Shower cubicle system
By controlling the on/off valves and floor drain components of the shower room system through a water level detection module and a driver, the problem of water level rise caused by shower room blockage is solved, achieving both safety and convenient drainage.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GUANGDONG ROSERY BATH EQUIP CO LTD
- Filing Date
- 2022-07-18
- Publication Date
- 2026-04-14
AI Technical Summary
During use, hair, dirt, and other foreign objects can easily accumulate at the inlet of the drain assembly in existing shower enclosures, causing blockages and preventing water from draining in time. This leads to a rise in water level inside the shower enclosure, resulting in safety hazards and cleaning difficulties.
A water level detection module is used to detect the water level in the shower room. When a blockage occurs, the drive valve closes the inlet pipe to stop the water flow. At the same time, the auxiliary actuator can open the drain hole of the floor drain for temporary drainage to prevent the water level from rising further.
It effectively prevents water from overflowing in the shower room, reduces cleaning hassles, improves safety, and provides a temporary drainage solution.
Smart Images

Figure CN115247443B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of bathroom facilities technology, and in particular to a shower room system. Background Technology
[0002] Existing shower enclosures typically have shower heads and other shower components on the inner walls, and floor drains on the floor. During daily use, hair, dirt, and other debris can easily accumulate at the drain inlet, causing blockages. This prevents water from draining properly during showering, allowing the shower head and other components to continue spraying water, causing the water level in the shower enclosure to rise. Some water may overflow from the shower door, creating cleaning hassles for users and posing a safety hazard of slipping and falling. Summary of the Invention
[0003] This invention aims to at least solve one of the technical problems existing in the prior art. To this end, this invention proposes a shower enclosure system that uses a water level detection module to detect the water level in the shower enclosure. In the event of a blockage, a first actuator drives a switching valve to close the inlet pipe, thereby preventing the water level from rising further, reducing the possibility of water overflowing from the shower enclosure, minimizing cleaning hassles, and improving safety.
[0004] According to an embodiment of the present invention, a shower enclosure system includes a shower assembly, a switching valve, a first actuator, and a water level detection module. The shower assembly has a water inlet pipe, the switching valve is connected to the water inlet pipe, the first actuator is driven and connected to the switching valve, and the water level detection module is electrically connected to the first actuator. The water level detection module can detect the water level in the shower enclosure and feed back an electrical signal to the first actuator. The first actuator can drive the switching valve to operate and prevent the flow of water in the water inlet pipe.
[0005] The shower room system according to the embodiments of the present invention has at least the following beneficial effects: When the shower room is in use, the shower components supply water for the user to shower. The water level detection module detects the water level in the shower room. When a blockage occurs that affects the drainage of the shower room, the water level in the shower room rises. The water level detection module feeds back an electrical signal to the first actuator, which drives the switching valve to operate. The switching valve blocks the flow of water in the inlet pipe, thereby closing the inlet pipe and pausing the water output of the shower components. This helps to prevent the water level from rising further, reduces the possibility of water overflowing from the shower room, reduces cleaning trouble, and improves safety.
[0006] According to some embodiments of the present invention, the shower room system further includes an alarm, wherein the water level detection module is electrically connected to the alarm and is able to feed back an electrical signal to the alarm, and the alarm is able to issue an alarm.
[0007] According to some embodiments of the present invention, the shower room system further includes a reset switch electrically connected to the first driver and capable of driving the first driver to reset and / or the reset switch electrically connected to the alarm and capable of driving the alarm to turn off.
[0008] According to some embodiments of the present invention, the shower room system further includes a floor drain assembly, the floor drain assembly including a mesh cover and a second actuator, the mesh cover having a first drain hole, the floor drain assembly having a second drain hole, the second actuator being electrically connected to the water level detection module, and the second actuator being capable of driving the second drain hole to open or close.
[0009] According to some embodiments of the present invention, the drain assembly includes an installation pipe with a drainage channel inside. A drain cover is disposed at the upper end of the installation pipe. A first drainage hole is disposed on the upper side of the drain cover. A pipe portion is disposed on the lower side of the drain cover. A second drainage hole is disposed on the pipe portion. Both the first drainage hole and the second drainage hole can communicate with the drainage channel. The pipe portion extends into the drainage channel. The wall portion of the installation pipe can block the second drainage hole. A second actuator can drive the drain cover to move up and down relative to the installation pipe to release the blockage of the second drainage hole by the wall portion of the installation pipe.
[0010] According to some embodiments of the present invention, a first thread is provided on the wall of the drainage channel, and a second thread that mates with the first thread is provided on the outer side of the pipe, and the second actuator can drive the drain cover to rotate.
[0011] According to some embodiments of the present invention, the drain assembly further includes a drive gear and a transmission gear. The second driver is disposed on the side of the drainage channel. The second driver is drivenly connected to the drive gear and can drive the drive gear to rotate. The transmission gear meshes with the drive gear. The transmission gear has an avoidance opening corresponding to the drainage channel. The transmission gear is connected to the drain cover and can drive the drain cover to rotate.
[0012] According to some embodiments of the present invention, the transmission gear is provided with a first linkage part in the middle, and the mesh cover is provided with a second linkage part extending downward. The first linkage part is provided with a linkage hole, the second linkage part is inserted into the linkage hole and can move up and down relative to the first linkage part, and the wall surface of the linkage hole abuts against the outer surface of the second linkage part, so that the first linkage part can drive the second linkage part to rotate.
[0013] According to some embodiments of the present invention, the mounting tube includes a first tube body and a second tube body. The second tube body is provided with an annular groove for placing the transmission gear. The transmission gear is partially placed in the annular groove. The first tube body and the second tube body are connected and clamp the transmission gear to restrict the up and down movement of the transmission gear.
[0014] According to some embodiments of the present invention, the mounting pipe is provided with a first cavity and a second cavity, the first cavity being disposed on the side of the drainage channel, the second cavity being disposed above the first cavity, the drive gear being disposed in the first cavity, the second driver being disposed in the second cavity, the second driver being a motor, and the rotating shaft end of the second driver extending into the first cavity and connected to the drive gear.
[0015] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0016] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0017] Figure 1 This is a schematic diagram of the structure of an embodiment of the shower room system of the present invention;
[0018] Figure 2 for Figure 1 A wireframe diagram of a shower enclosure system;
[0019] Figure 3 for Figure 1 Schematic diagram of the structure of the central drain assembly;
[0020] Figure 4 for Figure 3 Exploded view of the central drain assembly;
[0021] Figure 5 for Figure 3 A schematic diagram of the cross-sectional structure of the central drain assembly;
[0022] Figure 6 for Figure 5 A cross-sectional structural diagram of another state of the floor drain component.
[0023] Figure label:
[0024] Shower assembly 100, water inlet pipe 110;
[0025] Switch valve 200, first actuator 300, water level detection module 400, alarm 500, reset switch 600, auxiliary switch 700;
[0026] Floor drain assembly 800, first drain hole 801, second drain hole 802, drain channel 803, clearance opening 804, linkage hole 805, annular groove 806, first cavity 807, second cavity 808, drain screen cover 810, pipe section 811, second thread 812, second linkage part 813, second driver 820, mounting pipe 830, first thread 831, first pipe body 832, second pipe body 833, drive gear 840, transmission gear 850, first linkage part 851. Detailed Implementation
[0027] Embodiments of the present invention are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0028] In the description of this invention, it should be understood that if directional descriptions are involved, such as up, down, etc., indicating directional or positional relationships based on the directional or positional relationships shown in the accompanying drawings, it is only for the convenience of describing this invention and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention.
[0029] In the description of this invention, if words such as several, greater than, less than, exceeding, above, below, or within appear, then several means one or more, multiple means two or more, greater than, less than, exceeding, etc. are understood to exclude the number itself, and above, below, or within are understood to include the number itself.
[0030] If the terms "first" and "second" are used only to distinguish technical features, they should not be construed as indicating or implying relative importance, or implicitly indicating the number of technical features indicated, or implicitly indicating the order of the technical features indicated.
[0031] In the description of this invention, unless otherwise explicitly defined, terms such as "set up," "install," and "connect" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this invention in conjunction with the specific content of the technical solution.
[0032] Reference Figure 1 and Figure 2A shower enclosure system includes a shower assembly 100, a switch valve 200, a first actuator 300, and a water level detection module 400. The shower assembly 100 has a water inlet pipe 110, the switch valve 200 is connected to the water inlet pipe 110, the first actuator 300 is drivenly connected to the switch valve 200, and the water level detection module 400 is electrically connected to the first actuator 300. The water level detection module 400 can detect the water level in the shower enclosure and feed back an electrical signal to the first actuator 300. The first actuator 300 can drive the switch valve 200 to actuate and prevent the flow of water in the water inlet pipe 110.
[0033] Understandably, such as Figure 1 and Figure 2 As shown, when the shower room is in use, the shower assembly 100 supplies water for the user to shower. The water level detection module 400 detects the water level in the shower room. When a blockage occurs that affects the drainage of the shower room, the water level in the shower room rises. The water level detection module 400 sends an electrical signal to the first actuator 300, which in turn drives the switch valve 200 to operate. The switch valve 200 blocks the flow of water in the inlet pipe 110, thereby closing the inlet pipe 110 and pausing the water output of the shower assembly 100. This helps to prevent the water level from rising further, reduces the possibility of water overflowing from the shower room, reduces cleaning trouble, and improves safety.
[0034] In practical applications, the shower assembly 100 may include a shower head, shower nozzle, and a water valve for adjusting flow rate. The switching valve 200 may be a shut-off valve, a ball valve, etc. The water level detection module 400 may be electrically connected to the first driver 300 via a control circuit board to control the first driver 300 to operate, stop, or reset. The water level detection module 400 may include a level tube, a level float, a Hall sensor, etc. The level tube is connected to the lower part of the shower room, and the water level in the level tube is made consistent with the water level in the shower room using the principle of communicating vessels. The level float is placed in the level tube, and the Hall sensor senses the position of the level float to detect the water level in the shower room. Alternatively, the water level detection module 400 may also include a water level detection sensor. The specific structure of the shower assembly 100, the switching valve 200, the first driver 300, and the water level detection module 400 may be set according to actual usage needs. Since the water level detection technology of this embodiment is known to those skilled in the art, it will not be described in detail here.
[0035] In some embodiments, the shower enclosure system also includes an alarm 500, a water level detection module 400 electrically connected to the alarm 500 and capable of feeding back an electrical signal to the alarm 500, and the alarm 500 capable of emitting an alarm.
[0036] Understandably, such as Figure 1 and Figure 2As shown, by setting up the alarm 500, when the water level detection module 400 detects that the water level has reached the warning value, it sends an electrical signal to the alarm 500, which then sounds an alarm to inform the user of the drainage blockage in the shower room. In conjunction with the first actuator 300, the alarm 500 sounds first, and then the first actuator 300 actuates to drive the switch valve 200 to close the water inlet pipe 110, giving the user a warning before turning off the water, making it convenient to use. In practical applications, the alarm 500 can be an audible alert or a flashing indicator light, etc., which can be set according to actual usage needs.
[0037] In some embodiments, the shower enclosure system further includes a reset switch 600, which is electrically connected to the first driver 300 and capable of resetting the first driver 300, and / or the reset switch 600 is electrically connected to the alarm 500 and capable of resetting the alarm 500.
[0038] Understandably, such as Figure 2 As shown, by setting a reset switch 600, the reset switch 600 can be electrically connected to the first driver 300 and the alarm 500 via the control circuit board. After the alarm 500 sounds and / or the first driver 300 drives the switching valve 200, the user can manually operate the reset switch 600 after dealing with the drainage blockage problem. This will control the alarm 500 to turn off the alarm and / or the first driver 300 to reset via the control circuit board, thus enabling the shower system to continue showering. In practical applications, the control parts of the water level detection module 400 and the reset switch 600 can be integrated on the same control circuit board; or the reset switch 600 itself can have a processor for simultaneously controlling the first driver 300 and the alarm 500, or separate processors for controlling the first driver 300 and the alarm 500; or, instead of a reset switch 600, a separate controller can be set up and electrically connected to the water level detection module 400, the second driver 820, and the alarm 500 to control the alarm 500 and the first driver 300. Actions and resets, etc.; or the first driver 300 and the alarm 500 can be reset by the control part of the water level detection module 400. When the water level detection module 400 detects a drop in water level, the water level detection module 400 feeds back an electrical signal to the first driver 300 and the alarm 500, causing the first driver 300 to reset and the alarm 500 to turn off the alarm. The specific configuration of the control part can be set according to actual use needs. Since the control circuit board and processor and other control technologies of the embodiments of the present invention are known to those skilled in the art, they will not be described in detail here.
[0039] In some embodiments, the shower enclosure system further includes a floor drain assembly 800, which includes a mesh cover 810 and a second actuator 820. The mesh cover 810 has a first drain hole 801, and the floor drain assembly 800 has a second drain hole 802. The second actuator 820 is electrically connected to the water level detection module 400 and is capable of driving the second drain hole 802 to open or close.
[0040] Understandably, such as Figure 1 , Figure 2 and Figure 3 As shown, the drain cover 810 is provided with multiple first drain holes 801. The shower room system also includes an auxiliary switch 700. The second driver 820 is electrically connected to the water level detection module 400 through the auxiliary switch 700. During normal use, water on the shower floor drains through the first drain hole 801 of the drain assembly 800. When the first drain hole 801 is blocked, the shower assembly 100 continues to discharge water, causing the water level in the shower room to rise. The water level detection module 400 detects the rise in water level and sends an electrical signal to the first actuator 300. The first actuator 300 then drives the switch valve 200 to close the inlet pipe 110. Since it may be inconvenient for the user to clean the blockage at the first drain hole 801 in time during showering, the user can operate the auxiliary switch 700 to activate the second actuator 820. The second actuator 820 then opens the second drain hole 802, thus enabling temporary drainage in the shower room and lowering the water level. When convenient for the user, the blockage at the first drain hole 801 can be cleared, providing the user with an option. After clearing the blockage, the auxiliary switch 700 resets the second actuator 820, which then closes the second drain hole 802 for subsequent use.
[0041] In practical applications, the auxiliary switch 700 can be equipped with a processor for controlling the second driver 820; or the control part of the water level detection module 400 and the control part of the auxiliary switch 700 can be integrated on the same control circuit board; or a separate controller can be set up to be electrically connected to the water level detection module 400, the second driver 820, and the first driver 300 respectively to control the operation and reset of the second driver 820 and the first driver 300; or the second driver 820 and the first driver 300 can both be controlled by the control part of the water level detection module 400. When the water level detection module 400 detects that the water level has risen to the warning value, the water level detection module 400 feeds back an electrical signal to the first driver 300 and the second driver 820, driving the first driver 300 to operate, the switch valve 200 to close the inlet pipe 110, and the second driver 820 to drive the second drain hole 802 to open. After clearing the blockage, the first driver 300 and the second driver 820 are reset by the reset switch 600. The specific configuration of the control part can be set according to the actual use needs.
[0042] In some embodiments, the drain assembly 800 includes an installation pipe 830, a drainage channel 803 within the installation pipe 830, a drain cover 810 disposed at the upper end of the installation pipe 830, a first drain hole 801 disposed on the upper side of the drain cover 810, a pipe portion 811 disposed on the lower side of the drain cover 810, a second drain hole 802 disposed on the pipe portion 811, both the first drain hole 801 and the second drain hole 802 being able to communicate with the drainage channel 803, the pipe portion 811 extending into the drainage channel 803, the wall portion of the installation pipe 830 being able to block the second drain hole 802, and a second actuator 820 being able to drive the drain cover 810 to move up and down relative to the installation pipe 830, so as to release the blockage of the second drain hole 802 by the wall portion of the installation pipe 830.
[0043] Understandably, such as Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown, a first drain hole 801 is provided on the upper side of the mesh cover 810, and a tube 811 is provided on the lower side of the mesh cover 810. The tube 811 has a plurality of second drain holes 802 around its peripheral wall. Both the first drain hole 801 and the second drain hole 802 can communicate with the drain channel 803. The tube 811 extends into the drain channel 803 so that the wall of the mounting tube 830 can block the second drain hole 802 and close the second drain hole 802. During installation, the upper surface of the drain cover 810 is flush with or slightly lower than the shower room floor, so that water in the shower room can enter the drain channel 803 through the first drain hole 801 and be discharged through the drain channel 803. When the first drain hole 801 is blocked, the drain cover 810 can be driven upward relative to the mounting pipe 830 by the second actuator 820 to remove the obstruction of the second drain hole 802 by the wall of the mounting pipe 830, open the second drain hole 802, and water in the shower room can enter the drain channel 803 through the second drain hole 802 and be discharged through the drain channel 803, thus achieving the function of auxiliary temporary drainage.
[0044] In practical applications, in addition to the above structure, an auxiliary drain pipe can be connected next to the mounting pipe 830. The second drain hole 802 is set at the upper end of the auxiliary drain pipe. The second driver 820 is connected to a blocking object. By driving the blocking object to move and block the second drain hole 802 or to release the blocking of the second drain hole 802, the second drain hole 802 can be closed or opened. The specific settings can be made according to the actual use needs.
[0045] In some embodiments, the wall of the drainage channel 803 is provided with a first thread 831, and the outer side of the pipe 811 is provided with a second thread 812 that mates with the first thread 831. The second driver 820 can drive the mesh cover 810 to rotate.
[0046] Understandably, such as Figure 4 , Figure 5 and Figure 6 As shown, in use, the first thread 831 and the second thread 812 engage, driving the mesh cover 810 to rotate via the second driver 820. This causes the mesh cover 810 to rotate upwards or downwards, thus achieving its vertical movement. Its structure is simple and reasonable, and the vertical movement of the mesh cover 810 is stable and reliable, making it easy to use. In practical applications, in addition to the above structure, the second driver 820 can also be a linear motor or a cylinder, directly connected to the mesh cover 810 and driving its vertical movement. The specific configuration can be adjusted according to actual usage requirements.
[0047] In some embodiments, the drain assembly 800 further includes a drive gear 840 and a transmission gear 850. A second driver 820 is disposed on the side of the drain channel 803. The second driver 820 is drivenly connected to the drive gear 840 and can drive the drive gear 840 to rotate. The transmission gear 850 meshes with the drive gear 840. The transmission gear 850 is provided with an avoidance opening 804 corresponding to the drain channel 803. The transmission gear 850 is connected to the drain screen cover 810 and can drive the drain screen cover 810 to rotate.
[0048] Understandably, such as Figure 4 , Figure 5 and Figure 6 As shown, the transmission gear 850 has a clearance opening 804 corresponding to the drainage channel 803, allowing the drainage channel 803 to be connected vertically for drainage. Through the meshing transmission between the drive gear 840 and the transmission gear 850, the second driver 820 can be placed on its side, reducing obstruction to the drainage channel 803 and facilitating waterproofing of the second driver 820. In practical applications, in addition to the above structure, a gear and rack transmission structure can also be provided, where the second driver 820 drives the rack to move, thereby driving the gear to rotate. The specific configuration can be adjusted according to actual usage requirements.
[0049] In some embodiments, the transmission gear 850 has a first linkage part 851 in the middle, and the mesh cover 810 has a second linkage part 813 extending downward. The first linkage part 851 has a corresponding linkage hole 805. The second linkage part 813 is inserted into the linkage hole 805 and can move up and down relative to the first linkage part 851. The wall surface of the linkage hole 805 abuts against the outer surface of the second linkage part 813 so that the first linkage part 851 can drive the second linkage part 813 to rotate.
[0050] Understandably, such as Figure 4 , Figure 5 and Figure 6As shown, the transmission gear 850 has a first linkage part 851 in the middle, and correspondingly, the mesh cover 810 has a downwardly extending second linkage part 813 on the lower side of the middle. The first linkage part 851 has a hexagonal linkage hole 805, and the second linkage part 813 is a matching hexagonal prism structure. The second linkage part 813 is inserted into the linkage hole 805 and can move up and down relative to the first linkage part 851. In use, the second linkage part 813 rotates with the transmission gear 850, and the wall surface of the linkage hole 805 abuts against the outer surface of the second linkage part 813, so that the first linkage part 851 can drive the second linkage part 813 to rotate, thereby realizing the rotation of the mesh cover 810. The mesh cover 810 rotates and rotates up or down through the cooperation of the first thread 831 and the second thread 812, driving the second linkage part 813 to move up and down relative to the first linkage part 851 and maintaining the transmission cooperation with the first linkage part 851, realizing the drive connection between the mesh cover 810 and the second driver 820.
[0051] In practical applications, the linkage hole 805 can also be other polygonal hole structures, elliptical hole structures, or bow-shaped hole structures, as long as the first linkage part 851 can drive the second linkage part 813 to rotate through the linkage hole 805. In addition to the above structures, a transmission gear 850 can also be fixed to the tube part 811 to increase the vertical dimension of the drive gear 840, so that when the transmission gear 850 moves up and down with the mesh cover 810, the transmission gear 850 can maintain meshing with the drive gear 840. The specific settings can be made according to the actual needs of use.
[0052] In some embodiments, the mounting tube 830 includes a first tube body 832 and a second tube body 833. The second tube body 833 is provided with an annular groove 806 for placing the transmission gear 850. The transmission gear 850 is partially placed in the annular groove 806. The first tube body 832 and the second tube body 833 are connected and clamp the transmission gear 850 to restrict the up and down movement of the transmission gear 850.
[0053] Understandably, such as Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown, the upper side of the second tube 833 is provided with an annular groove 806, and the outer ring portion of the transmission gear 850 is placed in the annular groove 806. The first tube 832 is located above the second tube 833. The first tube 832 and the second tube 833 are connected and clamp the transmission gear 850 to restrict the vertical movement of the transmission gear 850, thereby realizing the installation and connection of the transmission gear 850. Its structure is simple, the connection is stable and reliable, and it is easy to use. In practical applications, the specific structure of the mounting tube 830 can be set according to the actual needs of use.
[0054] In some embodiments, the mounting tube 830 is provided with a first cavity 807 and a second cavity 808. The first cavity 807 is located on the side of the drainage channel 803, and the second cavity 808 is located above the first cavity 807. The drive gear 840 is located in the first cavity 807, and the second driver 820 is located in the second cavity 808. The second driver 820 is a motor, and the shaft end of the second driver 820 extends into the first cavity 807 and is connected to the drive gear 840.
[0055] Understandably, such as Figure 4 , Figure 5 and Figure 6 As shown, the side of the mounting pipe 830 is provided with a first cavity 807 and a second cavity 808. The first cavity 807 is located on the side of the drainage channel 803 and communicates with the annular groove 806. The second cavity 808 is located above the first cavity 807. The drive gear 840 is located in the first cavity 807 and partially extends into the annular groove 806 to mesh with the transmission gear 850 in the annular groove 806. The second driver 820 is a motor, which is located in the second cavity 808 and its shaft end extends into the first cavity 807 and is connected to the drive gear 840 to drive the drive gear 840 to rotate and drive the transmission gear 850 to rotate. By setting the first cavity 807 and the second cavity 808, the second driver 820 and the drive gear 840 are respectively located in two different cavities, and the two cavities are side-mounted, which is beneficial for the waterproofing of the second driver 820 and improves the reliability of use. In practical applications, sealing rings or other sealing structures can be installed at the joints of various parts of the installation pipe 830 for waterproofing. The specific settings can be made according to the actual needs of use.
[0056] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A shower enclosure system, characterized in that, include: Shower assembly (100) having a water inlet pipe (110); A switch valve (200) is connected to the water inlet pipe (110); The first actuator (300) is drivenly connected to the switching valve (200); A water level detection module (400) is electrically connected to the first driver (300). The water level detection module (400) can detect the water level in the shower room and feed back an electrical signal to the first driver (300). The first driver (300) can drive the switch valve (200) to operate and prevent the flow of water in the inlet pipe (110). An auxiliary switch (700) and a drain assembly (800) are provided. The drain assembly (800) includes a drain screen cover (810) and a second actuator (820). The drain screen cover (810) has a first drain hole (801), and the drain assembly (800) has a second drain hole (802). The second actuator (820) is electrically connected to the water level detection module (400) via the auxiliary switch (700). The drain assembly (800) also includes an installation tube (830). The installation tube (830) has a drainage channel (803). The drain screen cover (810) is located at the upper end of the installation tube (830), and the first drain hole (801) is located on the upper side of the drain screen cover (810). The lower side of the mesh cover (810) is provided with a tube (811), and the second drain hole (802) is provided in the tube (811). Both the first drain hole (801) and the second drain hole (802) can communicate with the drain channel (803). The tube (811) extends into the drain channel (803). The wall of the mounting tube (830) can block the second drain hole (802). The second driver (820) can drive the mesh cover (810) to move up and down relative to the mounting tube (830) so as to release the blockage of the second drain hole (802) by the wall of the mounting tube (830), thereby driving the second drain hole (802) to open or close. During installation, the upper surface of the drain cover (810) is flush with or slightly lower than the shower room floor, allowing water in the shower room to enter the drain channel (803) through the first drain hole (801) and be discharged through the drain channel (803). When the first drain hole (801) is blocked, the second drain hole (802) can be opened by the second actuator (820), allowing water in the shower room to enter the drain channel (803) through the second drain hole (802) and be discharged through the drain channel (803), thus achieving the function of auxiliary temporary drainage.
2. The shower room system according to claim 1, characterized in that, It also includes an alarm (500), the water level detection module (400) is electrically connected to the alarm (500) and can feed back an electrical signal to the alarm (500), and the alarm (500) can issue an alarm.
3. The shower room system according to claim 2, characterized in that, It also includes a reset switch (600) electrically connected to the first driver (300) and capable of driving the first driver (300) to reset and / or the reset switch (600) electrically connected to the alarm (500) and capable of driving the alarm (500) to turn off the alarm.
4. The shower room system according to claim 1, characterized in that, The wall of the drainage channel (803) is provided with a first thread (831), and the outer side of the pipe (811) is provided with a second thread (812) that mates with the first thread (831). The second driver (820) can drive the mesh cover (810) to rotate.
5. The shower room system according to claim 4, characterized in that, The drain assembly (800) further includes a drive gear (840) and a transmission gear (850). The second driver (820) is disposed on the side of the drain channel (803). The second driver (820) is driven connected to the drive gear (840) and can drive the drive gear (840) to rotate. The transmission gear (850) meshes with the drive gear (840). The transmission gear (850) is provided with an avoidance opening (804) corresponding to the drain channel (803). The transmission gear (850) is connected to the drain cover (810) and can drive the drain cover (810) to rotate.
6. The shower room system according to claim 5, characterized in that, The transmission gear (850) has a first linkage part (851) in the middle, and the mesh cover (810) has a second linkage part (813) extending downward. The first linkage part (851) has a corresponding linkage hole (805). The second linkage part (813) is inserted into the linkage hole (805) and can move up and down relative to the first linkage part (851). The wall of the linkage hole (805) abuts against the outer surface of the second linkage part (813) so that the first linkage part (851) can drive the second linkage part (813) to rotate.
7. The shower room system according to claim 6, characterized in that, The mounting tube (830) includes a first tube body (832) and a second tube body (833). The second tube body (833) is provided with an annular groove (806) for placing the transmission gear (850). The transmission gear (850) is partially placed in the annular groove (806). The first tube body (832) and the second tube body (833) are connected and clamp the transmission gear (850) to restrict the transmission gear (850) from moving up and down.
8. The shower room system according to claim 5, characterized in that, The mounting pipe (830) is provided with a first cavity (807) and a second cavity (808). The first cavity (807) is located on the side of the drainage channel (803), and the second cavity (808) is located above the first cavity (807). The drive gear (840) is located in the first cavity (807), and the second driver (820) is located in the second cavity (808). The second driver (820) is a motor, and the shaft end of the second driver (820) extends into the first cavity (807) and is connected to the drive gear (840).
Citation Information
Patent Citations
Wireless water level control system and control method
CN103488200A
Hydrophobic floor drain of height -adjustable
CN207739360U
Adjustable floor drain for building water supply and drainage
CN216475469U