Operating device for flush water tank assembly, flush water tank assembly, and flush toilet
09926694 ยท 2018-03-27
Assignee
Inventors
- Koki Shinohara (Kitakyushu, JP)
- Hideki Tanimoto (Kitakyushu, JP)
- Kenji Hatama (Kitakyushu, JP)
- Makoto Abe (Kitakyushu, JP)
Cpc classification
E03D5/094
FIXED CONSTRUCTIONS
Y02A20/40
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
E03D1/00
FIXED CONSTRUCTIONS
International classification
E03D5/094
FIXED CONSTRUCTIONS
E03D1/14
FIXED CONSTRUCTIONS
Abstract
An operating device for a flush water tank assembly includes: a rotary shaft, an operating handle, an operating wire, and a drive unit, wherein the drive unit includes: a rotary member, a rotary winding member, a locking unit for mutually locking the rotary member and the rotary winding member when the rotary winding member rotates in a forward rotational direction from operating position P1 and reaches operating position P3, and a lock release portion for releasing the lock between the rotary member and the rotary winding member when the rotary member and the rotary winding member rotate in a forward rotational direction from operating position P1 and reach operating position P3.
Claims
1. An operating device for a flush water tank assembly, for operating a discharge valve of the flush water tank assembly to supply flush water to a toilet, the operating device comprising: a rotary shaft extending to penetrate a wall of a flush water tank of the flush water tank assembly; an operating member configured to rotate the rotary shaft by performing a rotating operation on the rotary shaft, the operating member being attached to an outside portion of the rotary shaft, the outside portion of the rotary shaft being positioned on an outside of the flush water tank; a linking member having a first end and a second end, the first end being linked to the discharge valve of the flush water tank assembly; and a drive unit attached to an inside portion of the rotary shaft and linked to the second end of the linking member, the drive unit being configured to move the second end of the linking member from a first operating position to a second operating position by the rotating operation of the operating member, the drive unit being positioned on the inside of the flush water tank and being attached to the rotary shaft, wherein the first operating position corresponds to a position at which the discharge valve is closed, and the second operating position corresponds to a position at which the discharge valve is open; wherein the drive unit includes: a rotary member affixed to the rotary shaft and integrally rotating with the rotary shaft; a rotary winding member to which the second end of the linking member is directly linked, wherein when the rotary shaft and the rotary member rotate by the rotating operation of the operating member so as to open the discharge valve, the rotary member engages with the rotary winding member, and the rotary winding member rotates to directly wind the linking member such that the second end of the linking member is moved from the first operating position to the second operating position; a locking unit disposed on the rotary winding member, the locking unit being configured to lock the rotary member and the rotary winding member by engaging with the rotary member such that the rotary member and the rotary winding member rotate from the first operating position to the second operating position by the rotating operation of the operating member; a lock release portion configured to release a locking member of the locking unit between the rotary member and the rotary winding member, wherein when the rotary member and the rotary winding member rotate such that the second end of the linking member moves to the second operating position, the locking unit between the rotary member and the rotary winding member is released, and the rotary winding member rotates in a valve closing direction in which the discharge valve is closed such that the rotary winding member and the second end of the linking member reach the first operating position; and a housing configured to house at least the rotary member and the rotary winding member.
2. The operating device according to claim 1, wherein the locking unit includes: a biasing member having one end that is attached to at least one of the rotary member and the rotary winding member, and the locking member disposed at other end of the biasing member, the locking member engaging with the rotary member and the rotary winding member due to a biasing force of the biasing member, thereby locking the rotary winding member and the rotary member when the rotary member and the rotary winding member rotate such that the linking member moves to the second operating position from the first operation position; wherein the lock release portion is disposed on the housing, and when the rotary winding member rotates such that the linking member moves to the second operating position from the first operating position, the locking member engages with the lock release portion of the housing so that the locking member between the rotary winding member and the rotary member can be released.
3. The operating device according to claim 2, wherein the biasing member has one end that is attached to the rotary winding member, and the locking member projects from the rotary winding member under the biasing force of the biasing member and engages with the rotary member until the linking member reaches the second operating position from the first operating position, and the locking member is attached to the other end of the biasing member such that the locking member can engage with the rotary member; wherein the locking unit further includes a locking projecting portion disposed to project from the rotary member, wherein the locking projecting portion of the rotary member engages with a portion of the locking member without engaging with the lock release portion of the housing until the linking member reaches the second operating position from the first operating position; and wherein in a state in which the linking member has reached the second operating position from the first operating position, the locking projecting portion of the rotary member, and the locking member engaging with the lock release portion of the housing are separated from one another.
4. The operating device according to claim 2, wherein the lock release portion is a lock releasing projecting portion placed inside the housing, and wherein the locking member has a sloped surface, the sloped surface engaging with the lock releasing projecting portion when the linking member has reached the second operating position from the first operating position.
5. The operating device according to claim 4, wherein the lock releasing projecting portion of the housing has a sloped surface, the sloped surface of the lock releasing projecting portion engaging with the sloped surface of the locking member when the linking member has reached to the second operating position.
6. The operating device according to claim 4, wherein the locking projecting portion of the rotary member has a sloped surface, the sloped surface being configured such that when the linking member has returned to the first operating position after the locking member between the rotary member and the rotary winding member has been released when the linking member has reached the second operating position, the sloped surface of the locking member being able to pass over the sloped surface on the locking projecting portion of the rotary member.
7. The operating device according to claim 1, wherein the drive unit further includes a rotary winding member biasing portion for biasing the rotary winding member such that the linking member moves to the first operating position after the linking member has reached the second operating position.
8. The operating device according to claim 1, wherein the operating member is disposed on a left side of the flush water tank or a right side of the flush water tank, and when supply of flush water to the toilet is started, the rotary member and the rotary winding member are rotated from the first operating position to the second operating position by the rotating and lifting up operation of the operating member from the first operating position to the second operating position such that the second end of the linking member is lifted up in a valve opening direction to open up the discharge valve, wherein the rotary member and the rotary winding member can, by the rotating and lifting up operation of the operating member from the first operating position to the second operating position, be rotated in the same valve opening direction with each other such that the second end of the linking member moves from the first operating position to the second operating position; and wherein when the rotary member and the rotary winding member have rotated such that the second end of the linking member reaches the second operating position, the locking by the locking unit between the rotary member and the rotary winding member is released by the lock release portion such that the rotary winding member is rotated in the valve closing direction and the second end of the linking member is moved to the first operating position.
9. The operating device according to claim 1, wherein the rotary member of the drive unit includes a drive-side rotary member affixed to the rotary shaft, and a slave-side rotary member interposed between the drive-side rotary member and the rotary winding member; wherein the operating member is disposed on left side of the flush water tank or right side of the flush water tank, and pressing downward an operating handle of the operating member enables the operating member to rotate in a direction in which the discharge valve is opened such that the linking member moves from the first operating position to the second operating position, thereby supplying flush water to the toilet; wherein a rotary operation of the operating member in the valve opening direction enables the drive-side rotary member and the slave-side rotary member to rotate in a first predetermined direction and a second predetermined direction, respectively such that the linking member moves from the first operating position to the second operating position; wherein the rotary operation of the operating member in the valve opening direction enables the rotary winding member to rotate in a third predetermined direction opposite the first predetermined direction of the drive-side rotary member; and wherein, when the rotary operation of the operating member in the valve opening direction enables the rotary winding member to rotate such that the linking member reaches the second operating position, the rotary winding member can, by releasing the locking member between the rotary member and the rotary winding member using the lock release portion, rotate in a predetermined direction opposite the third predetermined direction such that the linking member moves to the first operating position.
10. The operating device according to claim 9, wherein the slave-side rotary member consists of multiple slave-side rotary members, and wherein the drive unit further includes a biasing member for biasing the slave-side rotary members, and after the rotary winding member has rotated such that the linking member has reached the second operating position, the biasing member biases at least one of the multiple slave-side rotary members, the at least one of the multiple slave-side rotary members enabling the operating handle of the operating member to move from a position which corresponds to the second operating position to an initial position at which the discharge valve opening operation can be started.
11. A flush water tank assembly comprising the operating device according to claim 1.
12. A flush toilet comprising the flush water tank assembly according to claim 11.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1)
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DETAILED DESCRIPTION OF THE INVENTION
(25) Below, referring to the attached figures, an operating device for a flush water tank assembly, a flush water tank assembly comprising this operating device, and a flush toilet comprising this flush water tank assembly, according to a first embodiment of the invention are described.
(26) First, using
(27)
(28) As shown in
(29) First, the flush water tank assembly 2 provided with the operating device 1 is applied to the flush toilet 4, being a water conserving siphon flush toilet for flushing with, for example, 3.8 liters to 5.2 liters of flush water, and comprising a ceramic toilet main unit 6. A bowl portion 8 and a trap conduit (not shown) communicating with the bottom portion of this bowl portion 8 are respectively formed on this toilet main unit 6.
(30) Formed on the top edge portion of this toilet main unit 6 bowl portion 8 are an inwardly overhanging rim 10 and a spout port 12 for spouting flush water supplied from a conduit (not shown) formed internally on the rear side of the toilet main unit 6; flush water spouted from this spout port 12 descends and flushes the bowl portion 8 as it circulates.
(31) In addition, the flush water tank assembly 2 for holding flush water supplied to the toilet main unit 2 is provided on the top surface at the rear side of the toilet main unit 6.
(32) Note that in the present embodiment an example is explained, in which the flush water tank assembly 2 was applied to what is known as a siphon-type flush toilet 4, in which the siphon effect is used to suction in waste in the bowl portion 8 and discharge it to the outside all at once from a discharge trap pipe (not shown), but the invention is not limited to such siphon-type flush toilets, and may also be applied to other types of toilets, such as those referred to as wash-down type toilets in which waste is discharged using the flow effect caused by a water drop inside the bowl portion.
(33) Next, referring to
(34)
(35) As shown in
(36) As shown in
(37) The water supply apparatus 20 comprises a water supply pipe 24, connected to an external water source (not shown) and extending from the bottom portion of the reservoir tank 14, a water supply valve 26, attached to the top end portion of this water supply pipe 24, for switching between spouting and cutting off flush water supplied into the reservoir tank 14 from the water supply pipe 24, and a float 28 for switching between spouting and cutting off of water spouting by the water supply valve 26, by moving up or down in response to fluctuations in the water level inside the reservoir tank 14.
(38) A water spout port 30 is opened on the outer perimeter side bottom end portion of the water supply pipe 24, and flush water from the water supply valve 26 is spouted from the water spout port 30 into the reservoir tank 14.
(39) The water supply apparatus 20 further comprises a refill pipe 32 connected to the water supply valve 26, and a portion of the refill pipe 32 is affixed to the overflow pipe 34 or to a predetermined location inside the reservoir tank 14 so that the refill pipe 32 downstream end portion is positioned close to the discharge valve apparatus 22 overflow pipe 34 top end opening.
(40) Also, flush water inside the reservoir tank 14 is discharged by the discharge valve apparatus 22 into the toilet in an amount corresponding to the difference between a predetermined water level WL when full and a lower stopped water level (or dead water level) DWL; inside this water supply apparatus 20, the water level drops and a float 28 descends; this results in the opening of a water supply valve 26, starting the spouting of water from the water spout port 30, so that spouting of water into the reservoir tank 14 from a water source (not shown) outside the flush water tank assembly 2 is started.
(41) Furthermore, when spouting continues and the water level inside the reservoir tank 14 rises, the float 28 also rises, causing the water supply valve 26 to close, so that spouting from the water spout port 30 is stopped. This results in the water level of the flush water inside the reservoir tank 14 being maintained at a predetermined water level WL when full.
(42) Next, the discharge valve apparatus 22 is what is known as a direct drive discharge valve apparatus, comprising within it a discharge valve main unit 36 for opening and closing the discharge port 18a by moving up and down. This discharge valve apparatus has the same configuration as a conventional discharge valve apparatuses, so a specific explanation thereof is omitted, but one end portion 38a of the operating wire 38 in the operating device 1, described in detail below, is linked to the discharge valve main unit 36 top end portion 36a, and the other end portion 38b of the operating wire 38 is linked to a portion of the drive unit 40 of the operating device 1, described in detail below.
(43) The amount of movement by the operating wire 38 corresponds to the amount of movement in the up-down direction by the valve body 42 at the bottom end portion of the discharge valve main unit 36; when the drive unit 40 is driven by a user rotating the operating handle 44 on the operating device 1, described in detail below, the raising of the operating wire 38 results in the raising of the valve body 42 so that the discharge port 18a is released for a predetermined time, and a fixed amount of flush water in the reservoir tank 14 is discharged from the discharge port 18a, through the discharge path 18 to the water conduit 16 in the toilet main unit 6, thereby flushing the toilet.
(44) Note that in
(45) Next, referring to
(46) First,
(47) As shown in
(48) An operating handle 44 is affixed and attached to the outside end portion 46a of the rotary shaft 46 positioned outside the reservoir tank 14, and this operating handle 44 is disposed at the left side portion of the reservoir tank 14 as seen from the front of the toilet. The operating handle 44 is what is known as a pull-type handle, whereby grasping the gripping portion 44a extending from the operating handle 44 and raising the operating handle 44 from the front side as seen from the front of the flush water tank assembly 2, and rotating the operating handle 44 in a predetermined forward rotational direction , enables the rotary shaft 46 to rotate about center axis line A1, with the rotary shaft 46 and the operating handle 44 integrated as a single piece.
(49) Also, as shown in
(50) Next,
(51) As shown in
(52) As shown in
(53) Next, as shown in
(54) Note that in the present embodiment the state whereby the rotary shaft 46 and the drive-side rotating member 58 are separate members is explained, but both the rotary shafts 46 and 58 may be members integrally formed as a single unit.
(55) As shown in
(56) This drive-side rotating member 58 and rotary winding member 60 can be moved by rotation of the operating handle 44 from a standby state prior to start of operation operating position P1 (see
(57) Next,
(58) As shown in
(59) One end portion 62a of the tube 62 is affixed to the exterior casing 22a of the discharge valve apparatus 22 (see
(60) Also, as shown in
(61) As shown in
(62) When the operating handle 44 is rotated to move the rotary winding member 60 along with the drive-side rotating member 58 from a standby state prior to start of operation at operating position P1 (see
(63) For example, if the operating wire 38 is wound up by only a maximum wind-up amount L1 by the rotary winding member 60, the discharge valve main unit 36 valve body 42 rises to the maximum valve open position (fully open position) H3, as shown in
(64) Next, as shown in
(65) Here, the drive-side rotating member 58 and the rotary winding member 60 are shown in a mutually locked state in
(66) As shown in
(67) In addition, as shown in
(68) Here, with the locking projection 64 inserted into the attaching hole 60d, a bias force F1 (see
(69) Next, as shown in
(70) In a state whereby the locking projection 64 locking projection tip portion 64a projects out from the rotary winding member 60 attaching hole 60d, contact of the rotating member 58 locking projecting portion 58a front end portion in the forward rotation direction with the back end of the locking projection 64 tip portion 64a results in mutual locking between the rotary winding member 60 and the rotating member 58.
(71) Next,
(72) As shown in
(73) When the rotating member 58 and rotary winding member 60 rotate from the operating position P1 (see
(74) At this point, the downward pressing force F2 by the lock release projecting portion 50b shown in
(75) Also, as shown in
(76) Since the engaging part of the locking projection 64 engaged with the rotating member 58 locking projecting portion 58a and the engaging part of the locking projection 64 engaged with the casing 50 lock release projecting portion 50b are in this manner mutually separated, the rotating member 58 locking projecting portion 58a and the casing 50 lock release projecting portion 50b can be prevented from colliding with one another.
(77) Next,
(78) As shown in
(79) Note that in this embodiment, as one example of a rotary winding member biasing portion, we have explained a form in which a return spring 68 formed of a twisted coil spring was adopted, but spring elements other than twisted coil springs may also be adopted.
(80) When the rotary winding member 60 rotates from the operating position P1 (see
(81) I.e., as shown in
(82) Next, as shown in
(83) Also, as shown in
(84) Note that in this embodiment, as one example of a rotary winding member biasing portion, a form in which a return spring 68 formed of a twisted coil spring was adopted is explained, but spring elements other than twisted coil springs may also be adopted.
(85) Next, referring to
(86) First, with respect to the operating handle 44 at the standby state operating position P1 shown in
(87) Also, as shown in
(88) By this means, as shown in
(89) At the same time, the locking projection 64 engages with the casing 50 lock release projecting portion 50b, releasing the lock between the rotating member 58 and the rotary winding member 60, therefore regardless of the operating handle 44 operating position, the rotary winding member 60 rotates in the reverse rotation direction , opposite the forward rotation direction , and moves to operating position P4 (see
(90) The discharge valve main unit 36 valve body 42 falls to closed valve position H1 together with the drop in the flush water level in the reservoir tank 14, and the water level in the reservoir tank 14 reaches the stopped water level (or dead water level) DWL.
(91) At the point in time when the user releases his hand from the operating handle 44 gripping portion 44a, the operating handle 44, rotary shaft 46, and rotating member 58 also return to the standby state operating position P1.
(92) According to the above-described operating device 1 for the flush water tank assembly according to the first embodiment of the present invention, when the toilet flushing operation (the discharge valve main unit 36 valve body 42 opening operation) is started and the discharge valve main unit 36 valve body 42 temporarily moves to a fully open position, at least the rotary winding member 60 and the operating wire 38 can move quickly to operating position P4, closing the discharge valve main unit 36 valve body 42, irrespective of the operating handle 44 operation, thus enabling toilet flushing in which the amount of flush water supplied from the discharge path 18 to the flush toilet 4 is controlled to a regulation amount.
(93) The engagement at operating position P3 of the locking projection 64 with the casing 50 lock release projecting portion 50b, and release of the lock between the rotating member 58 and the rotary winding member 60, enables the time from the start of the discharge valve main unit 36 valve body 42 valve opening until valve closing to be shortened, and since the regulation flush water amount required for toilet flushing can be set relatively low, toilet flushing water conservation can be achieved.
(94) In addition, according to the operating device 1 for the flush water tank assembly according to the first embodiment of the invention, until the rotating member 58 and the rotary winding member 60 rotate from operating position P1 in the forward rotation direction to reach operating position P3, the locking projecting portion 58a engages a part of the locking projection 64 projecting from the rotary winding member 60 without engaging the casing 50 lock release projecting portion 50b, therefore the rotating member 58 and the rotary winding member 60 are locked.
(95) In a state whereby the rotating member 58 and the rotary winding member 60 have rotated from operating position P1 in the forward rotation direction and reached operating position P3, the engagement by a portion of the locking projection 64 with the casing 50 lock release projecting portion 50b results in the locking projection 64, which projects from the rotary winding member 60 and had been engaged with the rotating member 58 locking projecting portion 58a, being pressed by the pressing force F2 of the casing 50 lock release projecting portion 50b to oppose the bias force F1 of the thin plate spring 66 so that the engagement with the rotating member 58 locking projecting portion 58a is released, therefore the lock between the rotating member 58 and the rotary winding member 60 is released.
(96) At this point, the engaging part of the locking projection 64 engaging the rotating member 58 locking projecting portion 58a and the engaging part of the locking projection 64 engaging the casing 50 lock release projecting portion 50b are set to be mutually separated, and since mutual collision between the rotating member 58 locking projecting portion 58a at operating position P3 with the casing 50 lock release projecting portion 50b can be prevented, the rotating member 58 and the rotary winding member 60 in a mutually locked state can, upon reaching operating position P3, quickly be moved to a lock-released state.
(97) Also, even in a state where the operating handle 44 has been operated to operating position P3, or the operating handle 44 has been further rotated in the forward rotation direction from operating position P3, the rotating member 58 locking projecting portion 58a does not collide with the casing 50 lock release projecting portion 50b, and the rotary winding member 60 has already rotated from operating position P3 in the reverse rotation direction and moved to operating position P4, such that the rotating member 58 locking projecting portion 58a can pass over the locking projection 64, and the mutual engagement released state can be maintained, therefore rotation in the forward rotation direction of the rotary winding member 60 together with the rotating member 58 resulting in unintentional opening of the discharge valve main unit 36 valve body 42 can be prevented.
(98) Hence toilet flushing is possible in which the flush water amount supplied with each flush from the flush water tank 14 to the flush toilet 4 is controlled to a regulation amount.
(99) In the operating device 1 for the flush water tank assembly of the first embodiment of the invention, by disposing the lock release projecting portion 50b, which is a lock release portion, on the inside of the casing 50, the forward side surface in the forward rotation direction of the locking projection 64 engaging the lock release projecting portion 50b forms a sloped surface 64b when the rotary winding member 60 rotates from operating position P1 in the forward rotation direction and reaches operating position P3, therefore in a state in which the rotating member 58 and the rotary winding member 60 have rotated in the forward rotation direction from operating position P1 and reached operating position P3, the sloped surface 64b formed on the forward surface of the locking projection 64 in the forward rotation direction can more easily engage the casing 50 lock release projecting portion 50b.
(100) Therefore the locking projection 64, which projects out from the rotary winding member 60 and was engaged with the rotating member 58 locking projecting portion 58a, is more easily pressed against the bias force F1 of the thin plate spring 66 by the casing 50 lock release projecting portion 50b at operating position P3, and the lock between the locking projection 64 and the rotating member 58 locking projecting portion 58a can also be easily released.
(101) Hence the rotating member 58 and the rotary winding member 60 can be moved quickly from the mutually locked state obtaining from operating position P1 until reaching operating position P3, to a mutually unlocked state, at the point of reaching operating position P3.
(102) Therefore toilet flushing is enabled in which the flush water amount supplied with each flush from the flush water tank 14 to the flush toilet 4 is controlled to a regulation amount.
(103) Furthermore, in the operating device 1 for the flush water tank of the first embodiment of the invention, the part which engages the locking projection 64 sloped surface 64b in the casing 50 lock release projecting portion 50b forms a sloped surface 50c when the rotary winding member 60 reaches operating position P3, therefore in a state in which the rotating member 58 and the rotary winding member 60 rotate in the forward rotation direction from operating position P1 to operating position P3, the sloped surface 64b formed on the front surface in the forward rotation direction of the locking projection 64 more easily engages the sloped surface 50c on the casing 50 lock release projecting portion 50b.
(104) Hence the locking projection 64, which projects out from the rotary winding member 60 and was engaged with the rotating member 58 locking projecting portion 58a, is effectively more easily pressed against the bias force F1 of the thin plate spring 66 by the casing 50 sloped surface 50c, and the lock between the locking projection 64 and the rotating member 58 locking projecting portion 58a can also be more easily released.
(105) As a result, the rotary member 58 and the rotary winding member 60 can, upon reaching the third operating position, be more quickly moved from a mutually locked state to a mutually unlocked state.
(106) Therefore toilet flushing is enabled in which the flush water amount supplied with each flush from the flush water tank 14 to the flush toilet 4 is controlled to a regulation amount.
(107) Also, according to the operating device 1 for the flush water tank of the first embodiment of the invention, when the lock between rotating member 58 and the rotary winding member 60 is released at operating position P3 and the rotating member 58 returns to operating position P1 after the rotary winding member 60 returns to operating position P4, the surface at the back side of the rotating member 58 locking projecting portion 58a opposing the locking projection 64 sloped surface 64b forms a sloped surface 58c (see
(108) In the passed-over state, the locking projection 64 projects out from the rotary winding member 60 attaching hole 60d under the bias force F1 of the thin plate spring 66 and quickly engages the rotating member 58 locking projecting portion 58a, so the rotating member 58 and the rotary winding member 60 can again be locked and placed in a standby state at operating position P1.
(109) Preparations for starting the next toilet flushing can therefore be quickly and reliably performed, and the next toilet flushing can also be carried out with flush water supplied from the flush water tank 14 to the toilet 4 reliably controlled to the regulated amount.
(110) In addition, according to the operating device 1 for the flush water tank assembly of the first embodiment of the invention, the drive unit 40 comprises a return spring 68, so that when the rotary winding member 60 reaches operating position P3, the rotary winding member 60 is moved to operating position P4, therefore when the discharge valve main unit 36 valve body 42 opening operation is started and the rotary winding member 60 rotates from operating position P1 in the forward rotation direction and reaches operating position P3 so that the discharge valve main unit 36 valve body 42 moves from closed valve position H1 to maximum valve open position H3, the lock between the rotating member 58 and the rotary winding member 60 is released, and when the rotary winding member 60 and the operating wire 38 move to operating position P4, the rotary winding member 60 and operating wire 38 can be more quickly and reliably moved to operating position P4 by the biasing force of the drive unit 40 return spring 68, even if there is some sliding resistance or the like, and the discharge valve main unit 36 valve body 42 can be more quickly and reliably closed.
(111) Therefore toilet flushing is enabled in which the flush water amount supplied with each flush from the flush water tank 14 to the flush toilet 4 is controlled to a regulation amount.
(112) Also, according to the operating device 1 for the flush water tank assembly of the first embodiment of the invention, performing a rotary operation to raise the operating handle 44 from operating position P1 up to operating position P3 when starting the supply of flush water to the toilet results in the rotating member 58 and the rotary winding member 60 respectively rotating in the same predetermined valve opening direction (forward rotation direction ) from operating position P1 to operating position P3; thereafter when the rotary winding member 60 reaches operating position P3, the engagement of the locking projection 64 with the lock release projecting portion 50b, which is the lock release portion, results in the release of the lock between the rotating member 58 and the rotary winding member 60, therefore irrespective of the operating handle 44 operation, the operating handle 44 can be rotated in a predetermined valve closing direction (reverse rotation direction ) and moved to operating position P4.
(113) I.e., when the discharge valve main unit 36 valve body 42 valve opening operation is started and the discharge valve main unit 36 temporarily moves to fully open position H3, at least the rotary winding member 60 and the operating wire 38 can move quickly to operating position P4 irrespective of the operating handle 44 operation, closing the discharge valve main unit 36, therefore toilet flushing can be accomplished in which the amount of flush water supplied from the reservoir tank 14 to the toilet in each toilet flushing can be controlled to a regulation amount.
(114) Also, because the time from the start of the discharge valve main unit 36 valve body 42 opening operation (the discharge valve main unit 36 opening time) can be shortened, the regulation flush water amount required for toilet flushing can be set relatively low, and toilet flush water can be conserved.
(115) Next, referring to
(116)
(117) Note that in the operating device according to the second embodiment of the invention shown in
(118) First, in the operating device according to the second embodiment of the invention, as a biasing portion for biasing the locking projection 64 for locking the drive unit rotating member 58 and the rotary winding member 160, a compression coil spring 166 is disposed on the rotary winding member 160 lock projection attaching hole 160d in place of the thin plate spring 66 for biasing the drive unit 40 locking projection 64 on the operating device 1 according to the above-described first embodiment of the invention.
(119) In the operating device according to the second embodiment of the invention thus constituted, as in the operating device 1 according to the above-described first embodiment of the invention, in the operating device 1 in standby state, the locking projection 64 projects outward from the rotary winding member 160 attaching hole 160d under the bias force F1 of the compression coil spring 166, thereby engaging the rotating member 58 projecting portion 58a so that the rotary winding member 160 and the rotating member 58 are locked, and the rotary winding member 160 also rotates together with the rotating member 58 from the operating position P1 in the forward rotation direction until reaching operating position P3.
(120) In a state whereby the rotating member 58 and the rotary winding member 160 have rotated from operating position P1 in the forward rotation direction and reached operating position P3, the engagement by a portion of the locking projection 64 with the casing 50 lock release projecting portion 50b causes the locking projection 64, which projects from the rotary winding member 160 and had been engaged with the rotating member 58 locking projecting portion 58a, to be pressed by the pressing force F2 of the casing 50 lock release projecting portion 50b in opposition to the bias force F1 of the compression coil spring 166, so that the engagement with the rotating member 58 locking projecting portion 58a is released, therefore the lock between the rotating member 58 and the rotary winding member 160 is released.
(121) Since the time from the start of the discharge valve main unit 36 valve body 42 opening operation (the discharge valve main unit 36 valve body 42 opening time) can be shortened, the regulation flush water amount required for toilet flushing can be set relatively low, and toilet flush water can be conserved.
(122) Next, referring to
(123) First,
(124)
(125) In addition,
(126) Also,
(127) Here, in the operating device 200 for the flush water tank assembly according to the third embodiment of the invention shown in
(128) First, as shown in
(129) In relation to these items, the operating device 200 for the flush water tank assembly according to the third embodiment of the invention differs in structure from the operating device 1 for the flush water tank assembly according to the above-described first embodiment of the invention on the point that the drive unit 240 comprises multiple gears inside a casing 250 (first gear 202, second gear 204, third gear 206, and hook gear 208) as a slave-side rotary member for following the rotation of the drive-side rotating member 58.
(130) In addition, as shown in
(131) Similarly, as shown in
(132) Note that in the operating device 200 according to the third embodiment of the invention a form is explained, in which a single return spring 210 is disposed on the second gear 204, as shown in
(133) In the present embodiment a form is explained, in which a return spring 210 was adopted as the slave-side rotary member biasing portion, but a spring element other than a twisted coil spring may also be adopted.
(134) First, as shown in
(135) Also, as shown in
(136) Next, as shown in
(137) This second gear 204 comprises a small gear 204a disposed within the same plane as the first gear 202 so as to be capable of meshing with the first gear 202 only, and a large gear 204b, integrally disposed on the base end of the shaft portion 250a relative to this small gear 204a, and capable of meshing with the third gear 206 only.
(138) Also, as shown in Fig. as shown in
(139) This third gear 206 is disposed within essentially the same plane as the second gear 204 and the hook gear 208 so as to be able to mesh with both 200 and 208.
(140) In addition, as shown in
(141) Next, referring to
(142) First, as shown in
(143) When the toilet flushing operation (the discharge valve main unit 36 valve body 42 valve opening operation) is started, from operating position P1 (see
(144) At the same time, the second gear 204 small gear 204a, which meshes with the first gear 202, rotates in the opposite rotational direction (reverse rotation direction 2) as forward rotation direction 1, about center axis line A2, and the large gear 204b also rotates integrally with small gear 204a in the reverse rotation direction 2 (see
(145) The third gear 206, which meshes with the with second gear 204 large gear 204b, rotates in the forward rotation direction 1 (see
(146) At this point, as shown in
(147) I.e., for the forward rotation direction 1 of the operating handle 244 from operating position P1 to operating position P3, rotation is counterclockwise (left rotation) as seen in the plan view shown in
(148) In addition, as in the operating device 1 according to the first embodiment of the invention described above and shown in
(149) Then, as in the operating device 1 according to the first embodiment of the invention described above and shown in
(150) I.e., as shown in
(151) In the operating device 200 for the flush water tank assembly at the operating position P4, shown in
(152) Simultaneously the non-second gear 204 gears 202, 206, and 208 also follow the second gear 204, and are reliably returned to the initial position (the operating position P1 as shown in
(153) The operating handle 244 is also reliably returned by the biasing force resulting from the momentum of the return spring 212 to the initial position (the operating position P1 as shown in
(154) The above places the operating device 200 for the flush water tank assembly in a standby state, able to start the next valve opening operation.
(155) It is explained that a form of the operating device 200 for the flush water tank assembly according to the above-described third embodiment of the invention in which, for the slave-side rotary member which follows using the rotation of the rotating member 58, five gears (first gear 202, second gear 200 small gears 204a and 204b, third gear 206, and hook gear 208) are interposed between the rotating member 58 and the rotary winding member 60, but the number of slave-side rotary member gears may be a multiple number other than five, so long as the operating handle 244 can be moved from operating position P1 (see
(156) According to the operating device 200 for the flush water tank assembly according to the above-described third embodiment of the invention, by performing a rotary operation to press the operating handle 244 in the forward rotation direction 1 when supply of flush water to the toilet is started, the rotating member 58 and first gear 202 rotate in a predetermined valve opening direction (forward rotation direction 1), the second gear 204 rotates in a predetermined valve opening direction (reverse rotation direction 2), the third gear 206 rotates in a predetermined valve opening direction (forward rotation direction 1), and the hook gear 208 rotates in a predetermined valve opening direction (reverse rotation direction 2).
(157) At the same time, from operating position P1 to operating position P3 the rotary winding member 60 can rotate in a predetermined valve opening direction (reverse rotation direction 2) opposite the drive-side rotating member 58 valve opening direction (forward rotation direction 1).
(158) Thereafter when the rotary winding member 60 reaches the second operating position it can, due to the release of the lock between the rotary member and the rotary winding member by the lock release portion, be rotated in a predetermined valve closing direction (forward rotation direction 1) opposite a third predetermined valve opening direction, and can be moved to the first operating position P1.
(159) I.e., when the toilet flushing operation (discharge valve main unit 36 valve body 42 valve opening operation) is started and the discharge valve main unit 36 temporarily moves to fully open position H3, at least the rotary winding member 60 and the operating wire 38 can move quickly to operating position P1, irrespective of the operating handle 244 operation, closing the discharge valve main unit 36, therefore toilet flushing can be accomplished with an amount of flush water supplied from the reservoir tank 14 to the toilet in each toilet flush controlled to a regulation amount.
(160) Also, because the time from the start of the discharge valve main unit 36 valve body 42 opening operation to the valve closing operation thereof (the discharge valve main unit 36 opening time) can be shortened and the regulation flush water amount required for toilet flushing set relatively low, toilet flush water can be conserved.
(161) In the operating device 200 for the flush water tank assembly according to the present embodiment, using a return spring 210, being a slave-side rotary member biasing portion of the drive unit 240, which applies a bias so that when the rotary winding member 60 has moved to operating position P1 after reaching operating position P3, multiple slave-side rotary members 2, being second gears 204, are returned from operating position P3 to the initial position (operating position P1) at which the toilet flushing operation (the discharge valve main unit 36 valve body 42 valve opening operation) can start; the toilet flushing operation (the discharge valve main unit 36 valve body 42 valve opening operation) is started, and the rotary winding member 60 rotates from operating position P1 in a predetermined valve opening direction (reverse rotation direction 2) to operating position P3, after which, when the lock between the rotating member 58 and the rotary winding member 60 is released and the rotary winding member 60 and operating wire 38 have moved to operating position P1, at least one of the second gears 204 among the multiple gears 202, 204, 206, and 208 can, under the biasing force of the drive unit 240 return spring 210, and in preparation for the next toilet flushing operation, be quickly and reliably restored to the initial position (operating position P1) at which a toilet flushing operation (a discharge valve main unit 36 valve body 42 valve opening operation) can be started.
(162) Note that in the operating device 1 according to the first embodiment, the operating device according to the second embodiment, and the operating device 200 according to the third embodiment of the above-described invention we described forms in which a locking projection 64 and biasing members 66 and 166 are respectively provided as locking units for locking the rotary winding members 60, 160 and the rotating member 58, and locking is effected between the locking projection 64 and the rotating member 58 locking projecting portion 58a, but it is also acceptable to provide a locking projection portion for locking on the rotary winding member 60, 160 side, and to provide a locking projection and biasing member on the rotating member 58, and it is sufficient for the locking unit to be provided on at least either the rotary member and the rotary winding member.
(163) Also, in the operating devices according to the embodiments 1 through 3 of the above-described invention, forms are explained, in which a lock releasing projecting portion 50b is disposed on the drive unit 40 and a portion of the drive unit 240 casings 50 and 250 as a lock release portion for releasing the lock between the rotary winding member 60, 160 and the rotating member 58, but the invention is not limited thereto, and it is also acceptable to provide a separate lock release portion at a location other than the casings 50 and 250, or to erect a separate locking release portion on the rotating member 58 or the rotary winding member 60 and rotary winding member 160.
(164) In addition, in the operating devices shown in the above-described first through third embodiments of the invention forms are explained, in which the operating handle 44 is disposed on the left side portion of the flush water tank assembly 2 reservoir tank 14 as seen from the front side of the toilet, but the invention is not limited thereto, and may also be of a form in which the operating handle 44 is disposed on the right side portion of the flush water tank assembly 2 reservoir tank 14 as seen from the front of the toilet.
(165) Although the present invention has been explained with reference to specific, preferred embodiments, one of ordinary skill in the art will recognize that modifications and improvements can be made while remaining within the scope and spirit of the present invention. The scope of the present invention is determined solely by appended claims.