The present invention relates to the technical field of valve structures, and in particular, to a valve control device.
In daily life, valves are critical devices for controlling the opening and closing of a water path and a gas path in families. There are manual valves and electric valves in the prior art. Generally, electric valves are highly automated, safe, and reliable and have been widely used. However, electric valves require relatively high costs. A large number of manual valves are still used at present. In a family that uses a manual valve, if a water leakage situation, a gas leakage situation or the like occurs when nobody is at home, the property in the family may suffer damage and in severe cases a safety accident may occur. If the manual valve is to be replaced with an electric valve, it is required to purchase the electric valve and also to remodel a pipeline, resulting in relatively high costs and a relatively complex remodeling process.
Therefore, a person skilled in the art strives to develop a valve control device that can be directly mounted, adjusted, and used without remodeling an existing valve structure, can be conveniently detached and mounted, and can monitor the status and remote operation of a valve in real time, such that the valve can be turned off in time when nobody is present.
In view of the foregoing deficiencies in the prior art, the technical problem to be resolved by the present invention is to provide a valve control device, so that an existing manually operated valve can be monitored in real time and remotely operated, to avoid that a person is not on site and cannot handle a gas leakage situation, a water leakage situation or the like in time.
To achieve the foregoing objective, the present invention provides a valve control device, comprising:
a drive unit;
an execution mechanism, connected to the drive unit by a transmission mechanism, and configured to be able to be attached to a valve and be able to move under the drive of the drive unit, so as to drive the valve to rotate; and
a control module, connected to the drive unit, and configured to be able to control the drive unit.
In some implementations, optionally, the device further comprises:
a communication module, connected to the control module, and configured to be able to: receive a control signal about the valve, and provide the control signal to the control module, wherein
the control module is further configured to be able to respond to the control signal provided by the communication module to correspondingly control the drive unit according to the control signal.
In some implementations, optionally, the device further comprises:
a detection module, configured to be able to: detect position information of the valve, and provide the position information to the control module, wherein the control module is further configured to be able to correspondingly control the drive unit according to the position information.
In some implementations, optionally, the detection module comprises a current detection unit, the current detection unit is connected to the drive unit, and the current detection unit is configured to be able to detect whether a current of the drive unit is greater than a preset value so as to generate information about whether the valve rotates to a preset position.
In some implementations, optionally, the detection module comprises a trigger unit, and the trigger unit is configured to be able to be triggered to generate a signal indicating that the valve rotates in position when the valve rotates to the preset position.
In some implementations, optionally, the valve control device further comprises a trigger member, and the trigger member is configured to be able to: rotate along with the execution mechanism, and trigger the trigger unit when the valve rotates to the preset position.
In some implementations, optionally, the transmission mechanism comprises:
a driving gear, connected to the drive unit, and capable of rotating under the drive of the drive unit; and
at least one driven gear, capable of correspondingly rotating along with the drive of the driving gear, wherein one of the at least one driven gear is connected to the execution mechanism and is provided with the trigger member.
In some implementations, optionally, the trigger member comprises a first protrusion and a second protrusion, the first protrusion is configured to be able to trigger the trigger unit when the valve is located at a first position; and the second protrusion is configured to be able to trigger the trigger unit when the valve is located at a second position.
In some implementations, optionally, the at least one driven gear comprises:
a first driven gear, engaged with the driving gear; and
a second driven gear, engaged with the first driven gear, wherein the second driven gear is connected to the execution mechanism, and the second driven gear is provided with the trigger member.
In some implementations, optionally, the valve control device further comprises a switching mechanism, and the switching mechanism is connected to the first driven gear.
In some implementations, optionally, the switching mechanism comprises a pull shaft, an elastic element, and a pull ring, wherein the first driven gear is sheathed over the pull shaft and configured to be able to move along with the pull shaft, the elastic element is configured to apply an elastic force to the first driven gear, and the pull ring is disposed at an end portion, away from the first driven gear, of the pull shaft; and the switching mechanism is configured to: when the pull shaft is applied with a force in a direction away from the first driven gear, enable the first driven gear to be driven by the pull shaft and overcome the elastic force so as to be disengaged from the second driven gear.
In some implementations, optionally, the execution mechanism comprises a first block sheet and a second block sheet that are arranged opposite each other, and an accommodating space capable of placing a handle is formed between the first block sheet and the second block sheet.
In some implementations, optionally, the execution mechanism is provided with an adjustment mechanism, and the adjustment mechanism is configured to be able to adjust a gap between the first block sheet and the second block sheet.
In some implementations, optionally, the adjustment mechanism comprises: a first slide groove provided in the first block sheet, a second slide groove provided in the second block sheet, and a locking portion, wherein the first slide groove and the second slide groove are configured to be disposed in an overlapping cross manner, and the locking portion passes through the first slide groove and the second slide groove.
In some implementations, optionally, the valve control device further comprises a fixing mechanism and a shell, wherein a housing and a bottom plate form an accommodating cavity; the drive unit, the transmission mechanism, and the control module are all located in the shell; and the shell is fixed on the fixing mechanism, and the fixing mechanism is configured to be able to be fixedly connected to a pipe connected to the valve.
In some implementations, optionally, the fixing mechanism comprises an integrally molded support, the support comprises a first fixing portion and a second fixing portion, the first fixing portion is connected to the bottom plate, and the second fixing portion is configured to be able to be fixed on the pipe.
In some implementations, optionally, the second fixing portion comprises a first V-shaped fastening surface disposed at an end portion of the support and configured to be attached to the pipe.
In some implementations, optionally, the second fixing portion further comprises two opposite slots provided in an upper side of the first V-shaped fastening surface; and the second fixing portion is configured to be attached to the pipe and to pass through the two slots by using a fastening belt.
In some implementations, optionally, the fixing mechanism further comprises a fastening sheet, and the fastening sheet is configured to be disposed on the pipe relative to the first V-shaped fastening surface and to be connected to the first V-shaped fastening surface by a fastening member.
In some implementations, optionally, the second fixing portion comprises an insertion sheet disposed at an end portion of the support, the fixing mechanism further comprises a fastening base, and the fastening base comprises an insertion slot matching the insertion sheet, a second V-shaped fastening surface configured to be attached to the pipe, and two slots for a fastening belt to pass through.
The present invention further provides a method for controlling a valve using a valve control device, the valve control device being mounted on the valve, wherein the method comprises:
receiving a control signal;
detecting a switching status of the valve;
driving an execution mechanism, to turn on or off the valve;
detecting a current; and
determining whether the current reaches a stall current,
where when the current reaches the stall current, the turning on or off of the valve is ended.
In some implementations, optionally, the control signal is from a leakage detection device or a user terminal.
In some implementations, optionally, the valve control device receives the control signal in an electrical connection manner, a wired network communication manner or a wireless communication manner.
In some implementations, optionally, the control signal comprises an instruction of turning on the valve or an instruction of turning off the valve.
In some implementations, optionally, the method further comprises: when the switching status satisfies the turn-on instruction or turn-off instruction, continuously monitoring the switching status.
In some implementations, optionally, the method further comprises: when the current does not reach the stall current, repeatedly performing the following steps: detecting a current, and determining whether the current reaches the stall current.
In some implementations, optionally, the valve control device detects the current by using a current detection unit.
In some implementations, optionally, the valve control device comprises a trigger member and a trigger unit, and the trigger member is configured to be able to trigger the trigger unit when the valve rotates to a preset position; and the valve control device is triggered by the trigger unit to detect the current.
The valve control device according to the present invention has the following beneficial technical effects:
1. The valve control device can be mounted on an existing manually operated valve to implement real-time monitoring and remote operation. When a gas leakage situation, a water leakage situation or the like occurs, the valve can be turned off in time, to avoid that a person is not on site and cannot handle a situation.
2. The valve control device is applicable to a universal existing valve structure without detaching and mounting an existing valve, can be directly mounted on the valve for adjustment and use, and can be conveniently detached.
3. An integral support structure is used for better fastening and higher stability.
4. A feedback component is used, so that a movement status of a valve can be fed back in time during operation, thereby performing operations accurately and effectively according to instructions. When the device is out of power or a person is present near the valve, a manual operation can be implemented.
The concept, the specific structure and the technical effects of the present invention will be further described in conjunction with the accompanying drawings in order to fully understand the objects, features and effects of the present invention.
In the figures: 100—Control portion, 101—First circuit board, 102—Second circuit board, 103—Power cable, 104—Control module, 105—Communication module, 106—Detection module, 107—Wireless communication link, 108—Operation terminal, 109—Leakage detection device, 110—Touch switch, 111—Button, 120—Drive unit, 121—Drive unit output shaft, 131—Driving gear, 132—First driven gear, 133—Second driven gear, 134—Nut, 135—First protrusion, 136—Second protrusion, 137—Second driven gear output shaft, 138—Avoidance slot, 141—Pull shaft, 142—Elastic element, 143—Pull ring, 144—Flange, 151—Housing, 152—Bottom plate, 153—Second cavity, 154—Fixing column, and 155—First cavity;
200—First execution mechanism, 201—First block sheet, 202—Second block sheet, 210—Second execution mechanism, 213—Locking portion, 214—Pin shaft, 215—First slide block sheet, 216—First slide portion, 217—First block portion, 218—First slide groove, 219—Third slide groove, 220—Locking knob, 225—Second slide block sheet, 226—Second slide portion, 227—Second block portion, and 228—Second slide groove;
300—Fixing mechanism, 301—First support, 302—First fixing portion, 303—Second fixing portion, 304—First V-shaped fastening surface, 305—Ear portion, 306—First fastening belt, 307—First screw, 308—Slot, 310—Second support, 311—Second V-shaped fastening surface, 312—First flank portion, 320—Fastening sheet, 321—Third V-shaped fastening surface, 322—Second flank portion, 313—Second screw, 331—Third support, 332—Insertion sheet, 340—Fastening base, 341—Fourth V-shaped fastening surface, 342—Insertion slot, 343—Second fastening belt, and 344—Pin; and
400—Valve assembly, 410—Valve, 420—Handle, 430—Pipe, and 440—Rotating shaft.
Preferred embodiments of the present invention are described below with reference to the drawings of the description to make the technical contents clearer and easier to understand. The present invention can be embodied in various forms of embodiments, and the scope of protection of the present invention is not limited to the embodiments mentioned herein.
In the drawings, the same reference numeral indicates components having the same structure, and similar reference numerals indicate assemblies having similar structures or functions throughout. The size and thickness of each assembly shown in the figures are shown arbitrarily, and the present invention does not define the size and thickness of each assembly. In order to make the illustration clearer, the thickness of the component in some places of the figures is appropriately exaggerated.
As shown in
In the valve assembly 400 shown in
As shown in
A block diagram of a functional structure of the circuit board is shown in
The drive unit 120 is connected to the first circuit board 101, and the drive unit 120 is preferably a motor. The drive unit 120 is fixed on the bottom plate 152 by a fixing column 154. The transmission mechanism is disposed on the bottom plate 152. A drive unit output shaft 121 is connected to the first execution mechanism 200 by the transmission mechanism, so that the rotation of the motor is transferred to the first execution mechanism 200.
As shown in
The valve control device in this embodiment further comprises a switching mechanism can switch the valve control device from an electric control mode to a control mode of manually rotating a valve. Specifically, as shown in
The detection module 106 is configured to feed back a rotational status of the valve 410 and at least comprises one of a current detection unit and a non-current detection unit.
The current detection unit is connected to the control module 104 and is configured to detect a current of the drive unit 120. When the current is greater than a preset current value, it may be determined that the valve 410 rotates to the preset position, for example, a position at which the valve is turned off.
The non-current detection unit is preferably a trigger unit. In some implementations, an angle sensor may be used. When the angle sensor rotates to a preset angle, a signal transmission device sends a signal indicating that the valve rotates in position, to feed back a rotational status of the valve. In some implementations, a combination of a trigger member and the trigger unit is used. For example, the trigger member is disposed in the valve control device. The trigger member moves together with the first execution mechanism 200. When the valve 410 is in an on position, the trigger member is in contact with the trigger unit and sends a status signal of the valve 410. When the valve 410 is in an off position, the trigger member is in contact with the trigger unit and sends a status signal of the valve 410. Preferably, as shown in
As shown in
The fixing mechanism 300 is configured to mount the control portion 100 and at the same time implement a connection to the pipe 430, so as to fix the valve control device. As shown in
The first support 301 may be preferably integrally molded, thereby achieving more stable fastening.
As shown in
receiving a control signal;
detecting a switching status of the valve;
driving an execution mechanism, to turn on or off the valve;
detecting a current; and
determining whether the current reaches a stall current,
where when the current reaches the stall current, the turning on or off of the valve is ended.
Specifically, the control portion 100 receives from an external control signal. The control signal may comprise an instruction of turning on the valve 410 or an instruction of turning off the valve 410. The control portion 100 responds to the control signal to determine the current switching status of the valve 410. If the control signal comprises an instruction of turning on the valve 410 and the valve 410 is in an on state, that is, the switching status of the valve 410 satisfies an instruction of turning on the valve 410, the control portion 100 continuously monitors the switching status of the valve 410. Alternatively, the control signal comprises an instruction of turning off the valve 410 and the valve 410 is in an off state, that is, the switching status of the valve 410 satisfies an instruction of turning off the valve 410, the control portion 100 continuously monitors the switching status of the valve 410. In some implementations, the control signal is from a leakage detection device. The leakage detection device may be connected to the valve control device in an electrical connection manner. When it is detected that leakage occurs, an electrical signal is sent to the valve control device. The leakage detection device may alternatively communicate with the valve control device by using a wired communication network or a wireless communication network. In some implementations, a user may use a terminal to send the control signal to the valve control device. For example, the user uses an APP installed on a smart phone to communicate with the valve control device and send the control signal, to remotely control the valve 410.
If the control signal comprises an instruction of turning on the valve 410 and it is detected that the valve 410 is in an off state, the control portion 100 starts to control the drive unit to drive the first execution mechanism 200 to move, so that the handle 420 is rotated to turn on the valve 410. In the process of turning on the valve, the control portion 100 detects whether a current reaches the stall current to determine whether the valve is rotated in position. In some implementations, the current detection unit is used to detect the current and determine whether the current reaches the stall current. In some implementations, a trigger element is used for detection. When the trigger element is triggered, it represents that the handle 420 has moved to an on position. In addition, the current detection unit may be used again in this case to detect whether the current reaches the stall current. If the control signal comprises an instruction of turning off the valve 410, execution steps of the instruction are the same as the operation of turning on the valve.
For the valve control device shown in this embodiment, the integrally molded first support 301 is mounted on the pipe 430 in a fastening belt manner. The control portion 100 is mounted on the first support 301. In addition, the control portion 100 receives a signal and controls the first execution mechanism 200 according to the signal to rotate the handle 420, to intelligently and remotely control an existing manual valve assembly, thereby avoiding a water leakage situation or a gas leakage situation caused by untimely response. The working principle of turning off the valve by the valve control device in this embodiment is as follows: It is determined whether an external signal, for example, a signal from the leakage detection device 109 or a control signal of the operation terminal 108, is received. If the external signal is received, a process of turning off the valve starts to be entered. When the valve starts to be turned off, the control portion 100 controls the drive unit 120 to drive the first execution mechanism 200 to rotate. At the same time, a current is detected, and it is determined whether the stall current when the valve is turned off is reached. If the stall current is reached, it represents that the valve has been turned off, and work ends. If the detected current represents that the stall current is still not reached, it represents that the valve has not been turned off, and the first execution mechanism 200 continues to be controlled to turn off the valve.
In Embodiment 1, the first execution mechanism 200 can only be attached to a handle of a specific size and is not applicable to handles of different sizes. To resolve this problem, in this embodiment, a second execution mechanism 210 is provided with an adjustment mechanism. The adjustment mechanism comprises a locking portion 213, a first slide block sheet 215, and a second slide block sheet 225. The first slide block sheet 215 is L-shaped and comprises a first slide portion 216 and a first block portion 217. The first slide portion 216 is obliquely provided with a first slide groove 218. The second slide block sheet 225 has a structure similar to that of the first slide block sheet 215 and comprises a second slide portion 226, a second block portion 227, and a second slide groove 228 obliquely disposed on the second slide portion 226. The first slide block sheet 215 and the second slide block sheet 225 are disposed opposite at an end portion of the second execution mechanism 210. The first block portion 217 and the second block portion 227 are opposite to form a space for accommodating the handle 420. The first slide portion 216 and the second slide portion 226 are both superimposed on the second execution mechanism 210 and are slidable in a direction perpendicular to a lengthwise direction of the second execution mechanism 210. In this case, the first slide groove 218 and the second slide groove 228 are in a cross state. The locking portion 213 comprises a locking knob 220 and a pin shaft 214. The pin shaft 214 passes through the first slide groove 218, the second slide groove 228, and a third slide groove 219 on the second execution mechanism 210 to be connected to the locking knob 220. A threaded connection is used between the locking knob 220 and the pin shaft 214 to implement tightening or loosening. The locking knob 220 is loosened, and the pin shaft 214 moves in the lengthwise direction of the second execution mechanism 210. Because of the limiting effect of the first slide groove 218 and the second slide groove 228, the first slide block sheet 215 and the second slide block sheet 225 can slide relative to each other, so that the distance between the first block portion 217 and the second block portion 227 can be increased or reduced, to adapt to handles 420 of different sizes.
In this embodiment, the fixing mechanism 300 comprises a second support 310 and a fastening sheet 320 separate from the second support 310. The first fixing portion of the second support 310 is configured to fix the control portion 100. The second fixing portion of the second support 310 is located at an end portion of the second support and is configured to be fixed on the pipe 430. The second fixing portion of the second support 310 is provided with a second V-shaped fastening surface 311 and may be attached to the pipe 430. The fastening sheet 320 cooperates with the second V-shaped fastening surface 311 on the second support 310. As shown in
As shown in
The specific preferred embodiment of the present invention is described in detail as above. It should be appreciated that a person of ordinary skill in the art would be able to make modifications and variations in accordance with the concept of the present invention without involving any inventive effort. Therefore, any technical solution that can be obtained by a person skilled in the art by means of logical analysis, reasoning or limited trials on the basis of the prior art and according to the concept of the present invention should be included within the scope of protection of the claims.
The present application is a continuation-in-part of International Application No. PCT/CN2020/080191 filed on Mar. 19, 2020, the disclosure of which is incorporated herein in its entirety by reference.
Number | Date | Country | |
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Parent | PCT/CN2020/080191 | Mar 2020 | US |
Child | 17885855 | US |