WATER SOFTENER VALVE AND WATER TREATMENT APPARATUS
20190072209 ยท 2019-03-07
Inventors
Cpc classification
C02F1/5245
CHEMISTRY; METALLURGY
F16K31/52483
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/0712
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01J49/85
PERFORMING OPERATIONS; TRANSPORTING
F16K31/53
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/52475
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K31/524
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C02F1/52
CHEMISTRY; METALLURGY
F16K31/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed are a water softener valve and a water treatment apparatus. The water softener valve includes: a valve body, a multi-way valve, a saline solution suction and water injection valve and a driving mechanism, the saline solution suction and water injection valve including a first valve rod, the driving mechanism including a mounting seat and a cam, the end of the first valve rod extending out of the valve body being transmission cooperated with the cam, wherein, the mounting seat is defined with a sliding connection structure, the outer end of the first valve rod is sliding fit with the sliding connection structure along the longitudinal direction, and the outer end of the first valve rod is position-limiting cooperated with the sliding connection structure along the lateral direction; the longitudinal direction coincides with the length direction of the first valve rod.
Claims
1. A water softener valve, comprising: a valve body, a multi-way valve, a saline solution suction and water injection valve and a driving mechanism, the saline solution suction and water injection valve comprising a first valve rod, the driving mechanism comprising a mounting seat and a cam, the end of the first valve rod extending out of the valve body being transmission cooperated with the cam, wherein, the mounting seat is defined with a sliding connection structure, the outer end of the first valve rod is sliding fit with the sliding connection structure along longitudinal direction, and the outer end of the first valve rod is position-limiting cooperated with the sliding connection structure along lateral direction; the longitudinal direction coincides with the length direction of the first valve rod, the lateral direction is perpendicular to the longitudinal direction and the axial direction of the cam.
2. The water softener valve of claim 1, wherein, the sliding connection structure is defined with two guiding surfaces opposite to each other along the lateral direction, the outer end of the first valve rod extends into and locates between the two guiding surfaces and is sliding fit with the two guiding surfaces along the longitudinal direction.
3. The water softener valve of claim 2, wherein, the outer end of the first valve rod is defined with a sliding cooperation portion sliding fit with the sliding connection structure, the sliding cooperation portion is defined with two sliding connection surfaces that protrude from the outer peripheral surface of the first valve rod and slide fit with the two guiding surfaces respectively.
4. The water softener valve of claim 1, wherein, the valve body is defined with a water-passing passage and a water-passing port communicating with one end of the water-passing passage, the valve body is defined with a plug interface extending through the side wall of the water-passing passage and adjacent to the water-passing port; the water softener valve further comprises a water-passing connector and a fixing member, the water-passing connector is plugged in the water-passing port, two ends of the water-passing connector are cut-through and communicate with the water-passing passage; the fixing member is plugged in the plug interface, and caught at the portion of the water-passing connector located in the water-passing passage, to at least limit the water-passing connector along the axial direction of the water-passing connector.
5. The water softener valve of claim 4, wherein, the fixing member comprises a pin, the pin extends into the water-passing passage through the plug interface, and is clamped on the outer peripheral wall of the water-passing connector.
6. The water softener valve of claim 5, wherein, the fixing member further comprises a connecting plate defined on the outer side of the plug interface, the quantity of the pin is two, the two pins are connected to one side of the connecting plate and spaced apart with each other, the two pins are clamped at two opposite positions on the outer peripheral wall of the water-passing connector.
7. The water softener valve of claim 1, wherein, the water softener valve further comprises a piston assembly, the piston assembly comprises a piston body, a piston rod, a connecting member, and a fastening member, the piston body is in an integrated structure, the piston assembly defines a water-passing passage extending along the telescopic direction of the piston rod and having two cut-through ends, the connecting member is defined on the piston rod, the connecting member is position-limiting cooperated with the piston rod along the telescopic direction, the fastening member cooperates with the piston body to limit the connecting member along the telescopic direction.
8. The water softener valve of claim 7, wherein, the connecting member and the piston rod are detachably connected, and the connecting member is defined in the inner end of the piston rod.
9. The water softener valve of claim 8, wherein, the outer peripheral surface of the piston rod is defined with an via hole, the connecting member has a bar-like shape and passes through the via hole.
10. The water softener valve of claim 1, wherein, the water softener valve further comprises a piston rod and a piston rod sealing structure, the valve body comprises a main body and an end cap, the main body is defined with a valve cavity having one end open, the end cap covers the open of the valve cavity, the end cap is defined with a mounting hole for the piston rod to come in or out of the valve cavity; the piston rod sealing structure comprises a sealing ring, being annularly defined at the edge of the mounting hole and configured to sealingly fit with the piston rod; and a fixing member, being fixedly connected to the end cap, to fix the sealing ring.
11. The water softener valve of claim 10, wherein, the end cap is defined with a mounting groove, the mounting hole is defined in the bottom wall of the mounting groove, the sealing ring is defined in the mounting groove, and the fixing member is fixed in the mounting groove.
12. The water softener valve of claim 11, wherein, the outer peripheral surface of the end cap is defined with a mounting post, the mounting groove is defined on the top of the mounting post.
13. A water treatment apparatus comprising: a water softener valve, the water softener valve comprises a valve body, a multi-way valve, a saline solution suction and water injection valve and a driving mechanism, the saline solution suction and water injection valve comprises a first valve rod, the driving mechanism comprises a mounting seat and a cam, the end of the first valve rod extending out of the valve body is transmission cooperated with the cam, the mounting seat is defined with a sliding connection structure, the outer end of the first valve rod is sliding fit with the sliding connection structure along the longitudinal direction, and the outer end of the first valve rod is position-limiting cooperated with the sliding connection structure in the lateral direction; the longitudinal direction coincides with the length direction of the first valve rod, the lateral direction is perpendicular to the longitudinal direction and the axial direction of the cam.
14. The water treatment apparatus of claim 13, wherein, the driving mechanism comprises a housing and a transmission shaft, the cam comprises a first cam and a second cam, the multi-way valve is transmission connected with the first cam, the saline solution suction and water injection valve is transmission connected with the second cam, the inner cavity of the housing is defined with a first mounting surface; the axes of the first cam, the second cam and the transmission shaft are arranged in parallel with each other, the outer peripheral surfaces of the first cam and the second cam are both defined with gear rack rows, the transmission shaft is defined between the first cam and the second cam, the transmission shaft is defined with a first tooth segment engaged with the first cam, and a second tooth segment engaged with the second cam, the first cam is adjacent to the first mounting surface, the second cam and the first mounting surface defines a mounting space therebetween.
15. The water treatment apparatus of claim 14, wherein, the inner cavity of the housing is defined with a second mounting surface facing the first mounting surface, the outer end of the valve rod of the saline solution suction and water injection valve is defined between the second mounting surface and the second cam.
16. The water treatment apparatus of claim 13, wherein, the water treatment apparatus further comprises an upper water distributor and a connecting assembly, the water softener valve is defined with a mounting head, the connecting assembly comprises a connecting seat, two ends of the connecting seat are cut-through and the connecting seat is plugged in the mounting head, the upper water distributor is plugged in the connecting seat and communicates with the valve cavity of the water softener valve.
17. The water treatment apparatus of claim 16, wherein, the inner wall of the connecting seat is defined with a first clamping protrusion, a limiting surface of the first clamping protrusion faces the water softener valve, the outer wall of the upper water distributor is defined with a first flange extending circumferentially, the first flange overlap joints with the limiting surface of the first clamping protrusion.
18. The water treatment apparatus of claim 16, wherein, the connecting seat comprises a first connecting cylinder and a second connecting cylinder adjacent sequentially along the axial direction of the connecting seat, the first connecting cylinder is plugged in the mounting head, the second connecting cylinder is exposed of the mounting head, the upper water distributor is plugged into the second connecting cylinder; the outer wall of the first connecting cylinder and the inner wall of the second connecting cylinder define an annular water-passing passage therebetween, the connecting seat further comprises a connecting rib connecting the outer wall of the first connecting cylinder with the inner wall of the second connecting cylinder.
19. The water treatment apparatus of claim 13, wherein, the water treatment apparatus further comprises a central tube and a connecting assembly, the water softener valve is defined with a mounting head, the connecting assembly comprises a connecting seat, two ends of the connecting seat are cut-through and the connecting seat is plugged in the mounting head, the central tube is plugged in the connecting seat to communicate with the valve cavity of the water softener valve.
20. The water treatment apparatus of claim 19, wherein, the mounting head comprises a first annular cylinder, the first annular cylinder defines a water-inlet passage; the connecting seat comprises a first connecting cylinder, the first connecting cylinder is plugged in the first annular cylinder, the central tube is plugged in the first connecting cylinder, to communicate with the water-inlet passage.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0075] In order to more clearly illustrate the embodiments of the present disclosure, the drawings used in the embodiments will be briefly introduced below.
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[0113] Embodiments of the present disclosure are further described in detail with reference to the accompanying drawings and the embodiments.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0114] The technical solutions in the embodiments of the present disclosure are clearly and completely described in the following with reference to the accompanying drawings in the embodiments of the present disclosure. It will be appreciated that the described embodiments are merely part of the embodiments of the present disclosure, rather than all the embodiments.
[0115] It should be noted that, if there is a directional indication (such as up, down, left, right, front, back, . . . ) in the embodiment of the present disclosure, the directional indication is merely used to explain, in a certain posture (as shown in the drawing), relative positional relationship, movement and so on between parts. If the certain posture changes, the directional indication changes correspondingly.
[0116] The present disclosure provides a water softener valve.
[0117] In some embodiments of the present disclosure, as shown in
[0118] In some embodiments, the outer end of the first valve rod 31 is the end of the first valve rod 31 extending out of the valve body 10. The outer end of the first valve rod 31 is transmission cooperated with the cam 42. To realize this, for example, an eccentric annular groove is disposed on the cam 42, and a protrusion which is sliding fit with the annular groove is disposed on the first valve rod 31; or, an eccentric protrusion is disposed on the cam 42, and a strip groove which is sliding fit with the protrusion is disposed on the first valve rod 31. The multi-way valve 20 is configured to realize switching different water passages in the valve body 10. The saline solution suction and water injection valve 30 is configured to cooperate with the multi-way valve 20 to open or close water injection during the salt suction process or the water injection process of the water softener valve. Specifically, the end of the first valve rod 31 extending into the valve body 10 connects to a water injection piston. The first valve rod 31 linearly reciprocates to drive the water injection piston to stay at a water injection open position or a water injection closing position.
[0119] Similarly to the cooperation between the cam 42 and the first valve rod 31, the sliding connection structure 411 on the mounting seat 41 may be a groove, and the first valve rod 31 may cooperate with the groove directly, or cooperate with the groove by providing a protrusion; in contrast, if the sliding connection structure 411 is a protrusion, the first rod 31 may be provided with a groove which is cooperated with the protrusion.
[0120] It should be understood that, as the rotational movement of the cam 42 is converted into the linear movement of the first valve rod 31, in addition to the force that pulls the first valve rod 31 out of the valve body 10 or presses the first valve rod 31 into the valve body 10, a force that causes the first valve rod 31 to swing along the lateral direction is also generated. In the existing water softener valve, this swing force is directly transmitted to the sliding pair between the first valve rod 31 and the valve body 10. However, in the present disclosure, this swing force could be counteracted by the cooperation of the sliding connection structure 411 and the first valve rod 31 in the lateral direction, to allow the swing force transmitted to the cooperation portion of the first valve rod 31 and the valve body 10 to be greatly reduced.
[0121] In the water softener valve according to the present disclosure, the mounting seat 41 is provided with the sliding connection structure 411 which is in a slidable fit with the first valve rod 31 along the longitudinal direction and in a position-limiting cooperation with the first valve rod 31 along the lateral direction, to form a double guiding structure. Therefore, as the rotational movement of the cam 42 is converted into the linear movement of the first valve rod 31, the sliding connection structure 411 could restrict the first valve rod 31 from swinging in the lateral direction, and share the compressive stress of the first valve rod 31 acting on the valve body 10 along the lateral direction. On one hand, the risk of wear and looseness of the sliding pair structure between the first valve rod 31 and the valve body 10 is reduced, on the other hand, the movement of the first valve rod 31 is smoother.
[0122] Further, as shown in
[0123] The outer end of the first valve rod 31 extends into and locates between the two guiding surfaces 412 and is sliding fit with the two guiding surfaces 412 along the longitudinal direction respectively. In this embodiment, the two guiding surfaces 412 are provided with a slideway therebetween. The first valve rod 31 may slide fit with the slideway via the outer peripheral surface thereof in a direct way, or may be provided with a sliding cooperation structure to cooperate with the slideway.
[0124] It should be noted that, if the two guiding surfaces cooperated with the first valve rod 31 face away from each other in the lateral direction, that is, if the sliding connection structure 411 is a protrusion, a slideway cooperated with the protrusion needs to be directly or indirectly opened on the first valve rod 31, and the slideway needs to extend a certain length in the longitudinal direction to satisfy the moving distance of the first valve rod 31. If the slideway is narrow, the thickness of the protrusion is correspondingly small and the protrusion is easily to be damaged; if the slideway is wide, the structural strength of the first valve rod 31 would be weakened, or the structure of the first valve rod 31 would be more complicated. Therefore, compared to this, the cooperation between the sliding connection structure 411 and the first valve rod 31 is simpler and more compact, the strength is higher.
[0125] Further, as shown in
[0126] Further, as shown in
[0127] Further, as shown in
[0128] In some embodiments, the sliding groove 414 extends to the side of the first mounting plate 413 adjacent to the valve body 10, and the two guiding surfaces 412 are located on the two opposite inner walls of the sliding groove 414 in the lateral direction. It should be understood that, the extending length of the sliding groove 414 in the longitudinal direction should satisfy the extreme position that the outer end of the first valve rod 31 is farthest from the valve body 10. In some embodiments, the mounting seat 41 further includes a covering plate opposite to the first mounting plate 413. The first mounting plate 413 is configured to, together with the covering plate, define a first mounting cavity (not shown) for mounting the cam 42. The sliding groove 414 is directly opened on the first mounting plate 413, making the sliding connection structure 411 more compact and the production more convenient.
[0129] Further, as shown in
[0130] Further, the transmission surface 313 is flush with the side of the first valve rod 31 facing the cam 42 and adjacent to the cam 42, the sliding connection surface 312 extends away from the cam 42.
[0131] In some embodiments, in ideal state, the transmission surface 313 should be as close as possible to the cam 42 and remain flush with the side of the first valve rod 31 facing the cam 42, to allow the first valve rod 31 to be as close as possible to the cam 42 accordingly, thereby effectively reducing the transmission torque of the first valve rod 31 and the cam 42, to reduce power loss during transmission. When the first valve rod 31 is closer to the cam 42, since the sliding cooperation portion 311 needs to cooperate with the sliding groove 414 which is opened on the first mounting plate 413, if the first mounting plate 413 is also closer to the cam 42, the fixing structure on the first mounting plate 413 would hinder the rotation of the cam 42, therefore, the first mounting plate 413 should keep some distance from the cam 42. The sliding connection surface 312 needs to keep a sufficient contact area with the guiding surface 412, so the sliding connection surface 312 should face the first mounting plate 413. Specifically, the sliding connection surface 312 extends in a direction close to the sliding groove 414 and sticks out the side of the first valve rod 31 facing the first mounting plate 413, to effectively cooperate with the guiding surface 412.
[0132] Further, as shown in
[0133] Further, as shown in
[0134] The present disclosure provides a water softener. The water softener includes a water softener valve, the specific structure of the water softener valve refers to the above embodiments. Since the water softener adopts all the technical solutions of the above embodiments, at least, the water softener obtains all the effects brought by the technical solutions of the above embodiments, which are to be detailed herein.
[0135] The present disclosure further provides a water softener valve.
[0136] In some embodiments according to the present disclosure, as shown in
[0137] a valve body 10, having a water-passing passage 11 and a water-passing port 12 communicating with one end of the water-passing passage 11, the valve body 10 being provided with a plug interface 13 which extends through the side wall of the water-passing passage 11 and is adjacent to the water-passing port 12;
[0138] a water-passing connector 20, being plugged in the water-passing port 12, the water-passing connector 20 having two cut-through ends and communicating with the water-passing passage 11; and
[0139] a fixing member 30, being plugged in the plug interface 13, and clamped at the portion of the water-passing connector 20 located in the water-passing passage 11, to at least limit the water-passing connector 20 in the axial direction of the water-passing connector 20.
[0140] In some embodiments, the water-passing passage 11 generally includes a water-inlet passage 111 and a water-outlet passage 112. The water-inlet passage 111 is configured allow the water untreated to flow into the water softener valve for ion exchange, and water-outlet passage 112 is configured allow the water softened to flow out the water softener valve for users to take. The water connector 20 is configured to connect to the external pipe and the water-passing passage 11, and the water connector 20 is plugged into the water-passing port 12, the water of the external pipe passes through the water-passing connector 20 and enters the water-passing passage 11 via the water-passing port 12. The plug interface 13 extends through the side wall of the water-passing passage 11, for the fixing member 30 to be plugged in. The fixing member 30 extends from the plug interface 13 into the water-passing passage 11 along a direction perpendicular to the axial direction of the water-passing passage 11 and is clamped with the water-passing connector 20, to allow the water-passing connector 20 to be limited at least along its axial direction.
[0141] It should be noted that, the water-passing connector 20 is sealingly cooperated with the side wall of the water-passing passage 11 at the side of the fixing member 30 away from the water-passing port 12. Specifically, the outer peripheral wall of the end of the water-passing connector 20 in the water-passing passage 11 is provided with a sealing groove extending circumferentially, and a sealing ring is disposed in the sealing groove, to prevent the joint of the water-passing passage 11 and the water-passing connector 20 from leaking water. The fixing member 30 is closer to the water-passing port 12 than the sealing ring and the sealing groove, to effectively seal the water-passing connector 20 and the water-passing passage 11. It should be understood that, the fixing member 30 may also limit the water-passing connector 20 along the circumferential direction, to avoid the rotation of the water-passing connector 20 to cause wear on the seal ring.
[0142] In the water softener valve according to the present disclosure, the side wall of the water-passing passage 11 is provided with the plug interface 13 adjacent to the water-passing port 12, and the fixing member 13 plugged in the plug interface 13 is in a position-limiting clamp connection with the water-passing connector 20 plugged in the water-passing port 12, so as to allow the water-passing connector 20 to be fixedly connected to the water-passing port 12. That is, the plug interface 13 together with the fixing member 30 realize the fixed connection between the water-passing connector 20 and the water-passing port 12 of the valve body 10, making the connection structure of the water-passing connector 20 and the valve body 10 simpler, and the production and processing more convenient.
[0143] Further, as shown in
[0144] Further, as shown in
[0145] Further, as shown in
[0146] Further, as shown in
[0147] Further, as shown in
[0148] Further, as shown in
[0149] Further, as shown in
[0150] The present disclosure further provides a water treatment apparatus. The water treatment apparatus includes an ion exchange tank and a water softener valve, the specific structure of the water softener valve refers to the above embodiments Since the water treatment apparatus adopts all the technical solutions of the above embodiments, at least, the water treatment apparatus obtains all the effects brought by the technical solutions of the above embodiments, which are to be detailed herein. The water softener valve is mounted in the ion exchange tank, to allow the inner cavity of the valve body 10 to communicate with the inner cavity of the ion exchange tank.
[0151] The present disclosure further provides a water softener valve piston assembly.
[0152] In some embodiments, as shown in
[0153] It should be noted that, the piston rod may be a rod structure other than the first valve rod in the above embodiments, and may also include the first valve rod in the above embodiments.
[0154] In some embodiments, the piston body 10 is integrated injection molding, and configured to realize switching different water passages of the multi-way valve in the water softener valve during telescopic movement. For example, the outer peripheral wall of the piston body 10 is provided with an annular water-passing groove extending along the circumferential direction of the piston body 10. At a position where a water passage is closed, the outer peripheral wall of the piston body 10 is completely blocked at the water-passing port of the water passage, so that the water fails to pass through. And at a position where a water passage is opened, the water-passing groove communicates with the water-passing port of the water passage, so that the water flows through the water-passing groove.
[0155] The piston rod 20 is configured to drive the piston body 10 to perform a telescopic movement. Specifically, the inner end of the piston rod 20, namely the end located in the water softener valve, connects to the piston body 10, and the outer end connects to the driving mechanism. The driving mechanism drives the piston rod 20 to move, further driving the piston body 10 to perform a telescopic movement, so that the automatic switching of the multi-way valve waterways is realized. The connecting member 30 and the piston rod 20 may be a fixed connection, or a detachable connection, as long as the position-limiting cooperation in the telescopic direction is satisfied, so as to allow the connecting member 30 to telescopically move together with the piston rod 20. The fastening member 40 cooperates with the piston body 10, and the fastening member 40 is provided with a limiting surface that abuts against the connecting member 30 in the telescopic direction, to limit the connecting member 30 together with the piston body 10. The water-passing passage is configured to communicate with the drainage passage of the water softener valve, to allow the wastewater generated by the water softener valve to be discharged through the water-passing passage, increasing utilization of the piston body 10.
[0156] In the water softener valve according to the present disclosure, the piston assembly and the piston body 10 are integrally arranged, and the fastening member 40 cooperates with the piston body 10 to limit the connection member 30 disposed on the piston rod 20. Since the connecting member 30 and the piston rod 20 are position-limiting cooperated in the telescopic direction, the fastening member 40 and the connecting member 30 together form a connecting structure between the piston rod 20 and the piston body 10, to allow the piston rod 20 to drive the piston body 10 to perform the telescopic movement. Compared to the prior art, the water softener valve piston assembly of the present disclosure has fewer parts and a simpler structure, so that the installation is simpler, the production and processing cost is lower.
[0157] Further, as shown in
[0158] Further, as shown in
[0159] Further, as shown in
[0160] In some embodiments, the water-passing passage of the water softener valve piston assembly is disposed in the inner cavity 11 of the piston body 10, the inner wall of one end of the piston body 10 is recessed to form a sinking groove in the circumferential direction, and the stepped surface 111 is formed on the side wall of the sinking groove. The fastening member 40 is embedded in the sinking groove, the fastening member 40 is annularly disposed on the outer periphery of the piston rod 20. A limiting surface of the fastening member 40 faces the stepped surface 111. The inner end of the piston rod 20 extends in the inner cavity 11 of the piston body 10, to allow two ends of the connecting member 30 to be clamped between the stepped surface 111 and the limiting surface of the fastening member 40. It should be understood that, the length of the connecting member 30 should be smaller than the width of the inner cavity 11 of the piston body 10, and it should also satisfy that the inner wall of the sinking groove could limit the movement of the connecting member 30 along its length direction. The annular space formed between the inner annular surface of the fastening member 40 and the outer peripheral surface of the piston rod 20 communicates with the inner cavity 11 to form the water-passing passage.
[0161] When the driving assembly of the water softener valve drives the piston rod 20 to move into the water softener valve, the connecting member 30 moves with the piston rod 20, and a pushing force is transmitted from the connecting member 30 to the piston body 10 through the stepped surface 111 abutting against the connecting member 30, thereby pushing the piston body 10 to move in the same direction. In contrary, when the driving assembly of the water softener valve drives the piston rod 20 to move out from the water softener valve, a pulling force is transmitted to the fastening member 40 through the limiting surface of the fastening member 40, and the fastening member 40 cooperates with the piston body 10, so that the pulling force is transmitted to the piston body 10 through the fastening member 40, and drives the piston body 10 to move in the same direction.
[0162] Further, as shown in
[0163] Further, as shown in
[0164] Further, as shown in
[0165] As shown in
[0166] As shown in
[0167] The water softener further includes an ion exchange tank and a salt box. The ion exchange tank includes a tank body and a central tube disposed in the tank body. An ion exchange chamber is formed between the central tube and the inner wall of the tank body, the ion exchange chamber is received with ion exchange filter material. In one embodiment, the ion exchange filter material is soft water resin, so that the calcium ions and magnesium ions in the water to be treated may be conveniently replaced with sodium ions, and during the regeneration process, calcium ions and magnesium ions are replaced by discharge.
[0168] The present disclosure further provides a piston rod sealing structure of a water softener valve, which is applied to a water softener valve, the water softener valve is provided with a piston rod 10.
[0169] In some embodiments, as shown in
[0170] a valve body 50, including a main body and an end cap 20, the main body having a valve cavity with one end open, the end cap 20 covering the open of the valve cavity, the end cap 20 being provided with a mounting hole 21 for the piston rod 10 to come in or out of the valve cavity;
[0171] a sealing ring 30, annually disposed at the edge of the mounting hole 21 and configured to be sealingly cooperated with the piston rod 10; and
[0172] a fixing member 40, fixedly connected to the end cap 20, to fix the sealing ring 30.
[0173] It should be noted that, the piston rod may be a rod structure other than the first valve rod in the above embodiments, and may also include the first valve rod in the above embodiments.
[0174] In some embodiments, the water softener valve further includes a piston body 60 located in the valve cavity. The inner end of the piston rod 10 connects to the piston body 60, to drive the piston body 60 to control the opening or closing of different water passages in the valve cavity by a telescopic movement of the piston rod 10. The piston rod 10 and the mounting hole 21 are sliding fit with each other, and sealingly cooperated by the sealing ring 30, to prevent water in the valve cavity from leaking through the mounting hole 21 during the telescopic movement of the piston rod 10. The fixing member 40 is configured for fix the sealing ring 30 to the edge of the mounting hole 21, and the fixing member 40 may fix the sealing ring 30 by pressing or clamping or the like. For example, one end of the fixing member 40 is fixedly connected to the end cap 20, the other end is pressed to the sealing ring 30, as long as the sealing ring 30 could be effectively fixed during the telescopic movement of the piston rod 10. The fixing member 40 and the end cap 20 may be in a detachable connection, or a non-detachable connection such as welding or integral arrangement, as long as the fixed connection is satisfied.
[0175] In the piston rod sealing structure of the water softener valve according to the present disclosure, the sealing ring 30 is fixed by the fixing member 40, so that the sealing ring 30 is more stably mounted on the end cap 20, and the cooperation with the sealing ring 30 is more stable, thereby enhancing the sealing performance of the water softener valve, improving the overall stability of the water softener valve.
[0176] Further, as shown in
[0177] Further, as shown in
[0178] Further, as shown in
[0179] Further, as shown in
[0180] Further, the mounting post 23 is integrally formed with the end cap 20. In some embodiments, the mounting post 23 is integrally injection molded with the end cap 20, to reduce processing steps and production costs.
[0181] Further, as shown in
[0182] Further, the fixing member 40 is detachably fixed to the mounting groove 22. In some embodiments, the fixing member 40 is detachably connected to the side wall of the mounting groove 22 via the outer peripheral wall thereof, to increase the contact area of the fixing member 40 with the mounting groove 22, making the mounting of the fixing member 40 more stable. The fixing member 40 and the mounting groove 22 are connected by means of thread, snap, and so on, as long as the detachable connection is satisfied. The fixing member 40 and the mounting groove 22 is in a detachable connection, convenient for the replacement of the sealing ring 30 and the timely correction when the sealing ring 30 is misaligned.
[0183] Further, as shown in
[0184] Further, as shown in
[0185] As shown in
[0186] The present disclosure further provides a water treatment apparatus, including an ion exchange tank and a water softener valve, the structure of the water softener valve refers to the above embodiments. Since the water treatment apparatus adopts all the technical solutions of the above embodiments, at least, the water treatment apparatus obtains all the effects brought by the technical solutions of the above embodiments, which are to be detailed herein. The water softener valve is mounted in the ion exchange tank to allow the valve cavity communicate with inner cavity of the ion exchange tank.
[0187] The present disclosure provides a water softener valve, which is applied to a water softener.
[0188] In some embodiments, as shown in
[0189] The driving mechanism 20 includes a housing and a transmission shaft 25, the cam includes a first cam 23 and a second cam 24, the multi-way valve 21 is transmission cooperated with the first cam 23, the saline solution suction and water injection valve 22 is transmission cooperated with the second cam 24, the inner cavity of the housing is provided with a first mounting surface 301. Specifically, the multi-way valve 21 includes a first valve rod 211, the first valve rod 211 includes a first rod portion (not labeled) and a first transmission cooperation portion 212 disposed at one end of the first rod portion. The first transmission cooperation portion 212 is located outside the valve body 10, and the multi-way valve 21 is transmission cooperated with the first cam 23 via the first transmission cooperation portion 212. The saline solution suction and water injection valve 22 includes a second valve rod 221. The second valve rod 221 includes a second rod portion (not labeled) and a second transmission cooperation portion 222 disposed at one end of the second rod portion. The second transmission cooperation portion 222 is located outside the valve body 10, and the saline solution suction and water injection valve 22 is transmission cooperated with the second cam 24 via the second transmission cooperation portion 222.
[0190] The axes of the first cam 23, the second cam 24 and the transmission shaft 25 are arranged in parallel with each other, the outer peripheral surfaces of the first cam 23 and the second cam 24 are both provided with gear rack rows. The transmission shaft 25 is located between the first cam 23 and the second cam 24, the transmission shaft 25 is provided with a first tooth segment 251 engaged with the first cam 23, and a second tooth segment 252 engaged with the second cam 24. The first cam 23 is in a transmission cooperation with the second cam 24 via the transmission shaft 25. It should be understood that, if the first cam 23 is a driving wheel, the second cam 24 is a driven wheel; if the second cam 24 is a driving wheel, the first cam 23 is a driven wheel. In some embodiments, since the first cam 23 is in a transmission cooperation with the multi-way valve 21, the load of the first cam 23 is larger than the load of the second cam 24, so the first cam 23 is a driving wheel, and the second cam 24 is a driven wheel.
[0191] The first cam 23 and the second cam 24 are arranged in a double layer misalignment. The first cam 23 is adjacent to the first mounting surface 301. The second cam 24 and the first mounting surface 301 form a mounting space 40 therebetween. The mounting space 40 is configured to accommodate other components of the driving mechanism. For example, as shown in
[0192] In the present disclosure, the transmission shaft 25 is provided, the first tooth segment 251 of the transmission shaft 25 engages with the first cam 23 of the water softener valve, and the second tooth segment 252 engages with the second cam 24 of the water softener valve. The inner cavity of the housing of the water softener valve is provided with a first mounting surface 301. The first cam 23 is adjacent to the first mounting surface 301. The mounting space 40 is formed between the second cam 24 and the first mounting surface 301. The mounting space 40 is configured to accommodate other components of the driving mechanism 20, therefore, the water softener valve has a more compact overall structure and takes up less space.
[0193] Further, as shown in
[0194] Further, as shown in
[0195] Specifically, as shown in
[0196] Further, the driving mechanism further includes a detecting component disposed on the side of the circuit board facing the first cam. The detecting component is configured to detect the rotation of the first cam, so that the rotational state of the first cam, such as the rotational speed of the first cam, the moving position, and so on, can be detected.
[0197] Specifically, as shown in
[0198] The second transmission portion 222 is provided with a protrusion shaft (not shown) along the axial direction of the second cam 24 and facing toward the second cam 24, the second cam 24 is provided with a second sliding groove 241 adapted to the protrusion shaft, the second sliding groove 241 extends along a second direction. The second direction is perpendicular to the length direction of the second valve rod 221 and the axial direction of the second cam 24. The length of the protrusion shaft is larger than the depth of the second sliding groove 241. The side of the second transmission cooperation portion 222 facing the second cam 24 is in a gap cooperation with the second cam 24, to prevent the second transmission cooperation portion 222 from rubbing against the second cam 24, thereby avoiding interference with the operation of the second cam 24.
[0199] Further, the driving mechanism 20 further includes a protective shield 31 which is disposed on the housing. The protective shield 31 is functioned to avoid users being injured by the water softener valve when using the water softener.
[0200] The present disclosure further provides a water softener, the water softener includes a water softener main body and a water softener valve, the specific structure of the water softener valve refers to the above embodiments. Since the water softener adopts all the technical solutions of the above embodiments, at least, the water softener obtains all the effects brought by the technical solutions of the above embodiments, which are to be detailed herein.
[0201] The present disclosure further provides a connecting assembly, which is applied to a water treatment apparatus. The water treatment apparatus includes a water softener valve 10 and a central tube 20, the water softener valve 10 is provided with a mounting head 11.
[0202] In some embodiments, as shown in
[0203] In some embodiments, the water treatment apparatus further includes an ion exchange tank 80 and a salt box. The ion exchange tank 80 is provided with an exchange port 81, the inner cavity of the ion exchange tank 80 is filled with an ion exchange filter, such as a softening resin. In the process of the softened water production, the ion exchange filter in the ion exchange tank 80 replaces the calcium ions and magnesium ions in the raw water into sodium ions to generate the softened water; and in the process of water regeneration, the calcium ions and magnesium ions in the ion exchange tank 80 are replaced by sodium ions in the salt tank, so as to realize recycling. The exchange port 81 of the ion exchange tank 80 is generally disposed upward, and the ion exchange filter is located at the bottom of the ion exchange tank 80. The mounting head 11 of the water softener valve 10 is mounted downward to the exchange port 81 of the ion exchange tank 80, to allow the valve cavity of the water softener valve 10 to communicate with the inner cavity of the ion exchange tank 80. The water softener valve 10 further includes a valve core assembly located in the valve cavity thereof, for guiding water from an external pipeline into the valve cavity to the ion exchange tank 80 for working conditions, such as softened water production, salt suction forward washing, salt suction backwashing and so on. After being softened by the ion exchange of the ion exchange tank 80, the water flows back to the valve cavity of the water softener valve 10, and then flows out of the valve cavity for users to take.
[0204] The water-inlet passage 121 and the water-outlet passage 131 are formed inside the mounting head 11. The water in the valve cavity flows out from the water-outlet passage 131 to the ion exchange tank 80 for ion exchange, and flows back to the water softener valve from the ion exchange tank 80 through the water-inlet passage 121, then flows out of the valve cavity for users to take. It should be understood that, the water-inlet passage 121 and the water-outlet passage 131 are isolated from each other, to prevent the raw water and the softened water from flowing into each other when entering or leaving the water softener valve 10. In some embodiments, the water-outlet passage 131 is annularly disposed on the periphery of the water-inlet passage 121, the central tube 20 is configured to connect the water-inlet passage 121 and the ion exchange tank 80, to allow the softened water to flow to the water-inlet passage 121 from the ion exchange tank 80. And the central tube 20 is also configured to isolate the water-inlet passage 121 from the water-outlet passage 131. The raw water flows from the water-outlet passage 131 through the periphery of the central tube 20 into the ion exchange tank, and the softened water flows through the lumen of the central tube 20 to the water-inlet passage 121.
[0205] The connecting member includes a connecting seat 30 having two cut-through ends. The connecting seat 30 may be in the shape of a straight cylinder, or a stepped cylinder, as long as the connecting seat 30 could be plugged in the mounting head 11 and at least communicate with the water-inlet passage 121. The central tube 20 is plugged in the mounting seat 30, and connects to the water-inlet passage 121 by the connecting seat 30. The connecting seat 30 is fixedly plugged in the mounting head 11, the central tube 20 is fixedly plugged in the connecting seat 33. Therefore, the central tube 20 and the mounting head 11 could be relatively fixed without direct contact, that is, a structure for fixing the central tube 20 is not required to be formed on the mounting head 11, making the overall structure of the water softener valve 10 simpler. The mounting head 11 may abut against the connecting seat 30 via a stepped structure. For example, the connecting seat 30 has a stepped structure, the upper stepped surface of the stepped structure abuts against the mounting head 11, the lower stepped surface of the stepped structure abuts against the central tube 20, and the bottom end of the central tube 20 abuts against the bottom of the ion exchange tank 80, thereby realizing the fixing of the connecting seat 30.
[0206] During the assembly of the central tube 20 and the water softener valve 10, the connecting seat 30 allows a simple and convenient operation, thereby improving the overall assembly efficiency of the water treatment apparatus. In addition, if during assembly, the central tube 20 and the mounting head 11 are abnormally misaligned, since the connecting rod 30 between the central tube 20 and the mounting head 11 is subjected to the force due to the assembly displacement, therefore, it's easier to disassemble the abnormally assembled central tube 20 and the water softener valve 10, and no damage would be caused to the central tube 20 and the water softener valve 10, that is, the water softener valve 10 would not be scrapped directly, just replacing the connecting seat 30 would be fine. This reduces the risk of damage to the water softener valve 10 during assembly, thereby reducing the proportion of defective products, and the production cost caused by the defective products.
[0207] In the present disclosure, the connecting assembly connects to the water softener valve 10 and the central tube 20 via the connecting seat 30, which allows the water softener valve 10 to connect to the central tube 20 without a secondary processing, simplifying the overall structure of the water softener valve 10. In addition, the connecting assembly facilitates the connection between the water softener valve 10 and the central tube 20, thereby improving the assembly efficiency of the water treatment apparatus.
[0208] Further, as shown in
[0209] Further, as shown in
[0210] Further, as shown in
[0211] Further, as shown in
[0212] Further, as shown in
[0213] In this embodiment, the upper end of the plugging cylinder 32 is plugged in the first annular cylinder 12, and the inner wall of the upper end of the socket cylinder 33 is connected to the outer wall of the lower end of the plugging cylinder 32. The diameter of the socket cylinder 33 is larger than that of the plugging cylinder 32. The central tube 20 is plugged in the plugging cylinder 32, to form mounting space between the inner wall of the socket cylinder 33 and the outer wall of the central tube 20.
[0214] In the above embodiments, when assembling the central tube 20, first the second sealing ring 50 is embedded in the second sealing groove 314, then the central tube 20 passes the second sealing ring 50. However, limited to the wall thickness of the first connecting cylinder 31 itself, the depth of the second sealing groove 314 is small, which is disadvantageous for the stable mounting of the second sealing ring 50. And the friction force generated by the central tube 20 and the second sealing ring 50 when the central tube 20 passes through the second sealing ring 50, causes the second sealing ring 50 to fall off or be displaced from the second sealing groove 314, thereby failing to achieve a stable sealing. Therefore, in some embodiments, the second sealing groove 314 is adjacent to and penetrating through the lower end of the plugging cylinder 32, to allow the second sealing groove 314 to communicate with the annular space, so that the lower surface of the second sealing ring 50 faces the mounting space. The fixing member 60 fixed in the mounting space abuts against the lower surface of the second sealing ring 50, to press the second sealing ring 50 in the second sealing groove 314, which makes the mounting of the second seal ring 50 simpler and more reliable, and improves the sealing performance between the central tube 20 and the plugging cylinder 32, thereby improving the overall sealing performance of the water treatment apparatus.
[0215] Further, as shown in
[0216] Further, as shown in
[0217] In some embodiments, the lower end of the second annular cylinder 13 sticks out from the first annular cylinder 12, the second connecting cylinder 34 is exposed of the mounting head 11, and the lower end wall of the second annular cylinder 13 abuts against the upper end wall of the second connecting cylinder 34, to allow an abutting cooperation between the second connecting cylinder 34 and the second annular cylinder 13. The water-passing runner 35 communicates with the water-outlet passage 131, the upper water distributor 70 communicates with the water-passing runner 35. The upper water distributor 70 is configured to balance the amount of water per unit cross-sectional area, making the raw water more dispersed into the ion exchange tank 80, so as to increase the contact area between the raw water and the exchange filter in the ion exchange tank 80. Thereby, the efficiency of ion exchange is improved, and water production efficiency and water quality of softened water is improved. A water distribution space is formed between the inner wall of the upper water distributor 70 and the outer wall of the central pipe 20. The raw water flows from the water-outlet passage 131 through the water-passing runner 35 and the water distribution space into the ion exchange tank 80 for ion exchange to form softened water, and the softened water flows through the central tube to the water-inlet passage 121.
[0218] The upper water distributor 70 is plugged in the second connecting cylinder 34, that is, the upper water distributor 70 is plugged in the connecting seat 30. Therefore, the upper water distributor 70 does not need to be directly mounted in contact with the second annular cylinder 13, that is, the second annular cylinder 13 does not need to be formed into a structure for fixing the upper water distributor 70, which simplifies the overall structure of the water softener valve 10, and makes the mounting of the upper water distributor 70 and the water softener valve 10 simpler and more convenient. In addition, if during assembly, the upper water distributor 70 and the connecting seat 30, or the connecting seat 30 and the mounting head 11, are abnormally misaligned, since the connecting rod 30 between the upper water distributor 70 and the mounting head 11 is subjected to the force due to the assembly displacement, therefore, it's easier to disassemble the abnormally assembled the upper water distributor 70 and the water softener valve 10, and no damage would be caused to the upper water distributor 70 and the water softener valve 10, that is, the water softener valve 10 would not be scrapped directly, just replacing the connecting seat 30 would be fine. This reduces the risk of damage to the water softener valve 10 during assembly, thereby reducing the proportion of defective products, and the production cost caused by the defective products.
[0219] Further, as shown in
[0220] Further, as shown in
[0221] Further, as shown in
[0222] Further, as shown in
[0223] Further, as shown in
[0224] Further, as shown in
[0225] Further, the first connecting cylinder 31, the second connecting cylinder 34 and the connecting rib 36 are integrally arranged. In some embodiments, the first connecting cylinder 31, the second connecting cylinder 34 and the connecting rib 36 are integrally arranged, in order to facilitate the integrated injection molding of the connecting seat 30, thereby reducing the processing steps and the production cost.
[0226] The disclosure further provides a water treatment apparatus. The water treatment apparatus includes a water softener valve 10, a central tube 20, an upper water distributor 70, an ion exchange tank 80 and a connecting member. The specific structure of the connecting member refers to the above embodiments. Since the water treatment apparatus adopts all the technical solutions of the above embodiments, at least, the water treatment apparatus obtains all the effects brought by the technical solutions of the above embodiments, which are to be detailed herein. The water softener valve 10 is provided with a mounting head 11, the ion exchange tank 80 is provided with an exchange port 81, the connecting seat 30 is plugged in the mounting head 11, the upper water distributor 70 and the central tube 20 are both plugged in the connecting seat 30, the mounting head 11 is mounted at the exchange port 81 to allow the inner cavity of the water softener valve 10 to communicate with the inner cavity of the ion exchange tank 80.
[0227] In this embodiment, the connecting seat 30 is plugged in the mounting port, the upper water distributor 70 and the central tube 20 are both plugged in the connecting seat 30, the mounting head 11 is plugged in the exchange port 81, therefore, the connecting seat 30, the upper water distributor 70 and the central tube 20 are located in the inner cavity of the ion exchange tank 80 together with the mounting head 11, to allow the inner cavity of the ion exchange tank 80 to communicate with the inner cavity of the water softener valve 10 via the upper water distributor 70 and the central tube 20, realizing soft water production. The mounting head 11 is screwed to the exchange port 81. The lower end of the central tube 20 is optionally provided with a lower water distributor 90, to equalize the amount of softened water flowing to the central tube 20 per unit area, thereby increasing the flow rate and flow amount of the softened water flowing to the water softener valve 10, so that the overall working efficiency of the water treatment apparatus is improved.
[0228] The foregoing description merely portrays some illustrative embodiments in accordance with the disclosure and therefore is not intended to limit the patentable scope of the disclosure. Any equivalent structure or flow transformations that are made taking advantage of the specification and accompanying drawings of the disclosure and any direct or indirect applications thereof in other related technical fields shall all fall in the scope of protection of the disclosure.