficiency of the slurry decreases extremely, and it will be in the state that the part replacement is necessary.
[0058] Further, the inventors presumed that, as a crack occurred at first is bigger, the term that the part replacement will be necessary (hereinafter, may be referred to as lifespan) becomes shorter, and found that strength of the spring is a cause of enlarging the crack. In other words, the degree of crack will be deeper and worse, if the coil spring is too strong, when highly abrasive particles are interposed at the time of closed state of the cone valve.
[0059] Until now, the strength of the coil spring has been set to relatively strong level aiming minimization of backflow, but the inventors have found that it is possible to inhibit backflow, if the valve body 11 is inertially moved until a point in which the cone valve is in the closed state. Therefore, the inventors have reached a conclusion that the function of the coil spring in this cone valve is sufficient if it can prevent fixation by hooking.
[0060] As mentioned above, even if the coarse particles are interposed when closing the cone valve 1, the cone valve 1 is capable of alleviating an impact thereof by configuring the entire length L1 of the coil spring 14 to be shorter than the stroke length L2 of the valve body 11, and it is possible to alleviate the degree of crack by preventing the damage of the valve body 11 or the valve seat 13, which will be a trigger for uneven abrasion, so it is possible to maintain the lifespan two or three times longer than the conventional lifespan.
[0061] In addition, the stroke length means a length of space in which the coil spring 14 is incorporated in
[0062] In contrast, in the present invention, the free length of the coil spring 14 is being shorter (for example 155 mm) than the stroke length. Therefore, it will be in the state that the repulsive force will not be worked, so it is possible to alleviate the impact as much as the repulsive force, even if the coarse particles are interposed when closing the cone valve.
[0063] In addition, the inventors have found that a crack occurred at outer edge of the valve seat caused by accumulation of residual stress due to impact to the valve seat by repeated reciprocal movement of the valve body is one of causes for making communication between the upstream side and the downstream side of the cone valve by malfunction of the cone valve, i.e. by abrasion of the valve seat or the valve body.
[0064] In other words, in conventional cone valve 51 as illustrated in
[0065] When using such cone valve in which the valve seat 13 is extended toward upper side, by highly abrasive coarse particles (maximum particle size is 1 to 2 mm) being stuck repeatedly between a contact surface 61a of the valve body 61 and an abutting inclined surface 13a of the valve seat 13, as illustrated in
[0066] And, when the gap at the center side of the abutting inclined surface 13a of the valve seat 13 is enlarged, the abutting inclined surface 13a will come to contact the valve body 61, and a crack occurs from upper end of thin outer edge of the abutting inclined surface 13a, as illustrated in
[0067] In addition, in the embodiment, a risk for damaging the valve seat 13 is reduced by configuring a side surface, which is the end 11a of the valve body 11, to be bent and separated from the abutting inclined surface 13a of the valve seat 13, such that the side surface, which is the end 11a of the valve body 11, will not contact the abutting inclined surface 13a of the valve seat 13. Especially, a bending direction is preferably in a reciprocal movement direction of the valve body 11, or in a center side (inner side) from the reciprocal movement direction. In this way, it is possible to reduce a risk for damaging the valve seat 13, even with respect to abrasion of the valve seat 13 and the valve body 11 by the opening and closing operation (reciprocal movement) of the valve body 11.
[0068] Further, by shrinking a diameter more than conventional outer diameter (246 mm) such that the outer diameter, which is a maximum diameter of the end 11a of the valve body 11 in disc shape, will be 226 to 236 mm, it is possible to easily secure a thickness at a contact point with the abutting inclined surface 13a of the valve seat 13, so it is possible to prevent occurrence of crack from upper end side of the valve seat 13 extended toward upper side.
[0069] Further, the cone valve 1 can be applied suitably if the slurry is slurry containing highly abrasive coarse particles (maximum particle size is 1 to 2 mm). Especially, it can be applied particularly effectively, if the slurry is ore slurry obtained by treating nickel oxide ore, so it is having an extremely high industrial value.
Second Embodiment
[0070] In the cone valve 1 relating to one embodiment of the present invention, the valve body 11 is arranged at the end side with respect to the valve seat 13, the coil spring 14 is arranged at the other end side, and the valve body 11 and the coil spring 14 are arranged in different direction to each other with respect to the valve seat 13, but in a cone valve 31 of other embodiment of the present invention, a valve body 41 and a coil spring 44 are arranged in same direction with respect to a valve seat 43.
[0071] Concretely, as illustrated in
[0072] As illustrated in
[0073] As illustrated in
[0074] In the embodiment, as illustrated in
[0075] When the valve body 41 repeats opening and closing operation, the valve body 41 and the valve seat 43 are worn, and abutting surface itself will move to inner peripheral side. Therefore, in the embodiment, it is configured to comprise a thickened part at inner side from the abutting surface when it is new, by anticipating such movements of the abutting surface itself toward inner peripheral side. In this way, it will be durable to impact also in the future. In addition, thickness of the thickened part of such valve seat 43 is for example 20 to 40 mm.
[0076] In addition, when the valve body 41 repeats opening and closing operation, abutting surfaces of the valve body 41 and the valve seat 43 will be worn, and width of the abutting surfaces will be enlarged. It is difficult to improve strength at outer peripheral side, so it is better to make the abutting surfaces tend not to be extended to the outer peripheral side. Concretely, a surface of the valve body 41 is bent from outermost periphery of the abutting surface to out of the abutting surface (inward from outermost periphery of the abutting surface), but this bending direction may be in reciprocal movement direction of the valve body 41, or in inner peripheral side of the abutting surface from the reciprocal movement direction, in other words, it may be in inner direction of the abutting surface from the reciprocal movement direction of the valve body 41. In this way, it is possible to prevent enlargement of outer diameter of the abutting surface, as a diameter of the valve body 41 is not enlarged near the abutting surface.
[0077] Further, as illustrated in
[0078] Also, as illustrated in
[0079] As illustrated in
[0080] Also, as illustrated in
[0081] Concretely, as illustrated in
[0082] As illustrated in
[0083] Such cone valve 31 turns to the closed state from the open state, when the entire length L31 of the coil spring 44 is equal to the free length, i.e. when the elastic force from the coil spring 44 is 0, so it is possible to minimize the impact when the valve body 41 is abutted to the valve seat 43.
[0084] Also, as illustrated in
[0085] As well as the cone valve 1 relating to one embodiment of the present invention, the cone valve 31 relating to other embodiment of the present invention flows the fluid from the other end area 45a at the other end side of the main body 42 toward the end area 45b at the end side of the main body 42, by separating the valve body 41 from the valve seat 43 by pushing up the valve body 41 to the end side of the main body 42 against the energizing force of the coil spring 44, when the fluid pressurized more than the prescribed value is fed from the other end side to the end side of the main body 42.
[0086] On the other hand, as well as the cone valve 1 relating to one embodiment of the present invention, in the cone valve 31, the valve body 41 is abutted to the valve seat 43 by pushing down the valve body 41 to the other end side of the main body 42 with the help of the coil spring 44, when the pressure at the end side of the main body 42 becomes or is higher than the pressure at the other end side of the main body 42. And, the cone valve 31 prevents the fluid from flowing backward from the end area 45b of the main body 42 to the other end area 45a of the main body 42, by shutting off the end area 45b at the end side of the main body 42 and the other end area 45a at the other end side of the main body 42 by putting a lid on the insertion part 45 by the valve body 41.
[0087] As mentioned above, as well as the cone valve 1 relating to one embodiment of the present invention, the cone valve 31 relating to other embodiment of the present invention is capable of alleviating the impact, even if the coarse particles are interposed when closing the cone valve 31, by configuring the entire length L31 of the coil spring 44 to be shorter than the stroke length L32 of the valve body 41. Therefore, it is possible to alleviate the degree of crack by preventing the damage of the valve body 41 or the valve seat 43, which will be a trigger for uneven abrasion, so it is possible to maintain the lifespan two or three times longer than the conventional lifespan.
[0088] In addition, as well as the cone valve 1 relating to one embodiment of the present invention, the cone valve 31 relating to other embodiment of the present invention is configured such that a part of the valve seat 43 abutting the end 41a of the valve body 41 will not be moved so much, even if the gap is enlarged, by configuring the valve seat 43 to be thickened toward a center side (inner side) from the part abutting the end 41a of the valve body 41.
[0089] Further, in the embodiment, a side surface, which is the end 41a of the valve body 41, is configured to be bent and separated from the abutting inclined surface 43a of the valve seat 43. Therefore, the side surface, which is the end 41a of the valve body 41, will not contact the abutting inclined surface 43a of the valve seat 43, so it is possible to reduce a risk of damaging the valve seat 43. Especially, a bending direction is preferably in a reciprocal movement direction of the valve body 41, or in a center side (inner side) from the reciprocal movement direction. In this way, it is possible to reduce a risk for damaging the valve seat 43, even with respect to abrasion of the valve seat 43 and the valve body 41 by the opening and closing operation (reciprocal movement) of the valve body 41.
[0090] In addition, by shrinking a diameter more than conventional outer diameter such that the outer diameter, which is a maximum diameter of the end 41a of the valve body 41 in disc shape, will be 226 to 236 mm, it is possible to easily secure a thickness at a contact point with the abutting inclined surface 43a of the valve seat 43, so it is possible to prevent occurrence of crack from upper end side of the valve seat 43 extended toward upper side.
[0091] Further, as well as the cone valve 1 relating to one embodiment of the present invention, the cone valve 31 relating to other embodiment of the present invention can be applied suitably if the slurry is slurry containing highly abrasive coarse particles (maximum particle size is 1 to 2 mm). Especially, it can be applied particularly effectively, if the slurry is ore slurry obtained by treating nickel oxide ore, so it is having an extremely high industrial value.
EXAMPLES
[0092] Hereinafter, explaining in detail about a cone valve relating to one embodiment of the present invention by examples. However, the present invention should not be limited to these examples.
[0093] The cone valve of the following example 1, example 2, reference example 1, reference example 2, and comparative example 1 were respectively installed in a feeding device as illustrated in
[0094] Common conditions were as follows: [0095] Slurry Solid content: Nickel oxide ore [0096] (Slurry with maximum particle size 1 to 2 mm) [0097] Solid content concentration: 30 mass % [0098] Feeding amount of slurry Approximately 240 m.sup.3/Hr [0099] (at 60% stroke operation, operating two devices) [0100] Stroke length of cone valve: 161 mm [0101] Size of coil spring used for examples, reference examples and comparative example. [0102] (Examples, Reference examples): Free length 155 mm [0103] (Comparative example): Free length 188 mm
Reference Example 1
[0104] In reference example 1, a cone valve, in which shapes of contact surfaces of a valve body (outer diameter 246 mm) of a valve part and a valve seat of a main body were respectively formed to be rounded and curved, was installed in the feeding device as illustrated in
Reference Example 2
[0105] In reference example 2, a cone valve as illustrated in
Example 1
[0106] In example 1, a cone valve as illustrated in
Example 2
[0107] In example 2, a cone valve having a similar configuration as the example 1 except that an outer diameter of a valve body was 226 mm, was installed in the feeding device as illustrated in
Comparative Example 1
[0108] In comparative example 1, a cone valve having a similar configuration as the reference example 1 except that a size of a coil spring was different, was installed in the feeding device as illustrated in
[0109] As mentioned above, according to the reference example 1, it is possible to maintain the lifespan more than three times longer than the lifespan of the conventional cone valve (comparative example 1). Further, according to the reference example 2, it is possible to maintain the lifespan almost five times longer than the conventional cone valve (comparative example 1), so it can be understood that it is possible to use it for more than a month (approximately 720 hours). Further, according to the examples 1 and 2, it is possible to maintain the lifespan more than five times longer than the conventional cone valve (comparative example 1), and also, it can be understood that there were fewer deep cracks than reference examples 1 and 2. In other words, it can be understood that it is possible to prolong the lifespan of the cone valve further, by configuring the part of the valve seat abutting to the end of the valve body to be thickened, and by configuring the side surface, which is the end of the valve body, to be separated from the abutting inclined surface of the valve seat.
[0110] In addition, it was explained in detail about each embodiment and each example of the present invention as the above, but it is easy for those who skilled in the art to understand that various modifications are possible without substantially departing from new matters and effects of the present invention. Therefore, all of such modified examples are included within the scope of the present invention.
[0111] For example, a term used at least once in the description or drawings together with a different term that is broader or the same in meaning can also be replaced by the different term in any place in the description or drawings. Further, the configurations and operations of the cone valve are not limited to those described in each embodiment and each example of the present invention but may be carried out in various modifications.
GLOSSARY OF DRAWING REFERENCES
[0112] 1, 31 Cone valve
[0113] 1a Upstream side cone valve
[0114] 1b Downstream side cone valve
[0115] 10, 40 Valve part
[0116] 10a Bar member
[0117] 11, 41 Valve body
[0118] 11a, 41a End (Side surface)
[0119] 12, 42 Main body
[0120] 12a, 42a Intermediate part
[0121] 13, 43 Valve seat
[0122] 13a, 43a Abutting inclined surface
[0123] 14, 44 Coil spring
[0124] 15, 45 Insertion part
[0125] 15a, 45a Other end area
[0126] 15b, 45b End area
[0127] 16 Sliding and supporting member
[0128] 16a Other end surface
[0129] 17 Fitting part
[0130] 18 Sliding and supporting part
[0131] 19 Connections
[0132] 19a Other end surface
[0133] 20 Sliding member
[0134] 21 Abutting part
[0135] 22 Wedge member (Fixing member)
[0136] 23 Flange
[0137] 23a End surface
[0138] 40a First bar member
[0139] 40b Second bar member
[0140] 42b Bottom surface
[0141] 42c Top surface
[0142] 45c Bottom surface opening
[0143] 45d Side surface opening
[0144] 46 First guide part
[0145] 47 Second guide part
[0146] 47a Other end surface
[0147] 100 Feeding device
[0148] 101 Upstream side slurry tank
[0149] 102 Downstream side slurry tank
[0150] 103 Diaphragm type pump
[0151] 104 First pipe
[0152] 105 Second pipe
[0153] 106 Connection