Drain discharge device
The drain discharge device addresses the issue of backflow and sensor malfunctions by using a pressure detection and control system to manage solenoid valves, ensuring stable drainage under negative pressure conditions.
Patent Information
- Application Number
- JP2023219292
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-12-26
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2043-12-26
AI Technical Summary
Existing drain discharge devices fail to prevent backflow of air and drain into equipment when negative pressure occurs, leading to malfunction of water level sensors and disrupted drainage processes.
A drain discharge device equipped with a pressure detection unit, power on/off unit, and a drain trap unit, which includes a solenoid valve, a drain accumulation unit, and a water level sensor, controls the solenoid valve to prevent backflow by closing it during negative pressure and resumes operation when pressure normalizes, ensuring stable drainage.
The device effectively prevents backflow and sensor malfunctions, allowing normal drainage without air or drain entering the equipment, even under negative pressure conditions, maintaining operational efficiency and reliability.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a drain discharge device, and more particularly to a technique for preventing drain from flowing back into a device when negative pressure occurs inside the device that generates drain. [Background technology]
[0002] Conventionally, when a drain trap is connected to the drain outlet of an intercooler, which is a device built into a two-stage compression air compressor, negative pressure occurs inside the device when the device is unloaded due to no-load operation, etc. This can cause the air and drain inside the drain trap to flow back into the device. In particular, in the case of drain traps with built-in water level sensors, negative pressure can cause the sensor to malfunction and the drain valve to remain open. One possible preventative measure would be to install a regular check valve in the piping to the drain trap, but with a check valve, the water level sensor may malfunction when negative pressure occurs, which could interfere with the drain discharge operation. Therefore, there was a need for a structure that could prevent backflow of drain into the equipment when the equipment was under negative pressure, while also reducing the impact of malfunctioning of the water level sensor.
[0003] Various technologies have been proposed to address this problem. For example, a device that controls a solenoid valve when negative pressure occurs has been proposed (see Patent Document 1). More specifically, during no-load operation, the three-way solenoid valve is switched to close the primary side of the intermediate-stage drain pipe, and cooled, positive-pressure air in the system that is released to the atmosphere is guided to the secondary side of the intermediate-stage drain pipe, thereby maintaining the secondary side of the intermediate-stage drain pipe at a constant positive pressure. This configuration allows the secondary side of the intermediate-stage drain pipe to be maintained at a constant positive pressure, making it possible to install a drain trap in the intermediate-stage drain pipe and preventing the constant release of compressed air. However, there is no mention of malfunction of the water level sensor, and the above-mentioned problem is not solved. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 9-79160 Summary of the Invention [Problem to be solved by the invention]
[0005] To provide a drain discharge device capable of normally discharging drainage without causing air or drainage to flow back into the equipment even when the pressure inside the equipment from which the drainage is discharged becomes negative. [Means for solving the problem]
[0006] In order to solve the above problems, the present invention provides a drain discharge device that discharges drain from an intercooler of a two-stage compression air compressor, comprising a pressure detection unit, a power on / off unit, and a drain trap unit, the drain trap unit having a solenoid valve that discharges the drain, a drain accumulation unit that accumulates the drain, a water level sensor that detects upper and lower limit water levels of the drain in the drain accumulation unit, and a control unit, the control unit opens the solenoid valve after the water level sensor detects the upper limit water level until it no longer detects the lower limit water level, the solenoid valve opens when powered and closes when powered off, the pressure detection unit detects the air pressure in the drain accumulation unit, and the power on / off unit employs means for turning off the power to the drain trap unit when the pressure detection unit detects negative pressure.
[0007] The present invention also provides a drain discharge device for discharging drain from an intercooler of a two-stage compression air compressor, the drain trap comprising a pressure detection unit and a drain trap unit, the drain trap unit having a solenoid valve for discharging the drain, a drain accumulation unit for accumulating the drain, a water level sensor for detecting upper and lower limit water levels of the drain in the drain accumulation unit, and a control unit, The control unit opens the solenoid valve after the water level sensor detects the upper limit water level until it no longer detects the lower limit water level, and the pressure detection unit detects the air pressure in the drain accumulation unit.When the pressure detection unit detects negative pressure, the control unit stops detection by the water level sensor and closes the solenoid valve.
[0008] Furthermore, the present invention employs a means in which the pressure detection unit is disposed on the upper surface of the drain accumulation unit or above the water level sensor.
[0009] Furthermore, the present invention employs a means in which the pressure detection section detects a pressure of 0 MPa or less or 0 MPa or more.
[0010] Furthermore, the present invention employs a means in which the drain trap section periodically performs an air discharge operation by opening the solenoid valve for a fixed period of time, and stops the air discharge operation when the pressure detection section detects negative pressure.
[0011] Furthermore, the present invention employs a means in which the solenoid valve is resistant to a backflow of 0.1 MPa when the valve is closed.
[0012] Furthermore, the present invention has a pressure detection control unit that controls the pressure detection unit and the drain trap unit, and the pressure detection control unit is connected to a commercial power source, has a power supply circuit for the pressure detection unit, supplies power to the drain trap unit, and supplies power from the power supply circuit for the pressure detection unit to the pressure detection unit, and employs means for performing either the operation of turning the power supply to the drain trap unit on and off, or the operation of turning the detection line of the water level sensor on and off. [Effects of the Invention]
[0013] According to the drain discharge device of the present invention, even if the pressure inside the equipment from which the drain is discharged becomes negative, the drain can be discharged normally without causing air or drain to flow back into the equipment. [Brief explanation of the drawings]
[0014] [Figure 1]1 is a front partial cross-sectional view showing an embodiment of a drain discharge device according to the present invention. [Figure 2] 1 is a system diagram showing an embodiment of a drain discharge device according to the present invention. [Figure 3] 5 is a process diagram showing the operation process of the drain discharge device according to the present invention. FIG. [Figure 4] 1 is a process diagram showing a conventional operation process of a drain discharge device. [Figure 5] FIG. 10 is a partial front cross-sectional view showing another embodiment of a drain discharge device according to the present invention. [Figure 6] FIG. 10 is a system diagram showing another embodiment of a drain discharge device according to the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0015] The greatest feature of the drain discharge device according to the present invention is that it prevents backflow of drain and prevents malfunction of the water level sensor when negative pressure occurs inside the equipment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, an embodiment of a drain discharge device according to the present invention will be described with reference to the drawings. The overall configuration and the configuration of each part of the drain discharge device shown below are not limited to the embodiments described below, but can be modified within the scope of the technical concept of the present invention, i.e., within the scope of shapes, dimensions, structures, etc. that can achieve the same functional effects.
[0016] The present invention will be described with reference to FIGS. FIG. 1 is a partial cross-sectional front view showing an embodiment of a drain discharge device according to the present invention. FIG. 2 is a system diagram showing an embodiment of a drain discharge device according to the present invention, where (a) shows a case where a power on / off unit is used, and (b) shows a case where a control unit uses the detection results of a pressure detection unit. FIG. 3 is a process diagram showing the operation process of the drain discharge device according to the present invention. FIG. 4 is a process diagram showing a conventional operation process of a drain discharge device. The drain discharge device 1 discharges drain D generated in a compressed air pressure circuit, and in this embodiment, it mainly discharges drain D generated in an intercooler located in the middle part of a two-stage compression type air compressor. The drain discharge device 1 is composed of a drain trap unit 30, a pressure detection unit 10, and a power on / off unit 20.
[0017] The drain trap section 30 is a section that discharges drain D from equipment in the compressed air pressure circuit. In this embodiment, it discharges drain D from an intercooler that is arranged in the middle of a two-stage compression air compressor. The drain trap section 30 may be one that discharges the accumulated drain D when the accumulated drain D reaches a certain amount or more, or one that discharges the accumulated drain D periodically. The drain trap of this embodiment is a drain trap with a water level sensor, and an upper limit water level sensor 33 and a lower limit water level sensor 34 are used to grasp the amount of drainage and adjust the amount of drainage D discharged. The drain trap section 30 mainly comprises a drain accumulation section 32, a water level sensor, an electromagnetic valve 40, and a control section 60.
[0018] The drain accumulation section 32 is a section for temporarily retaining the drain D that has flowed in from the intercooler etc. The drain D flows in from the drain inlet section 31 above the drain accumulation section 32. The accumulated drain D is discharged from the bottom of the drain accumulation section 32 via the electromagnetic valve 40 and from the drain discharge port 50 as needed.
[0019] The water level sensor detects the upper and lower limit water levels of the drain in the drain accumulation section. It consists of an upper limit water level sensor 33, a lower limit water level sensor 34, and a common terminal 35, and is located on the side of the drain accumulation section 32. Signals from the upper limit water level sensor 33, the lower limit water level sensor 34, and the common terminal 35 are transmitted to the control section 60 via detection lines. The control unit 60 detects the presence or absence of the drain D based on the amount of current between the upper limit water level sensor 33, the lower limit water level sensor 34, and the common terminal 35. The upper limit water level sensor 33 is a sensor that detects that the amount of drain D in the drain accumulation section 32 has reached an upper limit. When the water level of the drain D reaches the upper limit water level sensor 33, the drain D is discharged. The lower limit water level sensor 34 is a sensor that detects that the drain D in the drain accumulation section 32 has almost been discharged. When the drain D is discharged and the water level of the drain D falls below the position of the lower limit water level sensor 34, the discharge of the drain D is stopped.
[0020] The solenoid valve 40 is a valve that controls the discharge of the drain D. The opening and closing of the valve is controlled electrically. The valve driving portion of the solenoid valve 40 is made up of a solenoid 41, a plunger 42, and a spring 43. The solenoid valve 40 of this embodiment is an open-valve type when energized, that is, the solenoid valve 40 opens when energized and closes when de-energized. When energized, the solenoid 41 is energized and generates a magnetic force in the solenoid 41. The magnetic force attracts the plunger 42 and moves it away from the orifice 44 of the pipe. When the orifice 44 opens, the pipe opens and the drain D is discharged through the solenoid valve 40. When de-energized, the magnetic force of the solenoid 41 stops. The plunger 42 abuts against the orifice 44 of the pipe by the force of the spring 43. When the orifice 44 is closed, the pipe is blocked and the drain D is not discharged from the drain outlet 50.
[0021] The control unit 60 is a part that controls the drainage and other movements of the drain trap unit 30. It is constructed on a circuit board 62 at the top of the device. The control unit 60 operates electrically. Commercial power is supplied via a power outlet and a cable, and is converted to an appropriate voltage by a power circuit within the circuit board before being supplied to the control unit 60 as power. When the power is turned off, all functions of the control unit 60 are stopped and the solenoid valve 40 is closed. The solenoid valve 40 is controlled by the detection signals of the upper limit water level sensor 33 and the lower limit water level sensor 34 . After detecting the upper limit water level based on the signal from the upper limit water level sensor 33, the control unit 60 opens the solenoid valve 40 to discharge the drain D until the lower limit water level is no longer detected based on the signal from the lower limit water level sensor 34. In other words, the drain D is maintained in a discharged state until the water level in the drain D falls below the lower limit.
[0022] The control unit 60 also has a timer 61. The timer 61 measures time by counting at regular intervals. The timer 61 is used to periodically discharge air and to detect abnormalities by measuring the valve open time. The air discharge operation periodically controls the solenoid valve 40 to open the valve for a short period of time, thereby discharging a certain amount of drain D and air from the drain accumulation section 32, and is an operation to prevent air lock (air binding). Anomaly detection by measuring the valve open time involves issuing an alarm for abnormal discharge when, for example, the drain discharge time significantly exceeds a scheduled time.
[0023] The pressure detection unit 10 detects the air pressure in the drain accumulation unit 32 . In this embodiment, the pressure detection unit 10 is a pressure switch, which is composed of a sensor that changes depending on the pressure and an electric switch. The contacts open or close at a specific pressure. In this embodiment, the contacts open or close when negative pressure is detected. The pressure detection unit 10 is disposed on the upper surface of the drain accumulation portion 32 or above a water level sensor that detects the water level of the drain D in the drain accumulation portion 32. By disposing the pressure detection unit 10 in this position, the air pressure in the drain accumulation portion 32 can be reliably detected without being affected by the drain D. The pressure detection unit 10 detects pressures equal to or lower than 0 MPa or equal to or higher than 0 MPa. The detection signal of the pressure detection unit 10 is sent to the power on / off unit 20 . In the case of an element that requires power, power is supplied from the circuit board as appropriate.
[0024] The power on / off unit 20 is a part that turns on / off the power to the drain trap unit 30 in response to a signal from the pressure detection unit 10. The power is turned on / off by, for example, a relay or a switching semiconductor element. One side of the element is connected to the power supply unit 70, and the other side is connected to the power supply of the drain trap unit 30. The power supply unit 70 is part of the commercial power supply (100V or 200V) and is supplied onto the circuit board. 2(a), the dotted lines indicate that the power on / off unit 20 is arranged on the circuit board 62, similar to the control unit 60. With this configuration, the connections between the power supply unit 70, control unit 60, and power on / off unit 20 are completed on the circuit board 62, making it possible to make the circuitry compact. Since the commercial power supply is AC, two on / off circuits are required. When the power on / off unit 20 is turned on, power is supplied to the drain trap unit 30, and the drain trap unit 30 starts operating.
[0025] When the pressure detection unit 10 detects a negative pressure, the relay or the like is turned off, power to the drain trap unit 30 is cut off, and the solenoid valve 40 is closed. When the pressure detector 10 detects that the negative pressure is no longer present, the relay or the like is turned on, power is supplied to the drain trap unit 30, and the solenoid valve 40 opens appropriately. Furthermore, the power on / off unit 20 receives a pressure detection signal from the pressure detection unit 10, and if the pressure detection unit 10 is a component that requires power, the power on / off unit 20 supplies power to the pressure detection unit 10. At that time, power of a voltage appropriate for the pressure detection unit 10 is supplied from commercial power within the power on / off unit 20 using an AC / DC converter or the like.
[0026] One type of device in a compressed air circuit is an air compressor. One type of air compressor is a two-stage compression air compressor. A two-stage compression air compressor compresses air to an intermediate pressure in the low-pressure cylinder and sends it to the intermediate section, where it is then compressed to the maximum pressure in the high-pressure cylinder. The water vapor in the air in the intermediate section is discharged as drain D by the intercooler. As with other equipment, drain D is discharged by discharging the drain D that has accumulated at the bottom of the equipment through a drain trap. If the pressure control method is an automatic unloading type, when air compression is stopped, the intake section of the air compressor is throttled and the compressor is operated without load. This means that air is not supplied from the low-pressure cylinder to the middle section, and only sucked out from the high-pressure cylinder, creating a negative pressure in the middle section. The negative pressure is generally around -0.1 MPa. The timing and duration of negative pressure generation will vary depending on the usage conditions of the air compressor.
[0027] The system configuration will be explained with reference to FIG. 2(a). Electric power from the power supply unit 70 in the control unit 60 in the drain trap unit 30 passes through the power on / off unit 20 and enters the control unit 60 again. The control unit 60 operates using this electric power. The power on / off unit 20 is located on a circuit board that constitutes the control unit 60 and is surrounded by a dotted line. The power on / off unit 20 controls the power on / off depending on the pressure detected by the pressure detection unit 10. When the pressure detection unit 10 does not detect negative pressure, power is supplied to the control unit 60. The control unit 60 grasps the water level of the drain D based on signals from the upper limit water level sensor 33 and the lower limit water level sensor 34, and controls the solenoid valve 40 accordingly. The control unit 60 is provided with a timer 61, which is used to periodically measure the time required to discharge the drain air. When the pressure detection unit 10 detects negative pressure, no power is supplied to the control unit 60. Therefore, the control unit 60 stops and no power is supplied to the solenoid valve 40, so that the solenoid valve 40, which is closed when not energized, always closes the valve. In this way, the control unit 60 and the solenoid valve 40 can be controlled depending on the pressure state within the drain accumulation portion 32.
[0028] A conventional problem occurring when negative pressure is applied will be explained with reference to Figure 4. The figure shows a drain discharge device for discharging drain D from an intercooler attached to the middle part of a two-stage compression air compressor. The same elements as those of the present invention will be designated by the same reference numerals. As shown in FIG. 4( a ), drain D flows from the intercooler through the drain pipe 80 and is stored in the drain accumulation section 32 of the drain trap section 30 . This figure shows a state in which the water level in the drain D has risen above the upper limit water level sensor 33, the solenoid valve 40 has opened, and drainage has begun.
[0029] Figure 4(b) shows the state when the air compressor is operating without load. Negative pressure is created inside the intercooler, which acts to suck air and drain D into the intercooler. Furthermore, because the solenoid valve 40 is open, it moves in a direction that takes in air from the drain discharge port 50. The air that enters the drain accumulation section 32 from the drain discharge port 50 turns into bubbles, which significantly disturb the water surface of the drain D. As a result, the drain D continues to hang over the upper limit water level sensor 33, etc., and an erroneous detection occurs in which the water level of the drain D is equal to or higher than the upper limit. Furthermore, since air continues to enter through the drain outlet 50, the drain D discharge process will continue to be stagnant, and some of the drain D and air will flow back into the device. Depending on the drain trap unit 30, if drain discharge is not completed within a certain time after the start of drain discharge processing, a warning may be issued indicating an abnormality in the drain discharge port 50. Therefore, even if there is no abnormality in the drain discharge port 50 due to a malfunction caused by negative pressure, a warning may be issued, which may cause problems in management.
[0030] FIG. 4(c) shows a case where negative pressure occurs when the drain trap portion 30 is not performing the drain discharge process. Since drain discharge processing is not being performed, the solenoid valve 40 is closed. When negative pressure occurs, the solenoid valve 40 is closed, so no air flows in from the drain outlet 50, and it appears that there is no problem. However, if the negative pressure causes the water surface of the drain D to swell and part of the drain D touches the upper water level sensor 33, the control unit 60 of the drain trap unit 30 will determine that the water level of the drain D is above the upper limit position and will open the solenoid valve 40. This will result in the same situation as in Figure 4(b), causing a malfunction. In this way, in conventional drain traps, the generation of negative pressure causes problems with drainage.
[0031] The operation of this embodiment under negative pressure will be explained with reference to Figure 3, in comparison with the conventional example shown in Figure 4. This is the operation of discharging the drain D of the intercooler attached to the middle part of the two-stage compression type air compressor. In FIG. 3(a), as in FIG. 4(a), the water level in the drain D is higher than the upper water level sensor 33, so the solenoid valve 40 is open and drainage has begun. The drain accumulation section 32 is filled with drain D and high-pressure air equivalent to that in the compressed air pressure circuit, so the pressure detection section 10 does not detect negative pressure. Basically, the operation is the same as that shown in FIG. 4(a).
[0032] 3(b), similarly to FIG. 4(b), the air compressor is in no-load operation, the pressure inside the intercooler is negative, and the pressure inside the drain accumulation section 32 is also negative. The pressure detection unit 10 detects the negative pressure, and the power on / off unit 20 cuts off the power to the drain trap unit 30. The drain trap unit 30 is electrically shut down, the solenoid valve 40 goes into a non-energized state, and the valve closes. Therefore, the air from the drain outlet 50 does not flow back into the drain accumulation portion 32, and this state is maintained for the duration of the negative pressure.
[0033] When considering the performance of a solenoid valve, the characteristic of the solenoid valve is that it closes when not energized, and the pressure of the fluid flowing back must be within a specified range. If the pressure of the fluid flowing back is greater than the specified pressure, it will push up the plunger that is in contact with the orifice, causing the fluid to flow back inside the solenoid valve. In this embodiment, the upstream side of the solenoid valve 40 is under negative pressure, and the downstream side is under atmospheric pressure, so the maximum backflow pressure is 0.1 MPa. Therefore, the solenoid valve of this embodiment must be able to withstand a backflow of 0.1 MPa when closed.
[0034] When the negative pressure is eliminated, the power on / off unit 20 starts supplying power to the drain trap unit 30. The drain trap unit 30 starts operating from the initial state after power is turned on. FIG. 3(c) shows a case where negative pressure occurs when drain discharge processing is not being performed, similar to FIG. 4(c). Since the drain discharge process is not being performed, the solenoid valve 40 is closed. When negative pressure occurs, the pressure detection unit 10 detects the negative pressure, and the power on / off unit 20 stops power to the drain trap unit 30. The solenoid valve 40 enters a non-energized state, and the valve remains closed. The negative pressure may cause the water surface of the drain D to swell, causing part of the drain D to touch the upper limit water level sensor 33, but since the drain trap unit 30 is stopped, the upper limit water level sensor 33 will not make a false detection and the control unit 60 will not malfunction. This state continues while the negative pressure continues, so the drain trap portion 30 does not malfunction and air does not enter through the drain outlet 50. Once the negative pressure is released, the drain trap unit 30 is powered on and begins normal operation.
[0035] The second embodiment will be described with reference to FIG. 2(b) while comparing it with the first embodiment (FIG. 2(a)). In the system of the first embodiment, the entire drain trap unit 30 is turned on / off by the pressure detection unit 10 and the power on / off unit 20. This system makes it possible to stop all operations and close the solenoid valve 40 in an emergency when negative pressure occurs, regardless of the operation being performed by the control unit 60. However, depending on the operation of the control unit 60, when the negative pressure state is resolved, it may be desirable to resume the operation from the state before the negative pressure occurred. Therefore, in this embodiment, control is performed when negative pressure occurs while the drain trap portion 30 itself remains in operation.
[0036] In operation, when the pressure detection unit 10 detects a negative pressure, the control unit 30 stops the detection of the water level sensor, closes the solenoid valve 40, and temporarily stops the timer 61. The timer 61 measures time, and is used to determine the time for detecting a discharge abnormality and for periodically discharging the drain D. In the air discharge operation, the timer 61 is used to manage the cycle and duration of opening the solenoid valve 40. After the negative pressure is eliminated, the timer 61 is operated. The value of the timer 61 becomes the value that was stopped during the negative pressure period. Therefore, by temporarily stopping the timer 61, measurement can be performed by the timer 61 excluding the negative pressure period, regardless of the length of the negative pressure period, and the air discharge operation can be performed periodically. Similarly, regardless of the length of the negative pressure period, a warning that the discharge abnormality has continued for a specified period of time or longer can also be issued at a specified time.
[0037] Example 3 will be described with reference to Fig. 5 and Fig. 6(a) in comparison with Example 1 (Fig. 2(a)). Fig. 5 is a partial front cross-sectional view showing an embodiment of Example 3 of the drain discharge device according to the present invention. Fig. 6(a) is a system diagram showing an embodiment of Example 3 of the drain discharge device according to the present invention. In the system of Example 1, the entire drain trap section 30 is turned on / off by the pressure detection section 10 and the power on / off section 20, and the power on / off section 20 is placed on the circuit board 62 on which the control section 60 in the drain trap section 30 is placed, and turns the power of the control section 60 on and off. The overall appearance of the drain trap is that of an existing drain trap with a pressure detection unit 10 added, resulting in a compact and simple configuration. However, this configuration requires modification of the inside of the existing drain trap, so the already installed drain trap cannot be used as is, and it is necessary to modify it or use a new drain trap. Therefore, there is a need for a configuration that allows the use of existing drain traps.
[0038] In this embodiment, as shown in Figure 6(a), the power on / off unit 20 is placed inside an independent housing called the pressure detection control unit 90, and by connecting it to a conventional drain trap, a drain trap that can withstand negative pressure can be easily constructed.
[0039] An example of the shape of this embodiment will be described with reference to FIG. The pressure detection control unit 90 is housed in a housing separate from the drain trap body. The pressure detection control unit 90 controls the pressure detection unit 10 and the drain trap unit 30. The pressure detection control unit 10 is connected to a commercial power source and has an AC / DC converter which is a power supply circuit for the pressure detection unit, and supplies power to the drain trap unit 30 via a power cable 92, and also supplies power from the power supply circuit for the pressure detection unit to the pressure detection unit 10 via a pressure detection cable 91. Commercial power is supplied via an outlet to one side of the switch of the power on / off unit 20, and a power cable 92 is connected to the other side. A pressure detection cable 91 extending from the pressure detection unit 10 is also connected to the pressure detection control unit 90. A pressure detection signal line within the pressure detection cable 91 is connected to a switch control portion of the power on / off unit 20, and depending on the state of the pressure detection signal line, the power on / off unit 20 is turned on / off, and the power to the drain trap unit 30 is turned on / off.
[0040] The major difference between this embodiment and the first embodiment is that the power on / off unit 20 is housed in a separate housing. Functionally, this embodiment is substantially the same as the first embodiment. If the overall size is to be made compact, then the first embodiment is more advantageous, but by adopting the configuration of this embodiment, it is possible to easily utilize an existing drain trap. If an existing drain trap is modified to create a device like that of Example 1, it is necessary to modify the power circuit section of the circuit board inside the drain trap, add a switch circuit such as a relay, drill a hole in the housing near the circuit, connect the cable from the pressure detection unit 10 to the power on / off unit 20 on the circuit board, drill a hole in the top of the drain accumulation section 32, and fix the pressure detection unit 10. Modifying the circuit board is difficult for the user of the device, so it is not easy to use an existing drain trap. In contrast, in the present embodiment, a negative pressure compatible drain trap can be created simply by drilling a hole in the top of the drain accumulation section 32, fixing the pressure detection section 10, and drawing power for the drain trap from the pressure detection control section 90.
[0041] In this way, by housing part of the system in a separate housing, it is possible to easily construct a device that uses an existing drain trap, thereby improving the user's equipment utilization efficiency. Therefore, it is possible to flexibly accommodate negative pressure for many drain traps.
[0042] Example 4 will be described with reference to Fig. 6(b) in comparison with Example 3 (Fig. 6(a)). Fig. 6(b) is a system diagram showing an embodiment of Example 4 of the drain discharge device according to the present invention. In the system of Example 3, the power ON / OFF unit 20 is arranged in a pressure detection control unit 90, which is a housing separate from the drain trap unit 30. Inside the pressure detection control unit 90, commercial power is supplied from an outlet to one of the switches of the power ON / OFF unit 20, and a power cable 92 for supplying power to the drain trap unit 30 is connected to the other switch. By making the power on / off unit 20 a separate housing, an existing drain trap can be utilized. However, turning the entire power supply of the drain trap on and off requires a relatively large amount of power, so the switching element, such as a relay, must be able to handle that large amount of power. Therefore, there has been a demand for a configuration that does not require turning the power of the drain trap on and off and that utilizes existing drain traps. In this embodiment, as shown in Figure 6(b), the water level sensor on / off unit 21 is placed in the pressure detection control unit 90 and connected to a conventional drain trap as an independent housing, making it easy to construct a drain trap that can withstand negative pressure.
[0043] In summary, the water level sensor on / off unit 21 turns on and off all of the water level sensors, the upper limit water level sensor 33, the lower limit water level sensor 34, and the common terminal 35, or the detection line from the common terminal 35. When the water level sensor on / off unit 21 cuts off the detection line of the water level sensor, the control unit 60 determines that there is no drain D and operates to stop draining of the drain D. The pressure detection control unit 90 is housed in a separate housing from the drain trap body. The water level sensor on / off unit 21 is located inside the pressure detection control unit 90. One of the switches of the water level sensor on / off unit 21 is connected to a line from a common terminal, and the other is connected to a line corresponding to the common terminal of the control unit 60. Commercial power from the outlet enters the pressure detection control unit 90 once, and is then connected to the drain trap unit 30 as a power source via a power cable 92. The detection result of the pressure detection unit 10 is input to the pressure detection control unit 90 via a pressure detection cable 91, and further controls the switch of the water level sensor on / off unit 21. Power is supplied from the pressure detection control unit 90 to the pressure detection unit 10. At that time, power of a voltage suitable for the pressure detection unit 10 is generated from commercial power within the pressure detection control unit 90 using an AC / DC converter or the like, and is supplied to the pressure detection unit 10 via the pressure detection cable 91. The other parts are generally the same as those in the third embodiment.
[0044] By adopting the configuration according to this embodiment, a small-capacity switch element for the control line can be used as the switch element, thereby making it possible to compact the pressure detection control unit 90. Furthermore, noise at the moment of turning the power on / off can be reduced compared to when the power is turned on / off with a switch.
[0045] An example of the operation of this embodiment will be described. When the pressure in the drain accumulation section 32 is positive, the pressure detection section 10 sends a signal indicating the positive pressure to the water level sensor on / off section 21 of the pressure detection control section 90. The water level sensor on / off section 21 turns on, and the wire of the common terminal 35 is connected to the control section 60. The water level sensor operates normally, and the control unit 60 stores or drains the drain D according to the amount of the drain D. When the pressure is negative, the pressure detection unit 10 sends a signal indicating the negative pressure to the water level sensor ON / OFF unit 21 of the pressure detection control unit 90. The water level sensor ON / OFF unit 21 turns off, and the wire of the common terminal 35 is disconnected from the control unit 60. From the perspective of the control unit 60, the water level sensor is not detecting the water level, so the control unit 60 determines that there is no drain D and closes the solenoid valve 40. Therefore, when negative pressure occurs, the solenoid valve 40 is always closed, so backflow from the drain outlet 50 does not occur, and malfunctions can be avoided. In this way, when dealing with negative pressure using the pressure detection control unit 90 and an existing drain trap, the solenoid valve 40 can be controlled simply by turning the detection line of the water level sensor on / off, making it possible to make the circuit configuration of the pressure detection control unit 90 compact.
[0046] As a modification of this embodiment, it is also possible to place the water level sensor on / off unit 21 on the circuit board 62, as in embodiment 1. By adopting such a configuration, it is possible to make the entire unit more compact when manufacturing a new drain trap. In this embodiment, the water level sensor ON / OFF unit 21 is not limited to a resistance type using the common terminal 35, and any detection method may be used, such as a capacitance type.
[0047] In this way, according to the drain discharge device 1 of the present invention, even if the equipment discharging the drain D becomes negative pressure, the drain D can be discharged normally without causing air or drain D to flow back into the equipment.
[0048] Furthermore, according to the present invention, when negative pressure is detected, the power to the entire drain trap is turned off, so even if multiple processes are being performed within the drain trap, the solenoid valve 40 can be reliably closed, resulting in high reliability.
[0049] Furthermore, according to the present invention, when negative pressure is detected, the control unit 60 appropriately stops the detection of the water level sensor and closes the solenoid valve 40, so that processing can be continued after recovery, thereby improving processing efficiency.
[0050] Furthermore, according to the present invention, the pressure switch, which is the pressure detection unit 10, is positioned on the upper surface of the drain accumulation unit 32 or above the upper water level sensor 33, thereby reducing the possibility of drain D getting onto the pressure detection unit 10 and preventing deterioration of the detection performance of the pressure detection unit 10.
[0051] Furthermore, according to the present invention, a pressure detection unit that detects pressures of 0 MPa or less or 0 MPa or more can be selected as the pressure detection unit 10, which is preferable as it provides a wide range of options.
[0052] Furthermore, according to the present invention, when negative pressure is detected, the periodic air discharge operation can be stopped, so that backflow of air and drain D does not occur, and stable air discharge operation can be performed.
[0053] Furthermore, according to the present invention, it is possible to select a solenoid valve 40 that has an appropriate pressure resistance during backflow, which is advantageous in that leakage from the solenoid valve 40 does not occur when negative pressure is present.
[0054] Furthermore, according to the present invention, by providing the pressure detection control unit 90 in a separate housing, it becomes possible to reuse an existing drain trap, thereby enabling efficient use of the equipment. [Industrial Applicability]
[0055] The condensate discharge device according to the present invention is a technology for normally discharging condensate without causing backflow of air or condensate into the equipment even when the equipment generating the condensate is under negative pressure, and can be used as a condensate discharge device in an intercooler in any compressed air circuit. Therefore, it is believed that the present invention has great industrial applicability. [Explanation of symbols]
[0056] 1 Drain discharge device 10 Pressure detection unit 11 Power supply for pressure detection unit 20 Power on / off section 21 Water level sensor on / off part 30 Drain trap section 31 Drain inlet 32 Drain accumulation section 33 Upper water level sensor 34 Lower water level sensor 35 Common terminal 40 Solenoid valve 41 Solenoid 42 Plunger 43 Spring 44 Orifice 50 Drain outlet 60 Control Unit 61 Timer 62 Circuit Board 70 Power supply section 80 Drain pipe 90 Pressure detection control unit 91 Pressure detection cable 92 Power Cable D drain
Claims
1. In a drain discharge device that discharges drain from an intercooler of a two-stage compression type air compressor, It consists of a pressure detection unit, a power on / off unit, and a drain trap unit. The drain trap section has an electromagnetic valve for discharging the drain, a drain retention section for retaining the drain, a water level sensor for detecting an upper limit water level and a lower limit water level of the drain in the drain retention section, and a control section, The control unit opens the solenoid valve after the water level sensor detects the upper limit water level until the water level sensor no longer detects the lower limit water level, The solenoid valve opens when energized and closes when de-energized. The pressure detection unit detects the air pressure in the drain accumulation unit, The drain trap unit periodically performs an air discharge operation by opening the solenoid valve for a certain period of time, and stops the air discharge operation when the pressure detection unit detects negative pressure. The drain discharge device is characterized in that the power on / off unit turns off the power to the drain trap unit when the pressure detection unit detects negative pressure.
2. In a drain discharge device that discharges drain from an intercooler of a two-stage compression type air compressor, It consists of a pressure detection unit and a drain trap unit, The drain trap section has an electromagnetic valve for discharging the drain, a drain retention section for retaining the drain, a water level sensor for detecting an upper limit water level and a lower limit water level of the drain in the drain retention section, and a control section, The control unit opens the solenoid valve after the water level sensor detects the upper limit water level until the water level sensor no longer detects the lower limit water level, The pressure detection unit detects the air pressure in the drain accumulation unit, The drain trap unit periodically performs an air discharge operation by opening the solenoid valve for a certain period of time, and stops the air discharge operation when the pressure detection unit detects negative pressure. The control unit stops detection by the water level sensor and closes the solenoid valve when the pressure detection unit detects negative pressure.
3. 3. The drain discharge device according to claim 1, wherein the pressure detection unit is disposed on an upper surface of the drain accumulation unit or above the water level sensor.
4. The drain discharge device according to claim 3, wherein the pressure detection unit detects a pressure of 0 MPa or less or 0 MPa or more.
5. 4. The drain discharge device according to claim 3, wherein the electromagnetic valve is capable of withstanding a backflow of 0.1 MPa when the valve is closed.
6. a pressure detection control unit that controls the pressure detection unit and the drain trap unit; the pressure detection control unit is connected to a commercial power source, has a power supply circuit for the pressure detection unit, supplies power to the drain trap unit, and supplies power from the power supply circuit for the pressure detection unit to the pressure detection unit; 4. The drain discharge device according to claim 3, wherein the drain discharge device performs one of the following operations: turning on and off the power supply to the drain trap portion; and turning on and off the detection line of the water level sensor.
Citation Information
Patent Citations
Two-stage type dry screw compressor
JP1997079160A
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