This application claims priority to Taiwanese Invention Patent Application No. 111142517, filed on Nov. 8, 2022, which is incorporated by reference herein in its entirety.
The disclosure relates to a flush toilet, and more particularly to a vortex flush toilet.
Referring to
However, water discharged from the water spout holes 103 may not thoroughly flush the bottom surface of the toilet rim 101 and a junction between the bottom surface and the bowl surface 104, thereby leaving residues of excreta in the conventional flush toilet 1.
Another conventional flush toilet, e.g., disclosed in Taiwanese Invention Patent No. I649482, includes a toilet bowl formed with a plurality of spout ports at an upper portion thereof for discharging water to induce a horizontal circulating flow by the discharge of water in a horizontal direction. However, a water guiding passage defined by the upper portion of the toilet bowl is generally leveled, i.e., a starting end and an ending end of the water guiding passage have the same height; flushing force may decrease downstream of the water guiding passage, thereby reducing flushing effect of the conventional flush toilet.
In addition, to flush the excreta away from a conventional flush toilet, a user normally needs to press a button or turn a handle that is disposed on a water tank. In a case where the user forgets to flush the toilet, a hygienic environment may not be available for subsequent users.
Therefore, an object of the disclosure is to provide a vortex flush toilet that can alleviate at least one of the drawbacks of the prior art.
According to the disclosure, a vortex flush toilet includes a toilet stool, a water tank unit, a first water discharge unit, a pipe unit, an electric switching valve, and a sensor control unit. The toilet stool includes a toilet bowl, a draining pipe, a rim unit, and a water supply. The toilet bowl has a bowl surface that defines a bowl space and that has a front region, a rear region disposed behind the front region, and two lateral regions each interconnecting the front region and the rear region. The draining pipe is connected to a lower portion of the toilet bowl. The rim unit is connected to an upper portion of the toilet bowl, and is formed with a first flushing port that is adjacent to one of the lateral regions, a second flushing port that is adjacent to another one of the lateral regions, and a third flushing port that is adjacent to the rear region. The first flushing port has a sectional area in a height direction greater than a sectional area of the second flushing port in the height direction. The sectional area of the second flushing port in the height direction is greater than a sectional area of the third flushing port in the height direction. The rim unit has a first water-guiding passage, a second water-guiding passage, a third water-guiding passage, a first water-guiding surface, a second water-guiding surface, and a third water-guiding surface. The first water-guiding passage is in fluid communication with the first flushing port, has a first starting end and a first ending end disposed downstream of the first starting end, extends from the one of the lateral regions through the front region to the another one of the lateral regions, has a width in a radial direction transverse to the height direction decreasing gradually from the first starting end to the first ending end, and is adapted to guide water flowing into the bowl space to cover at least 70% of an area of the bowl surface. The second water-guiding passage is in fluid communication with the second flushing port, is disposed downstream of the first water-guiding passage, has a second starting end and a second ending end disposed downstream of the second starting end, extends from the another one of the lateral regions to the rear region, has a width in the radial direction decreasing gradually from the second starting end to the second ending end, and is adapted to guide water flowing into the bowl space to cover at least 20% of the area of the bowl surface. The third water-guiding passage is in fluid communication with the third flushing port, is disposed downstream of the second water-guiding passage, has a third starting end and a third ending end disposed downstream of the third starting end, extends from the rear region to the one of the lateral regions, has a width in the radial direction decreasing gradually from the third starting end to the third ending end, and is adapted to guide water flowing into the bowl space to cover at least 40% of the area of the bowl surface. The first water-guiding surface defines a bottom surface of the first water-guiding passage, and has a height in the height direction decreasing gradually from the first starting end to the first ending end. A minimum distance between the first starting end and the first ending end in the height direction is a first height difference. A first inclination angle defined between the first water-guiding surface and a horizontal line that is transverse to the height direction increases gradually from the first starting end to the first ending end. A first angle difference is defined between the first starting end and the first ending end. The second water-guiding surface defines a bottom surface of the second water-guiding passage, and has a height in the height direction decreasing gradually from the second starting end to the second ending end. A minimum distance between the second starting end and the second ending end in the height direction is a second height difference that is greater than the first height difference. A second inclination angle defined between the second water-guiding surface and the horizontal line increases gradually from the second starting end to the second ending end. A second angle difference is defined between the second starting end and the second ending end, and is greater than the first angle difference. The third water-guiding surface defines a bottom surface of the third water-guiding passage, and has a height in the height direction decreasing gradually from the third starting end to the third ending end. A minimum distance between the third starting end and the third ending end in the height direction is a third height difference that is greater than the second height difference. A third inclination angle of the third water-guiding surface relative to the horizontal line increases gradually from the third starting end to the third ending end. A third angle difference is defined between the third starting end and the third ending end, and is greater than the second angle difference. The water supply defines a water chamber that is in fluid communication with the first flushing port, the second flushing port and the third flushing port, and has a water inlet that is in fluid communication with the water chamber. The water tank unit includes a tank body defining a water storage space therein. The first water discharge unit is disposed in the tank body and defines a first discharging hole disposed downstream of the water storage space. The pipe unit includes a flow-out pipe and a first flow-in pipe. The flow-out pipe is in fluid communication with the water inlet of the water supply and is disposed upstream of the bowl space. The first flow-in pipe is connected to the first water discharge unit and is disposed downstream of the first discharging hole. The electric switching valve is connected in series between the flow-out pipe and the first flow-in pipe, and is switchable between a blocked state, where fluid communication between the flow-out pipe and the first flow-in pipe is blocked, and a communicated state, where the flow-out pipe and the first flow-in pipe are fluidly communicated with each other. The sensor control unit is disposed for controlling switching of the electric switching valve between the blocked state and the communicated state.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment(s) with reference to the accompanying drawings. It is noted that various features may not be drawn to scale.
Before the disclosure is described in greater detail, it should be noted that where considered appropriate, reference numerals or terminal portions of reference numerals have been repeated among the figures to indicate corresponding or analogous elements, which may optionally have similar characteristics.
It should be noted herein that for clarity of description, spatially relative terms such as “top,” “bottom,” “upper,” “lower,” “on,” “above,” “over,” “downwardly,” “upwardly” and the like may be used throughout the disclosure while making reference to the features as illustrated in the drawings. The features may be oriented differently e.g., rotated 90 degrees or at other orientations and the spatially relative terms used herein may be interpreted accordingly.
Referring to
Further referring to
Further referring to
The draining pipe 20 is connected to a lower portion of the toilet bowl 10 for discharging of excreta.
As shown in
As shown in
In this embodiment, the first water-guiding passage 60 is adapted to guide water flowing into the bowl space 12 to cover at least 70% of an area of the bowl surface 11. The second water-guiding passage 70 is adapted to guide water flowing into the bowl space 12 to cover at least 20% of the area of the bowl surface 11. The third water-guiding passage 80 is adapted to guide water flowing into the bowl space 12 to cover at least 40% of the area of the bowl surface 11.
The rim unit 30 includes a bottom wall 31 connected to the bowl surface 11, a surrounding wall 32 connected to a periphery of the bottom wall 31 and extending from the one of the lateral regions 113 through the front region 111 to the another one of the lateral regions 114, a first partitioning wall 33 disposed on the bottom wall 31 and extending from the another one of the lateral regions 114 to the rear region 112, and a second partitioning wall 34 disposed on the bottom wall 31 and extending from the rear region 112 to the one of the lateral regions 113. The bottom wall 31 cooperates with the bottom wall 31 to define the first water-guiding passage 60. The first partitioning wall 33 cooperates with the bottom wall 31 to define the second water-guiding passage 70. The second partitioning wall 34 cooperates with the bottom wall 31 to define the third water-guiding passage 80.
The bottom wall 31 of the rim unit 30 has a first water-guiding surface 311 that defines a bottom surface of the first water-guiding passage 60, a second water-guiding surface 312 that defines a bottom surface of the second water-guiding passage 70, and a third water-guiding surface 313 that defines a bottom surface of the third water-guiding passage 80.
The surrounding wall 32 has an upstream portion 321 and a downstream portion 322 disposed downstream of the upstream portion 321. The first partitioning wall 33 has a first starting portion 331 that is adjacent to the downstream portion 322, that is disposed at an outer side of the downstream portion 322 in the radial direction, and that is spaced apart from the downstream portion 322 to define the second flushing port 51 and the second starting end 71 of the second water-guiding passage 70 therebetween, and a first ending portion 332 that is disposed downstream of the first starting portion 331. The second partitioning wall 34 has a second starting portion 341 that is disposed adjacent to the first ending portion 332, that is disposed at an outer side of the first ending portion 332 in the radial direction, and that is spaced apart from the first ending portion 332 to define the third flushing port 52 and the third starting end 81 of the third water-guiding passage 80 therebetween, and a second ending portion 342 that is disposed adjacent to the upstream portion 321, that is disposed at an inner side of the upstream portion 321 in the radial direction, and that is spaced apart from the upstream portion 321 to define said first flushing port 50 and the first starting end 61 of the first water guiding passage 60 therebetween.
Further referring to
Further referring to
As shown in
In this embodiment, the sectional area of the first flushing port 50 in the height direction (Z) is greater than the sectional area of each of the second flushing port 51 and the third flushing port 52 in the height direction (Z). The first flushing port 50 is adapted for 60% of water in the water chamber 41 to pass through, e.g., per flush, the second flushing port 51 is adapted for 40% of the water in the water chamber 41 to pass through, and the third flushing port 52 is adapted for 10% of the water in the water chamber 41 to pass through.
Referring back to
In this embodiment, the tank body 210 has an inner tank body 211 defining the water storage space 213, and an outer tank body 212 spaced apart from and surrounding the inner tank body 211 to define therebetween a clearance for passage of an electric wire (not shown).
The cover member 220 is disposed on the top of the outer tank body 212, and includes a base segment 221 and an upright segment 222 extending upwardly from the base segment 221. The base segment 221 is configured to cover the water storage space 213, and is formed with a wire hole 223 that is in spatial communication with the clearance formed between the inner tank body 211 and the outer tank body 212. The upright segment 222 defines therein an installation space 224 that is in spatial communication with the wire hole 223.
The first water discharge unit 300 is disposed in the tank body 210 and defines a first discharging hole 320 disposed downstream of the water storage space 213. In this embodiment, the first water discharge unit 300 is mounted to a bottom wall of the inner tank body 211 and extends through the inner tank body 211 to permit the first discharging hole 320 to be disposed downstream of the water storage space 213.
The second water discharge unit 310 is mounted to the tank body 210 and defines a second discharging hole 330 disposed downstream of the water storage space 213. In this embodiment, the second water discharge unit 310 is mounted to the bottom wall of the inner tank body 211 and extends through the inner tank body 211 to permit the second discharging hole 330 to be disposed downstream of the water storage space 213.
As shown in
In this embodiment, the flow-out pipe 410 extends upwardly from the water inlet 42 into the outer tank body 212, and the first flow-in pipe 420 and the second flow-in pipe 430 are disposed in the outer tank body 212 and disposed between the inner tank body 211 and the water supply 40.
The electric switching valve 500 is connected in series between the flow-out pipe 410 and the first flow-in pipe 420. In this embodiment, the electric switching valve 500 is disposed in the outer tank body 212.
Referring to
As shown in
On the contrary, as shown in
Referring to
In this embodiment, the sensor control unit 600 includes a sensor 610 disposed in the installation space 224, and a microcomputer control device 620 disposed on the electric switching valve 500 and electrically connected to the sensor 610 and the electric switching valve 500 so as to permit a sensing signal from the sensor 610 to be transmitted to the electric switching valve 500. The sensor 610 is an ultrasonic sensor or an infrared sensor, and has a sensor head 611 exposed outwardly from the upright segment 222. In one embodiment, the microcomputer control device 620 may be integrally formed with the drive motor 530 of the electric switching valve 500. It should be noted that the number of the sensor 610 may be more than one in other embodiments, and is not limited to this example.
In this embodiment, the microcomputer control device 620 is in signal communication with the sensor 610 and the electric switching valve 500 so as to permit the sensing signal from the sensor 610 to be transmitted to the electric switching valve 500. It can be appreciated that the microcomputer control device 620 may be in signal communication with the sensor 610 through an electrical wire (not shown) that is disposed in the clearance between the inner tank body 211 and the outer tank body 212. In one embodiment, the microcomputer control device 620 may be set to transmit a control signal to the drive motor 530 a predetermined time (for example, 3 seconds) after the microcomputer control device 620 has received the sensing signal from the sensor 610. Furthermore, the microcomputer control device 620 may be set to keep the electric switching valve 500 in the communicated state for a predetermined period (for example, 5 seconds to 10 seconds), thereby controlling an amount of water for flushing the toilet bowl 100. It should be noted that the microcomputer control device 620 includes a microcontroller or a controller such as, but not limited to, a single core processor, a multi-core processor, a dual-core mobile processor, a microprocessor, a microcontroller, a digital signal processor (DSP), a field-programmable gate array (FPGA), an application specific integrated circuit (ASIC), a radio-frequency integrated circuit (RFIC), etc.
As shown in
In this embodiment, the flush valve 700 includes a valve seat 710 disposed in the water storage space 213 and mounted on an inner surface of the inner tank body 211 of the tank body 210 to permit the valve seat 710 to be disposed upstream of the second discharge hole 330, and a flapper 720 disposed in the water storage space 213. The valve seat 710 is connected to the second water discharge unit 310 and is formed with a water discharging hole 711 in fluid communication with the second discharge hole 330. The flapper 720 is pivotably mounted to the valve seat 710 and is movable between a closed position and an open position.
As shown in
As shown in
Referring to
Specifically, the manual actuating unit 800 includes a handle 820 mounted on an outside of the outer tank body 212 of the tank body 210, a lever 810 disposed in the water storage space 213 of the inner tank body 211 of the tank body 210 and connected to be actuated by the handle 820, and a chain 830 interconnecting the lever 810 to the flapper 720 such that when the handle 820 is manually actuated to operate the lever 810, the chain 830 is pulled by the lever 810 to thereby move the flapper 720 to the open position from the closed position and thus move the flush valve 700 to the open state from the closed state.
The water inlet valve 900 is mounted in the inner tank body 211 inside the water storage space 213, and has a bottom end extending outwardly of the inner tank body 211 of the tank body 210.
The float ball 910 is disposed inside the water storage space 213, and is pivotally movable relative to a top end of the water inlet valve 900 for controlling the water inlet valve 900.
As shown in
As shown in
Referring to
In addition, in a case where the electric switching valve 500 is unable to be driven, e.g., under a blackout condition, a user may manually press down the handle 820 of the manual actuating unit 28 to operate the lever 810 and the chain 830, to thereby move the flapper 720 to the open position, i.e., to switch the flush valve 700 to the open state (see
Through the above description, the advantages of the present disclosure are summarized as follows:
First, as compared to the conventional flush toilets described in the background section, by virtue of the design of the height difference (i.e., the first height difference (H1) defined by the height of the first water-guiding surface 311 that decreases gradually from the first starting end 61 to the first ending end 62, the second height difference (H2) defined by the height of the second water-guiding surface 312 that decreases gradually from the second starting end 71 to the second ending end 72, and the third height difference (H3) defined by the height of the third water-guiding surface 313 that decreases gradually from the third starting end 81 to the third ending end 82), in cooperation with the design of the angle difference (i.e., the first angle difference (θ1) defined between the first starting end 61 and the first ending end 62 of the first water-guiding passage 60, the second angle difference (θ2) defined between the second starting end 71 and the second ending end 72 of the second water-guiding passage 70, and the third angle difference (θ3) defined between the third starting end 81 and the third ending end 82 of the third water-guiding passage 80), flushing forces of water located downstream of the first water-guiding passage 60, the second water-guiding passage 70, and the third water-guiding passage 80 may be effectively increased to enhance flushing effect at the rear region 112 of the bowl surface 11.
Second, the design of the first water-guiding passage 60, the second water-guiding passage 70, and the third water-guiding passage 80 that are arranged sequentially from the upstream portion 321 to the downstream portion 322 may facilitate an increase of the vortex flows formed in the toilet bowl 10. Specifically, the vortex flow (F3) in the second water-guiding passage 70 strengthens the vortex flow (F1) downstream of the first water-guiding passage 60, and the vortex flow (F5) in the third water-guiding passage 80 strengthens the vortex flow (F3) downstream of the second water-guiding passage 70. In this way, strength of each of the vortex flows (F1, F3, F5) and the flushing vortex flows (F2, F4, F6) is increased to enhance flushing effect on the bowl surface 11 of the toilet bowl 10.
Third, since the first water-guiding passage 60 flushes the front region 111 and the lateral regions 113, 114, the second water-guiding passage 70 flushes the rear region 112 and a rear portion of the lateral region 114, the third water-guiding passage 80 flushes the rear region 112 and a rear portion of the lateral region 113, the entire bowl surface 11 may be comprehensively and thoroughly flushed without leaving excreta in the toilet bowl 10.
Fourth, by virtue of the design of the third height difference (H3) being greater than the second height difference (H2), the second height difference (H2) being greater than the first height difference (H1), the third angle difference (θ3) being greater than the second angle difference (θ2), and the second angle difference (θ2) being greater than the first angle difference (θ1), a potential energy of water at the downstream of each of the first water-guiding passage 60, the second water-guiding passage 70, and the third water-guiding passage 80 is increased because of the height difference. In this way, the flushing force of water is increased to urge the excreta in the toilet bowl 10 to sink downwardly and then to be discharged from the draining pipe 20 to a septic tank or a sewage piping system (not shown).
Fifth, by virtue of the design of the width of each of the first water-guiding passage 60, the second water-guiding passage 70, and the third water-guiding passage 80 that decreases gradually from a respective one of the first, second, and third starting ends 61, 71, 81 to a corresponding one of the first, second, and third ending ends 62, 72, 82, a flow rate of water at the downstream of each of the first water-guiding passage 60, the second water-guiding passage 70, and the third water-guiding passage 80 is increased.
Sixth, with the provision of the pipe unit 400 in cooperation with the electric switching valve 500, and the sensor control unit 60 for automatically controlling the switch of the electric switching valve 500 between the blocked state and the communicated state, automatic flushing of the vortex flush toilet of the embodiment may be achieved. Therefore, the vortex flush toilet may be useful for maintaining a hygienic environment for the next user.
Seventh, under a blackout condition or malfunction of the electric switching valve 500, the manual actuating unit 800 may be manually operated to switch the flush valve 700 to the open state for flushing. Thus, the vortex flush toilet of the embodiment is still operable under the blackout condition.
Eighth, since the communication hole 521 of the valve gate 520 of the electric switching valve 50 has a dimension the same as an inner diameter of each of the flow-out pipe 410 and the first flow-in pipe 420, when the electric switching valve 500 is switched to the communicated state, a sufficient amount of water from the flow-out pipe 410 is provided for flushing the toilet bowl 10.
Ninth, the microcomputer control device 620 of the sensor control unit 600 may be set to control the predetermined period during which the electric switching valve 500 is kept in the communicated state, thereby controlling the flushing time period and the amount of the water for flushing the toilet stool 100. Therefore, the microcomputer control device 620 may be useful for water-saving.
In summary, the vortex flush toilet of the present disclosure not only effectively increases the flushing force of water at the downstream of each of the first water-guiding passage 60, the second water-guiding passage 70, and the third water-guiding passage 80 to urge the excreta in the toilet bowl 10 to sink downwardly, but the vortex flows (F1, F3, F5) and the flushing vortex flows (F2, F4, F6) are also generated to enhance the flushing effect at the rear region 112 of the bowl surface 11. In addition, the vortex flush toilet may flush automatically, and is still operable under a blackout condition.
In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment(s). It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to “one embodiment,” “an embodiment,” an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects; such does not mean that every one of these features needs to be practiced with the presence of all the other features. In other words, in any described embodiment, when implementation of one or more features or specific details does not affect implementation of another one or more features or specific details, said one or more features may be singled out and practiced alone without said another one or more features or specific details. It should be further noted that one or more features or specific details from one embodiment may be practiced together with one or more features or specific details from another embodiment, where appropriate, in the practice of the disclosure.
While the disclosure has been described in connection with what is(are) considered the exemplary embodiment(s), it is understood that this disclosure is not limited to the disclosed embodiment(s) but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
---|---|---|---|
111142517 | Nov 2022 | TW | national |