The present invention relates to a discharge valve apparatus and one-piece flush toilet including this discharge valve apparatus, and in particular relates to a discharge valve apparatus attached to a discharge opening on a flush water tank for storing flush water for flushing a toilet, and a one-piece flush toilet including this discharge valve apparatus.
For some time, known discharge valve apparatuses attached to the discharge opening of a flush water tank for storing flush water for flushing a toilet have included those in which, as described, for example, in JP 2002-70109A (Patent Document 1), two locations on a discharge valve body portion are affixed using affixing hardware such as bolts to the discharge opening of a flush water tank on what is known as a one-piece flush toilet, in which the flush water tank portion and the toilet main body portion are integrally formed.
It is generally necessary in one-piece flush toilets to assure the greatest possible instantaneous flow rate of flush water supplied to the toilet main body portion from the flush water tank portion, but in the above-described conventional discharge valve apparatus the structure provides affixing hardware inside the discharge flow path of the discharge valve body portion, so the discharge flow path is narrowed by the area occupied by the affixing hardware. Therefore various design measures are employed in the toilet main body portion or the flush water tank portion to assure high instantaneous flow rate, such as setting a high initial water level in the flush water tank prior to start of discharge to create a high flush water head pressure, or setting a large diameter for the discharge opening.
On the other hand, known conventional flush toilets have included, in addition to the above-described one-piece flush toilets, what is known as two-piece flush toilets, wherein the flush water tank and toilet body are separately formed in advance, then the two are assembled.
In such two-piece flush toilets, unlike one-piece flush toilets, the discharge valve body portion can be affixed from the outside in advance to the discharge opening of a flush water tank with affixing members, prior to assembling the flush water tank to the toilet body, therefore no affixing hardware need be disposed inside the discharge flow path, and an appropriate flush water tank can be selected and assembled according to toilet body specifications, usage conditions, and required flush capability, so that the diameter of the flush water tank discharge opening can be standardized to predetermined measurements, and a common discharge valve apparatus can as much as possible be adopted to handle a diversity of toilet designs.
In recent years the standardization of flush water tank discharge opening diameter and of discharge valve apparatuses applied thereto has become a major issue, whether for one-piece or two-piece flush toilets, in order to respond to a greater diversity in the design of toilet bodies and flush water tanks and to the need for improved flushing performance, while also reducing manufacturing costs.
However, if the diameter of a flush water tank discharge opening for a one-piece flush toilet is made common with that of the diameter of a flush water tank discharge opening for a two-piece flush toilet, the problem that the discharge flow path is narrowed by the affixing hardware becomes unavoidable, and instantaneous flow rate diminishes compared to the case where no affixing hardware is placed in the discharge flow path, so that sufficient flushing performance cannot be attained for the toilet, making it difficult to apply a common shared discharge valve apparatus to both one-piece and two-piece flush toilets.
The present invention was undertaken to solve the above-described problems with the conventional art, and has the object of providing a discharge valve apparatus capable of supplying flush water from a flush water tank to a toilet at a high instantaneous flow rate, and of increasing toilet flushing performance and also applying standardization to various types of toilets and flush water tanks.
To accomplish the object above, the present invention is a discharge valve apparatus attached to the discharge opening of a flush water tank for storing flush water used to flush a toilet, including: a discharge portion main body attached to the discharge opening and forming the inside of a flow path for guiding flush water from an inflow opening formed at one end thereof to an outflow opening formed at the other end thereof; a discharge valve body for opening and closing the inflow opening of the discharge portion main body; and an affixing portion formed to project into the flow path of the discharge portion main body, for affixing the discharge portion main body to the flush water tank; wherein the wall surface of a flow path in the discharge portion main body at the same height as the affixing portion forms a curved portion which curves outward so as to expand the cross-sectional area of the flow path.
In the invention thus constituted, with respect to the instantaneous flow rate of flush water passing through a discharge portion main body flow path, even if an affixing portion is formed to project into the flow path of a discharge portion main body, by forming a curved portion in which the wall surface of a discharge body at the same height as the affixing portion curves outward so as to expand the flow path cross sectional surface area essentially the same instantaneous flow rate can be obtained as in the case where a different discharge portion main body, in which no affixing portion is disposed in the discharge portion main body flow path and the flow path cross sectional surface area is essentially fixed, is attached to the same diameter discharge opening in the flush water tank. In addition, even if an affixing portion is disposed inside a discharge portion main body flow path, the instantaneous flow rate of flush water flowing in the discharge portion main body flow path can be set to a high level due to the flow path space formed by the curved portion, even compared to yet another other discharge portion main body in which no curved portion is formed in the flow path wall surface. Therefore flush water flowing into the discharge portion main body flow path from a flush water tank can be efficiently supplied, and the flushing performance of the toilet improved. In addition, in the discharge valve apparatus of the present invention, with respect to both a discharge opening on a flush water tank to which a different discharge portion main body would normally be attached, in which no affixing portion is disposed in the discharge portion main body flow path, and with respect to a discharge opening on a flush water tank to which still another discharge portion main body would normally be attached, in which no curved portion is formed in the flow path wall surface, even if an affixing portion is disposed in the discharge portion main body flow path: so long as the discharge opening has the same diameter, the discharge portion main body in the discharge valve apparatus of the present invention can be easily attached. Therefore even compared to a case in which these other discharge portion bodies are attached to a discharge opening, a relatively high instantaneous flow rate can be secured without reducing the instantaneous flow rate of flush water supplied from the flush water tank to the toilet through the flow path of the discharge portion main body. Therefore standardization of the discharge valve apparatus can be applied to various toilets and flush water tanks, improving ease of use.
In the present invention the affixing portion is preferably such that the surface forming the flow path is formed in a curved shape.
In the invention thus constituted, the surface of the affixing portion forming the flow path of the discharge portion main body is formed in a curved shape, therefore when flush water in the flush water tank flows from an inflow opening in the discharge portion main body into a flow path, passing over the curved surface of the affixing portion, the flush water is able to flow smoothly along the curved surface of the affixing portion without peeling away. Therefore a relatively high instantaneous flow rate of flush water can be supplied from the flush water tank to the toilet. Hence even if an affixing portion is formed inside a discharge portion main body flow path, flush water at a relatively high instantaneous flow rate can be supplied to the toilet without impedance of the flow of flush water flowing into the discharge portion main body flow path from the flush water tank and over the affixing portion, and toilet flushing performance can be improved.
In the present invention the flow path in the discharge portion main body preferably includes an area in which the affixing portion surface and the flow path wall surface are formed in a curved shape so that the flow path surface area is essentially the same along the height direction of the affixing portion.
In the invention thus constituted, the flow path in the discharge portion main body includes an area in which the affixing portion surface and the flow path wall surface are formed in a curved shape so that the flow path cross sectional surface area is essentially the same along the height direction of the affixing portion; therefore even if an affixing portion is formed inside the flow path of a discharge portion main body, flush water is able to flow smoothly along the surface of the curved affixing portion or the wall surface of the curved flow path without peeling away, and a relatively high instantaneous flow rate can be secured. Therefore a relatively high instantaneous flow rate of flush water can be supplied to a toilet from a flush water tank through a discharge portion main body flow path, and the flushing performance of the toilet improved.
In the present invention the discharge portion main body flow path is preferably formed so that the flow path surface area expands going from the top end portion of the wall surface thereof toward the upstream inflow opening.
In the invention thus constituted, the flow path of the discharge portion main body is formed so that the flow path cross sectional surface area expands proportionally going from the top end portion of the wall surface thereof toward the upstream inflow opening, therefore flush water in the flush water tank is able to flow smoothly from the inflow opening along the flow path wall surface without peeling away when flowing into the flow path from the inflow opening of the discharge portion main body. Therefore a relatively high instantaneous flow rate of flush water can be supplied to a toilet from a flush water tank through a discharge portion main body flow path, and the flushing performance of the toilet can be improved.
Next, the present invention is a one-piece flush toilet including a flush water tank in which the discharge valve apparatus is attached to the discharge opening, and a toilet body with which this flush water tank is integrally formed.
In the invention thus constituted, flush water can be supplied at a relatively high instantaneous flow rate from the flush water tank to the toilet body, thereby improving toilet flushing performance.
In the invention thus constituted, flush water at a high instantaneous flow rate can be supplied from a flush water tank to a toilet, thereby improving toilet performance, while at the same time the invention can be applied to the standardization of various toilets and flush water tanks.
Next, using the attached drawings, we explain a discharge valve apparatus according to an embodiment of the invention.
First, referring to
As shown in
The toilet main body portion 4 of the flush toilet 2 includes a bowl portion 12 disposed at the front side thereof, a rim portion 14 formed on the top edge of this bowl portion 12, and a shelf portion 16 formed on the inside perimeter of this rim portion 14.
The inlet 18a of a discharge trap conduit 18 is opened on the bottom portion of the bowl portion 12 on the toilet main body portion 4, and this discharge trap conduit 18 includes an upwardly extending ascending pipe 18b and a downwardly extending descending pipe 18c. As can be understood from the shape of this discharge trap conduit 18, the flush toilet 2 of the present embodiment is what is known as a siphon type of flush toilet, wherein waste in the bowl portion is suctioned in and discharged in one burst outward from a discharge trap conduit using the siphon effect.
Note that the flush toilet 2 is not limited to a siphon flush toilet, and may also be applied to other types of flush toilet, such as what is known as a washdown type of flush toilet, wherein waste is pushed out by the flow effect created by the water drop inside the bowl portion.
Next, the toilet main body portion 4 includes a water conduit 20 into which flows flush water discharged from the discharge opening 10 of the flush water tank portion 6; a first rim spout opening 22 formed at the left center as seen from the front of the rim portion 14; and a second rim spout opening 24 (see
Also, water conduit 20 includes a first water conduit 20b which, after extending in the downstream direction to water conduit branching area 20a in the vicinity of the rear wall surface 14a of the rim portion 14, extends from this water conduit branching area 20a to first rim spout opening 22; and a second water conduit 20c extending from the water conduit branching area 20a to the second rim spout opening 24; the flush water in the water conduit 20 passes from the water conduit branching area 20a through the first water conduit 20b to reach the first rim spout opening 22, while also passing from the water conduit branching area 20a through the second water conduit 20c to reach the second rim spout opening 24, to be spouted from the first rim spout opening 22 and the second rim spout opening 24, respectively, so that the bowl portion 12 is flushed and waste is discharged from the discharge trap conduit 18.
Next, referring to
As shown in
The water supply apparatus 26 includes a water supply pipe 36, connected to an external water supply source (not shown) and disposed to extend upward from the bottom portion of the reservoir tank 8; a water supply valve 38, attached to the top end portion of this water supply pipe 36, for switching between spouting water into and shutting water off from the reservoir tank 8 for flush water supplied from the water supply pipe 36; and a float 40, for moving up and down in response to fluctuations in the water level inside the reservoir tank 8, thereby switching between spouting and shutting off water using the water supply valve 38.
Multiple spout openings 42 are formed on the bottom end portion of the outside perimeter of the water supply pipe 36, and flush water passing through the water supply valve 38 is spouted from the spout openings 42 into the reservoir tank 8.
In the water supply apparatus 26, when flush water in the reservoir tank 8 is discharged into the toilet by the discharge valve apparatus 1, the flush water level drops and the float 40 falls; this causes the water supply valve 38 to open so that spouting from the spout openings 42 is started, and the spouting into the reservoir tank 8 from a water supply source (not shown) outside the flush water tank portion 6 is started.
In addition, the float 40 rises when the water spouting continues and the water level inside the reservoir tank 8 rises, thereby closing the water supply valve 38 so that the spouting from spout openings 42 is shut off. By this means the flush water level inside the reservoir tank 8 is maintained at a predetermined water level when full (“full water level W0” below). Here, the full water level W0 also corresponds to the initial water level inside the reservoir tank 8 prior to the start of discharge.
Note that an explanation of the water supply apparatus 26 is omitted in this embodiment, but it includes a refill pipe (not shown) and the like, and a part of the flush water flowing out from this refill pipe (not shown) can flow into the overflow pipe 44 and be supplied through the water conduit 20 of the toilet main body portion 4 as refill water into the bowl portion 12.
As shown in
Note that in the present embodiment we explain an example in which a wire take-up apparatus 46 can be operated by the manual rotation of the operating lever 30 on the operating apparatus 28 to raise the operating wire 32, but a push button or similar means could be adopted instead of the operating lever 30, and it would also be acceptable to provide a drive means such as a motor to rotate the operating lever so that the operating lever or wire take-up apparatus is electrically driven. It would also be acceptable to adopt an operating format in which operation of the drive means is automatically controlled using a command signal from an externally set operating button or a human body detecting sensor.
Next, referring to
First,
As shown in
As shown in
In addition, as shown in
Also, as shown in
Next, as shown in
Also, the affixing portion 58 includes a pair of countersunk screw attaching portions 68, 70, integrally formed on the inside surface 52c of the side wall portion 52 of the discharge portion main body member 48 to project into the discharge flow path 50, in such a way that attaching holes 64, 66 for countersunk screws 60, 62 penetrate vertically.
In addition, the affixing portion 58 also includes a pair of affixing hardware 72, 74 respectively engaging the lower part of each of the countersunk screws 60, 62 attached to each of the countersunk screw attaching portions 68, 70.
As shown in
As shown in
Next,
As shown in
Also, as shown in
As shown in
Note that we explain for the discharge valve apparatus 1 of the present embodiment the case in which the invention is applied to a one-piece flush toilet 2 in which the toilet main body portion 4 and the flush water tank portion 6 are integrally formed, but the invention is not limited thereto, and the invention may also be easily applied to a two-piece flush toilet including a reservoir tank with the same diameter attachment hole as the attachment hole 8b on the bottom portion 8a of the reservoir tank 8 in the flush water tank portion 6 of the flush toilet 2 in the one-piece flush toilet to which it is applied.
Also, in
The flow path cross sectional surface area S′ of the discharge flow path in the discharge portion main body member of the comparative example is the flow path cross sectional surface area at the same height position P as the innermost portions C1, C2 of the discharge flow path 50 in the discharge valve apparatus 1, and is larger than the flow path cross sectional surface area S1 of the innermost portions C1, C2 of the discharge flow path 50 in the discharge valve apparatus 1 to the extent that no affixing portion 58 is disposed in the discharge flow path.
However, in the discharge valve apparatus 1 of the embodiment, the flow path cross sectional surface area S2 of the parts other than the affixing portion 58 gradually expands more than flow path cross sectional surface area S1 toward the downstream side, due to the curved portion 76 (downstream side curved portion 76a) formed on the side wall portion 52 (the inside surface 52c) of the discharge flow path 50 in the area further downstream than position P at the same height as the innermost portions C1, C2 of the discharge flow path 50. Therefore essentially the same instantaneous flow rate can be attained even if the affixing portion 58 is disposed inside the discharge flow path 50 of the present embodiment, even when compared to the case in which a discharge portion main body member in a comparative example is attached to the attachment hole 8b of the same diameter in the bottom portion 8a of the reservoir tank 8.
Even compared to a discharge portion main body member discharge flow path according to still another comparative example, in which the same affixing portion 58 as in the present embodiment is disposed on the inside surface V1 of the side wall portion of a discharge flow path in a discharge portion main body member according to the above-described comparative example, the instantaneous flow rate Q [L/min] of the flush water flowing in the discharge flow path 50 of the discharge portion main body member 48 can be set high due to the widened space inside the discharge flow path 50 formed by the curved portion 76 (downstream side curved portion 76a) of the present embodiment.
Moreover, in the discharge valve apparatus 1 of the present embodiment, if the attaching hole and discharge opening are the same as the attachment hole 8b and the discharge opening 10 of the bottom portion 8a on the reservoir tank 8 of the present embodiment with respect to the attachment hole and the discharge opening on the bottom portion of a reservoir tank, to which a discharge portion main body member according to the above-described comparative example would normally be attached, in which the same affixing portion 58 and the curved portion 76 as in the present embodiment are not formed, and also with respect to the attachment hole and the discharge opening at the bottom portion of a reservoir to which a discharge portion main body member according to still another comparative example would normally be attached, in which the same affixing portion 58 as the present embodiment is formed, and the same curved portion 76 as the present embodiment is not formed, then the discharge portion main body member 48 of the discharge valve apparatus 1 of the present embodiment can be easily attached. Therefore even compared to the case in which these other discharge portion main body members are attached to the attachment hole 8b on the bottom portion 8a of the reservoir tank 8, a relatively high instantaneous flow rate can be assured without reducing the instantaneous flow rate Q [L/min] of the flush water supplied to the toilet main body portion 4 of a one-piece flush toilet 2 from the reservoir tank 8 through the discharge valve shaft member 80 on the discharge portion main body member 48.
Also, as shown in
In the area R2 formed above the position P at the same height as the innermost portions C1, C2 of the affixing portion 58 downstream of the area R1 inside the discharge flow path 50, the flow path cross sectional surface area S6 of parts other than the affixing portion 58 is set to be smaller than the flow path cross sectional surface area S5 above that, and larger than the flow path cross sectional surface area S1 below that.
In addition, as shown in
As shown in
Moreover, a valve body 34 is disposed to be able to make contact on the valve seat 78; as shown by the dot and dash line 34 in
As shown in
Also, the discharge valve shaft member 80 is disposed to be movable up and down within a housing 82 placed above the discharge portion main body member 48. In particular, the discharge valve shaft member 80 rises by the pulling up of hook portion 80a caused by the raising of the single operating wire 32 resulting from the operation of the operating lever 30 on the operating apparatus 28. The valve body 34 rises together with the discharge valve shaft member 80, the opening discharge flow path 50 inflow opening 50b, thereby placing the discharge flow path 50 (the discharge opening 10) in an open state so that the flush water in the reservoir tank 8 is supplied to the water conduit 20 in the toilet main body portion 4.
Note that in the valve body 34 shown by a solid line, what is shown is the state wherein the valve body 34 is raised to the maximum rise height (maximum stroke) H1 relative to the valve seat 78, and the toilet flushing is started in the large flush mode. Note that in
As shown in
In addition, as shown in
Note that, as shown in
Also, as shown in
At the same time, as shown in
Also, as shown in
Next, referring to
As shown in
Flush water in the reservoir tank 8 flows from the outside to the inside of the communication openings 86 on the discharge portion main body member 48, and flows into the discharge flow path 50 from the inflow opening 50b on the discharge flow path 50, while at the same time the flush water inside the housing 82 flows into discharge flow path 50 from the inflow opening 50b on the discharge flow path 50.
Next, as shown in
At the same time, the flush water W1, which flows along the wall surface of the discharge flow path 50 (the inside surface 52c), although it does not pass close to the affixing portion 58, flows smoothly, without peeling away, along the surface of curved portion 76 to the downstream side curved portion 76a, maintaining a relatively high predetermined instantaneous flow rate (e.g., Q1=200 [L/min]) at or above a predetermined instantaneous flow rate Q1. The flush water W1 flowing along the surface of the downstream side curved portion 76a, which curves so as to spread gradually outward in the downward direction, flows out from the outflow opening 50a, maintaining a relatively high predetermined instantaneous flow rate (e.g., Q1=200 [L/min]) at or above a predetermined instantaneous flow rate Q1, and is supplied to the water conduit 20 in the toilet main body portion 4. The flush water in the water conduit 20 is respectively spouted from the first rim spout opening 22 and the second rim spout opening 24; the bowl portion 12 is flushed, and waste is discharged from the discharge trap conduit 18.
Next,
Here the horizontal axis in
As shown in
As a comparative example, when the flow path cross sectional surface area S′ is made uniform across the entire flow path from the inflow opening to the outflow opening of the discharge flow path in a discharge portion main body member, and the flow path cross sectional surface area S3 of an outflow opening 50a in discharge flow path 50 is set to a predetermined flow path cross sectional surface area S′ (e.g., S′=2300 [mm2]), instantaneous flow rate Q becomes an instantaneous flow rate Q2 (e.g., Q2=160 [L/min]) smaller than maximum instantaneous flow rate Q1, and it can be seen that compared to instantaneous flow rate Q1, it is then difficult to obtain sufficient toilet flushing performance.
Since air inside water conduit 20 of toilet main body portion 4 at the bottom of outflow opening 50a on discharge flow path 50 is more easily pulled into discharge flow path 50 in proportion to the degree to which flow path cross sectional surface area S3 is set to be larger than flow path cross sectional surface area S0, there is a tendency for instantaneous flow rate Q to drop more than maximum instantaneous flow rate Q1, so it is also clear that care should be taken not to set the flow path cross sectional surface area S3 of the outflow opening 50a on the discharge flow path 50 too high.
In a discharge valve apparatus 1 according to the above-described embodiment of the present invention, the flow path cross sectional surface area S1 of parts other than the affixing portion 58 inside the discharge flow path 50 of the discharge portion main body member 48 at the same height as the innermost portions C1, C2 of the affixing portion 58 is minimum, but on the wall surface of the side wall portion 52 (the inside surface 52c) forming the discharge flow path 50 in the area downstream of these innermost portions C1, C2, a curved portion 76 (the downstream side curved portion 76a), curved so as to gradually widen outward in the downward direction, is formed so that the flow path cross sectional surface area S2 of parts other than the affixing portion 58 gradually expands toward the downstream side, therefore even if the affixing portion 58 is formed to project into the discharge flow path 50 of the discharge portion main body member 48, a relatively high instantaneous flow rate is obtained with respect to the instantaneous flow rate Q [L/min] of the flush water passing through the discharge flow path 50 of the discharge portion main body member 48.
E.g., as in the comparative example shown by the dot and dash line V1 in
Even comparing the flow path of a discharge main body member according to still another comparative example, in which the inside surface V1 on the side wall extends vertically and the same affixing portion 58 as in the embodiment is provided in the discharge flow path, but the same curved portion 76 as in the embodiment is not formed on side wall portion inside surface V1 of the discharge flow path, a large instantaneous flow rate Q [L/min] can be set for flush water flowing through the discharge flow path 50 of the discharge portion main body member 48, due to the space inside the discharge flow path 50 formed by the curved portion 76.
Therefore flush water which has flowed into discharge flow path 50 of discharge portion main body member 48 from reservoir tank 8 can be efficiently supplied to the toilet main body portion 4 of one-piece flush toilet 2, and the flushing performance of the one-piece flush toilet 2 can be improved.
Moreover, according to a discharge valve apparatus 1 of the present embodiment, with respect to a reservoir tank discharge opening to which a discharge portion main body member not provided with the same type of affixing portion 58 as in the embodiment on the inside surface V1 of the side wall portion extending in the vertical direction of a discharge flow path would normally be attached, according to a comparative example different from the discharge portion main body member 48, so long as the discharge opening is of the same diameter as the discharge opening 10, to which the discharge valve apparatus 1 of the embodiment is applied, the discharge portion main body member 48 of the discharge valve apparatus 1 of the embodiment can be easily attached to the attachment hole in the bottom portion of the reservoir tank. With respect as well to a reservoir tank discharge opening to which a discharge portion main body member provided with the same type of affixing portion 58 on the inside surface V1 of the side wall portion extending in the vertical direction of a discharge flow path as in the embodiment, but in which the same type of curved portion 76 as in the embodiment is not formed, would normally be attached according to still another comparative example different from the discharge portion main body member 48, so long as the discharge opening is of the same diameter as the discharge opening 10 to which the discharge valve apparatus 1 of the embodiment is applied, the discharge portion main body member 48 of the discharge valve apparatus 1 of the embodiment can be easily attached to the attachment hole in the bottom portion of the reservoir tank. Therefore even compared to the case in which these other discharge portion main body members are attached to the attachment hole 8b on the bottom portion 8a of the reservoir tank 8, a relatively high instantaneous flow rate can be assured without reducing the instantaneous flow rate Q [L/min] of the flush water supplied to the toilet main body portion 4 of the one-piece flush toilet 2 from the reservoir tank 8 through the discharge flow path 50 of the discharge portion main body member 48. Therefore standardization of the discharge valve apparatus 1 can be applied to various toilets and reservoir tanks, improving ease of use.
In the discharge valve apparatus 1 according to the embodiment, because the surfaces F1, F2 of the affixing portion 58 which forms the discharge flow path 50 of the discharge portion main body member 48 are formed in a mutually contiguous curved shape, and surface F1 and F2 are both in the entirety formed as essentially a semispherical shape, when the flush water inside the reservoir tank 8 flows from the inflow opening 50b in the discharge portion main body member 48 into the discharge flow path 50 and passes over the curved surfaces F1, F2 of the affixing portion 58, that the flush water is able to flow smoothly along the curved surfaces F1, F2 of the affixing portion 58 without peeling away. Hence the flush water can be supplied at a relatively high instantaneous flow rate from the reservoir tank 8 to the toilet main body portion 4 on the one-piece flush toilet 2. Therefore even if the affixing portion 58 is formed inside the discharge flow path 50 of the discharge portion main body member 48, the flush water passing from the reservoir tank 8 into the discharge flow path 50 of the discharge portion main body member 48 and over the affixing portion 58 can be supplied at a relatively high instantaneous flow rate to the toilet main body portion 4 of the one-piece flush toilet 2 without being impeded, and the flushing performance of the one-piece flush toilet improved.
Moreover, in discharge valve apparatus 1 according to the embodiment, in the discharge flow path 50 of the discharge portion main body member 48, the surface F1 from the peaks A1, A2 of the head portions 60a, 62a of each of the screws 60, 62 to the top end portion B of the surfaces of the countersunk screw attaching portions 68, 70, and the curved portion 76 of the wall surface (inside surface 52c) of the side wall portion 52 at the same height as this surface F1, respectively includes an area R1 formed in a curved shape so that the flow path cross sectional surface area S5 of parts inside the discharge flow path 50 other than the affixing portion 58 is essentially the same along the height direction of the affixing portion 58, therefore even if the affixing portion 58 is formed inside the discharge flow path 50 of the discharge portion main body member 48, the flush water W1 is able to flow smoothly along the curved surfaces F1, F2 of the affixing portion 58 and the surface of the curved portion 76 without peeling away, so that a relatively high instantaneous flow rate can be secured. Therefore the flush water which has flowed through the discharge flow path 50 of the discharge portion main body member 48 from the reservoir tank 8 can be supplied at a relatively high instantaneous flow rate to the toilet main body portion 4 of the one-piece flush toilet 2, and the flushing performance of the one-piece flush toilet 2 can be improved.
Also, in the discharge valve apparatus 1 according the embodiment, the flow path cross sectional surface area S2 of the discharge flow path 50 is formed to expand more and more as the discharge flow path 50 on the discharge portion main body member 48 approaches the upstream inflow opening 50b from the top end portion D on the wall surface (the inside surface 52c) of the side wall portion 52 thereof, so that when the flush water W1 in the reservoir tank 8 flows into the discharge flow path 50 from the inflow opening 50b in the discharge flow path 50 of the discharge portion main body member 48, it is able to flow smoothly from the inflow opening 50b along the wall surface (the inside surface 52c) of the discharge flow path 50 without peeling away. Therefore the flush water which has flowed through the discharge flow path 50 of the discharge portion main body member 48 from the reservoir tank 8 can be supplied at a relatively high instantaneous flow rate to the toilet main body portion 4, and the flushing performance of the one-piece flush toilet 2 can be improved.
In addition, in a discharge valve apparatus 1 according to the embodiment, by attaching the discharge valve apparatus 1 to the discharge opening 10 on the flush water tank portion 6, the flush water can be supplied from the flush water tank portion 6 to the toilet main body portion 4 at a relatively high instantaneous flow rate, and the one-piece flush toilet 2 capable of improving toilet performance can be provided.
Number | Date | Country | Kind |
---|---|---|---|
2014-162762 | Aug 2014 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
1379712 | Munkel | May 1921 | A |
2068672 | Groeniger | Jan 1937 | A |
2439024 | Ruebel | Apr 1948 | A |
2449948 | Milne | Sep 1948 | A |
2671905 | Krucki | Mar 1954 | A |
4365365 | Antunez | Dec 1982 | A |
20040083542 | Oury | May 2004 | A1 |
20100218308 | Schuster | Sep 2010 | A1 |
20140059755 | Garrels | Mar 2014 | A1 |
Number | Date | Country |
---|---|---|
2002-070109 | Mar 2002 | JP |
2003-272003 | Sep 2003 | JP |
Number | Date | Country | |
---|---|---|---|
20160040417 A1 | Feb 2016 | US |