Fluid control device, fluid control system and valve control device
The integration of digital and analog communication in a fluid control device and system ensures flexible and reliable valve control, addressing operational challenges in digital communication failures by using a four-wire cable and displacement sensor feedback control.
Patent Information
- Application Number
- JP2024522942
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-05-26
- Filing Date
- 2023-03-28
- Publication Date
- 2025-12-24
- Estimated Expiration
- 2043-03-28
AI Technical Summary
Conventional fluid control devices using digital communication face challenges in flexible valve control due to potential disconnection or malfunctions, leading to operational difficulties during sudden malfunctions.
A fluid control device and system that integrate both digital and analog communication capabilities through a cable with at least four wires, allowing seamless operation even in the absence of digital connectivity, using a valve drive circuit with a displacement sensor for feedback control and a connector for power and analog signals.
Enables flexible and reliable valve control by ensuring operation through analog communication when digital communication fails, maintaining high responsiveness and flexibility in valve operation.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a fluid control device, a fluid control system, and a valve control device, and in particular to a valve control device that can appropriately control a valve equipped in a flow control device installed in a semiconductor manufacturing facility, a pharmaceutical manufacturing facility, a chemical plant, or the like, and a fluid control device and a fluid control system equipped with the same. [Background technology]
[0002] Various types of flow meters, pressure meters, and fluid control devices are used to control fluids such as raw material gases and etching gases in semiconductor manufacturing facilities, pharmaceutical manufacturing equipment, chemical plants, etc. Known flow rate control devices include mass flow controllers (thermal mass flow rate control devices) and pressure flow rate control devices.
[0003] A pressure-type flow control device uses a control valve and a throttle (for example, an orifice plate or a critical flow nozzle) to control the pressure upstream of the throttle to control the flow rate. The control valve is, for example, a piezoelectric element-driven valve (hereinafter sometimes referred to as a piezo valve) that is configured to open and close a diaphragm valve element using a piezo actuator. Piezo valves are capable of adjusting the opening with relatively high precision and are also capable of relatively high-speed operation.
[0004] The applicant of the present application is also developing a flow control device configured to fix a strain gauge to the piezoelectric element of a piezoelectric valve and detect the amount of displacement of a diaphragm valve element and its operating member based on the output of this strain gauge (for example, Patent Document 1). By adjusting the valve opening based on the displacement measurement, flow control can be performed with higher responsiveness than with pressure-type flow control devices. Furthermore, because of this high responsiveness, flow control can be performed more appropriately even when the control valve needs to be opened and closed frequently using pulsed control signals in processes such as ALD (Atomic Layer Deposition) and ALE (Atomic Layer Etching). [Prior art documents] [Patent documents]
[0005] [Patent Document 1] International Publication No. 2019 / 107215 [Patent Document 2] International Publication No. 2017 / 188129 Summary of the Invention [Problem to be solved by the invention]
[0006] In a flow control device, the piezo valve is driven by sending a control signal from an external device to a valve drive circuit (a circuit that outputs drive voltage to the actuator) connected to the valve. Traditionally, valve control was often performed using analog signals, but in recent years, Ethernet (registered trademark) It is becoming mainstream to control valves through digital communication using field bus systems based on the IEEE 802.11 standard.
[0007] Patent Document 2 describes a fluid control device configured to control a valve via EtherCAT (registered trademark) communication with an external device. In this fluid control device, a digital PWM (pulse width modulation) signal is input to a valve drive circuit, which uses a chopper-type step-up / step-down converter to apply a drive voltage to a piezoelectric actuator according to the duty ratio of the received PWM signal. Controlling the valve drive circuit using digital communication in this way enables reliable, high-speed valve control operation while suppressing noise.
[0008] However, in conventional fluid control devices that mainly use digital control as described above, if the digital communication is not connected or if a malfunction occurs in the digital communication, the valve cannot be operated, making it difficult to respond to sudden malfunctions or to control the valve in a more flexible manner.
[0009] The present invention has been made to solve the above-mentioned problems, and its main object is to provide a valve control device that enables valve control in a more flexible manner, as well as a fluid control device and a fluid control system that include the same. [Means for solving the problem]
[0010] A fluid control device according to an embodiment of the present invention comprises a valve control device capable of communicating with an external device, and a valve connected to the valve control device. The valve control device comprises a valve drive circuit for driving the valve, a digital communication circuit connected to the valve drive circuit, and input / output terminals connected to the valve drive circuit. The digital communication circuit provided in the external device is configured to be able to communicate digitally with the digital communication circuit of the valve control device. A power supply and analog communication circuit provided in the external device can be connected to the input / output terminals of the valve control device by an integrated cable having a connector and at least four wires internally. Power and analog signals from the external device are supplied via the input / output terminals.
[0011] In one embodiment, the cable and the input / output terminal are connected by a D-sub connector.
[0012] In one embodiment, the valve is provided with a displacement sensor for measuring the opening of a valve element, and the valve drive circuit is configured to perform feedback control of an actuator of the valve based on an output of the displacement sensor.
[0013] In one embodiment, the valve and the valve control device are provided separately and are connected via a cable.
[0014] A fluid control system according to an embodiment of the present invention includes a plurality of fluid control devices, each of which is any one of the fluid control devices described above, and the digital communication circuit of each valve control device of the plurality of fluid control devices is connected to the external device by an Ethernet-based field bus system, and the input / output terminals of each valve control device are connected to the power supply and analog data communication circuit of the external device by an integrated cable having at least four wires inside.
[0015] A valve control device according to an embodiment of the present invention is the valve control device provided in any one of the above fluid control devices. [Effects of the Invention]
[0016] According to an embodiment of the present invention, a valve control device, a fluid control device, and a fluid control system are provided that can use both digital communication and analog communication for communication with external devices, and can appropriately control valves in a more flexible manner. [Brief explanation of the drawings]
[0017] [Figure 1] FIG. 1 illustrates a fluid control device and a valve control device according to an embodiment of the present invention. [Figure 2]1 is a cross-sectional view of a valve according to an embodiment of the present invention. [Figure 3] 1A and 1B are plan views showing a valve control device according to an embodiment of the present invention, in which FIG. 1A shows a terminal arrangement surface and FIG. 1B shows a side surface. [Figure 4] FIG. 10 illustrates an exemplary flow for determining whether to employ analog or digital control. [Figure 5] FIG. 1 is a diagram showing a fluid control system configured using a plurality of fluid control devices according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0018] Hereinafter, embodiments of the present invention will be described with reference to the drawings, but the present invention is not limited to the following embodiments.
[0019] 1 shows the configuration of a fluid control device 100 according to an embodiment of the present invention. The fluid control device 100 includes a valve 10 arranged in a flow path and a valve control device 20 for controlling the operation of the valve 10. The valve control device 20 is communicably connected to an external device (information processing device) 30, and can control the operation of the valve 10 based on a command signal received from the external device 30. The external device 30 may be, for example, a general-purpose computer equipped with a user input device.
[0020] The fluid control device 100 is used, for example, in semiconductor manufacturing equipment, to control the flow rate of gas (such as raw material gas or etching gas) from a gas source and supply it to a process chamber at a desired flow rate. The valve 10 is provided in a flow path of a fluid supply system, and its upstream side communicates with a fluid supply source and its downstream side communicates with a fluid-using device such as a process chamber.
[0021] In this embodiment, a piezoelectric element-driven valve (piezo valve) as shown in Fig. 2 is used as the valve 10. The piezo valve is fixed to a flow path block 11 incorporated into a fluid supply system, and is configured so that its opening can be adjusted by driving a diaphragm valve element 13 using a piezo actuator 12.
[0022] More specifically, the piezoelectric actuator 12 is composed of a single piezoelectric element or multiple stacked piezoelectric elements (not shown) housed inside a cylindrical body. A voltage can be applied to the piezoelectric element via wiring 16, and the element expands to a degree corresponding to the magnitude of the drive voltage. This makes it possible to control the degree of expansion of the piezoelectric element, and ultimately the force with which the piezoelectric actuator 12 presses the diaphragm valve element 13 against the valve seat 14, and the valve 10 can be opened to any desired degree by controlling the drive voltage.
[0023] In this embodiment, the valve 10 is provided separately from the valve control device 20, and they are connected to each other by a cable. For this purpose, a connector 17 is provided on the housing surface of the valve 10, and similarly, as shown in Figure 3, a corresponding connector 27 is provided on the valve control device 20. The number of pins on the connector 17 is not particularly limited as long as it has at least four pins for power supply and analog communication, and in this embodiment, a D-sub (D-subminiature) 9-pin connector is used.
[0024] By placing the valve control device 20 away from the valve 10 in this way, it is possible to place the valve control device 20 in a room temperature environment even when the valve 10 is placed in a high-temperature environment, for example, in an application where high-temperature gas of 100°C or higher is flowing. This makes it possible to prevent damage to the control circuit or malfunctions caused by heat in the valve control device 20. Furthermore, in the case of a separate type, a control device that can be used both digital and analog can be easily configured by adding a digital communication board to a control device that was previously analog.
[0025] However, this is not limiting, and in other embodiments, the valve 10 and the valve control device 20 may be provided close to each other. The valve 10 and the valve control device 20 may be housed inside a single housing, and may be configured as a fluid control device 100 with a built-in control board.
[0026] Referring again to FIG. 1, the valve 10 is provided with a displacement sensor 15 for measuring the opening degree of the valve disc. In this embodiment, this displacement sensor 15 is configured using a strain sensor fixed to a piezoelectric element. The strain sensor fixed to the piezoelectric element is used to measure the opening degree of the piezoelectric valve, and feedback control is performed based on the output, thereby allowing the fluid to flow at a desired flow rate. Note that the displacement sensor 15 is not limited to a strain sensor, and other sensors can also be used. For example, a capacitance-type displacement sensor (a sensor configured to measure the movement of the actuator moving part as a change in capacitance) may be used as the displacement sensor 15.
[0027] A flow rate control method that uses such a displacement sensor to drive a valve is described in, for example, Patent Document 1. In this embodiment, too, it is possible to cause a fluid to flow downstream of the valve at a set desired flow rate by feedback-controlling the piezo valve based on the output of the displacement sensor 15. This method can achieve high responsiveness, and therefore the fluid control device 100 is also suitable for use when pulse flow rate control (or intermittent flow control) is required in applications such as ALD.
[0028] Although FIG. 1 only shows valve 10 equipped with displacement sensor 15, a fluid supply system including fluid control device 100 may further include other piezo valves, throttles, and pressure sensors connected in series upstream of valve 10, similar to the fluid supply system described in Patent Document 1. In this case, intermittent flow control is performed by valve 10 equipped with displacement sensor 15, while flow control can be performed by adjusting the opening of other valves based on the output of the pressure sensor when gas is allowed to continue flowing at a constant flow rate for a relatively long period of time. Furthermore, by arranging other valves and pressure sensors upstream as described above, the pressure upstream of valve 10 can be controlled to a desired value using the other valves, thereby changing the flow control range of valve 10.
[0029] The configuration of the valve control device 20 will be described in more detail below. In the fluid control device 100 of this embodiment, the valve control device 20 includes a valve drive circuit 22 for driving the valve 10. The valve drive circuit 22 is configured to be able to control the drive voltage applied to the piezoelectric actuator based on the output of the displacement sensor 15. Although the valve drive circuit 22 is composed of an analog circuit, it is also configured to be able to generate any drive voltage to be applied to the piezoelectric actuator based on digital data received from outside and the output of the displacement sensor 15.
[0030] Because the valve drive circuit 22 is an analog circuit, there are often individual differences between devices. For this reason, the valve control device 20 may have individual information (such as flow rate correction information indicating the relationship between the applied digital data and the actual valve opening (flow rate) resulting from the generated drive voltage) stored in a storage device such as a memory. The individual information may include a serial number, a flow rate control range, and, if a pressure sensor is provided, temperature characteristic information thereof. This allows the individual information to be read from the valve control device 20 when the valve control device 20 is replaced or reattached to another system, enabling more appropriate flow rate control.
[0031] Furthermore, in the valve control device 20 of this embodiment, the valve drive circuit 22 is connected to an input / output terminal (or analog input / output) 24 and a digital communication circuit 26. In this configuration, valve control signals can be input to the valve drive circuit 22 from an external device (information processing device) 30 via two systems, the input / output terminal 24 and the digital communication circuit 26 (or digital input / output terminal).
[0032] Meanwhile, the external device 30 generates digital data based on the specified set flow rate in the digital communication circuit and outputs it to the valve drive circuit 22 via the digital input / output terminal 36. The external device 30 can also output an analog control signal to the valve drive circuit 22 via the analog communication terminal 34, as in the conventional case.
[0033] In this embodiment, the digital communication circuit 26 provided in the valve control device 20 is configured to communicate with a digital communication circuit provided in the external device 30 using an Ethernet-based field bus system, more specifically, EtherCAT communication. When performing EtherCAT communication, a suitable LAN cable is used as the cable C1, and a digital input / output terminal 36 provided in the external device 30 is connected to a digital input / output terminal 26C (see FIG. 3(a)) connected to the digital communication circuit 26 of the valve control device 20.
[0034] However, the present invention is not limited to this, and various communication methods may be used as long as digital communication is possible, such as DeviceNet (registered trademark) communication, RS485 communication, etc. Of course, depending on the communication method used, the valve control device 20 and the external device 30 are provided with corresponding digital communication circuits, and communication is carried out using corresponding cables and connectors.
[0035] Here, the valve drive circuit 22 receives a set flow rate signal from the external device 30 via the digital communication circuit 26, compares the current flow rate obtained from the output of the displacement sensor 15 with the set flow rate, and controls the drive voltage applied to the valve by feedback control so as to eliminate the difference. More specifically, in a manner similar to that described in Patent Document 2, the valve drive circuit 22 can step up / down the voltage of the piezo actuator to match the set flow rate by applying a PWM signal, the duty ratio of which is adjusted so that the current flow rate matches the set flow rate, to the chopper type step-up / step-down converter.
[0036] In this embodiment, an analog communication terminal 34 for analog control and a power supply terminal 32 for supplying power are integrally provided on the interface of the external device 30. The analog communication terminal 34 and the power supply terminal 32 for supplying power are configured by, for example, a D-sub 9-pin connector.
[0037] Similarly, the input / output terminal 24 provided on the valve control device 20 is also provided with a corresponding input / output terminal that can integrally receive power and an analog control signal. These are connected by an integrated cable C2 having a corresponding connector AC (here, a D-sub 9-pin connector).
[0038] Here, the integrated cable C2 includes two core wires for power supply (power supply lines PS) and two core wires for analog data transmission (analog signal lines AS). The integrated cable C2 must include at least four core wires. This allows power to be supplied via the cable C2, and also enables analog control of the valve drive circuit 22 of the valve control device 20 from the external device 30.
[0039] When analog control is performed, a control signal is sent from the external device 30 to the input / output terminal 24 of the valve control device 20 using cable C2, and digital data similar to digital communication converted by an A / D converter or the like provided therein is input to the valve drive circuit 22. This allows valve control equivalent to control by digital communication to be performed. Also, when the valve drive circuit 22 outputs digital data indicating the flow rate or the like, this can also be transmitted to the external device 30 as an analog output by a D / A converter or the like connected to the input / output terminal 24.
[0040] In this embodiment, the cable C2 also includes two core wires for transmitting analog data from the valve drive circuit 22 to the external device 30. Therefore, six of the nine D-sub pins can be used to supply power to the valve control device 20 and to input and output signals to and from the valve drive circuit 22.
[0041] When using D-sub 9Pin, the pin assignment is, for example, as follows: pin numbers 1 and 2 are assigned to signal input + (0 to 10V) and signal input - (0V); pin numbers 4 and 5 are assigned to signal output + (0 to 10V) and signal output - (0V); and pin numbers 8 and 9 are assigned to power supply + (DC24V) and power supply - (0V).
[0042] 3(a) and (b) respectively show the terminal surface and side surface of valve control device 20. The terminal surface of valve control device 20 is provided with connector 24C for analog communication with external device 30, connector 27 for connection with valve 10, and digital input / output terminal 26C for digital communication with external device 30.
[0043] As shown in Fig. 3(a), in the valve control device 20 of this embodiment, D-sub 9-pin connectors are used as the connectors 24C and 27, and an RJ45 connector is used as the digital input / output terminal 26C. Other components provided include a rotary switch 29 for setting an address (ID) and a pilot lamp 28 that indicates the power-on state and normal / abnormal state. As shown in Fig. 3(b), the valve control device 20 is configured by accommodating the valve drive circuit 22, analog input / output, and digital communication circuit 26 shown in Fig. 1 inside a box-shaped housing 21.
[0044] As described above, by using a cable with four or more wires and a corresponding connector to supply power from the external device 30 to the fluid control device 100 instead of a two-wire cable, it becomes possible to use the remaining core wires to perform analog control of the fluid control device 100. Furthermore, by using a cable with six or more wires and a corresponding connector, it becomes possible to monitor output data from the fluid control device 100 in the external device 30.
[0045] This allows the fluid control device 100 to operate using analog control, for example, even during a period when digital communication is not connected after power is turned on or when there is a problem with digital communication. This makes it possible to establish communication that is more resistant to failures, and also enables valve control using flexible communication modes.
[0046] Although the above describes a mode in which a D-sub 9-pin cable is used to connect to the external device 30, it goes without saying that other connection modes may be used as long as they are capable of supplying the power required by the fluid control device 100 (for example, DC 30 V or less) and analog control of the fluid control device 100. For example, connectors and cables of other D-sub standards (for example, D-sub 15-pin or D-sub 25-pin) may be used. Alternatively, half-pitch 20-pin connectors and cables may be used.
[0047] 4 shows an exemplary flow for determining whether to adopt digital control or analog control. As shown in step S1, when the power is turned on, it is then determined whether digital communication has been established as shown in step S2.
[0048] Here, digital communication is established, for example, by setting the external device 30. When digital communication is not established, analog control is performed as a default state in this example, as shown in step S3. On the other hand, when digital communication is established, digital control is performed, as shown in step S4.
[0049] In this way, when it is confirmed that digital communication has been established, digital control is given priority, enabling valve control using digital communication, which is currently the mainstream. Also, if digital communication cannot be established due to some kind of abnormality or user specification, analog control can be used as a backup.
[0050] Furthermore, as shown in step S4, in digital control, analog input can be disabled to allow digital control to be performed without any problems, while analog output can be enabled so that the output can be received by an external device 30 and used for failure analysis, etc.
[0051] 5 is a diagram showing an example of the configuration of a fluid control system in which a plurality of fluid control devices 100 are connected to a common external device 30. For example, a fluid control device 100 is provided for each of a plurality of gas supply lines provided in a fluid supply system. Furthermore, these fluid control devices 100 can be collectively controlled by the common external device 30.
[0052] In the embodiment shown in FIG. 5, the digital communication circuit of the external device 30 and the valve control device 20 of each fluid control device 100 are connected by a cable C1. Similarly, the power supply circuit and analog communication circuit of the external device 30 are connected to the valve control device 20 of each fluid control device 100 by an integrated cable C2 having four or more wires inside. In this way, multiple fluid control devices 100 can be flexibly controlled by digital control and analog control while being supplied with power. Note that when EtherCAT is used as the digital communication method, each fluid control device 100 may be connected to one of the external device 30 as a slave, and the remaining fluid control devices may be connected to each other as slaves. [Industrial Applicability]
[0053] The fluid control device according to the embodiment of the present invention is preferably used, for example, by being connected to a gas supply line in semiconductor manufacturing to control the flow rate of gas. [Explanation of symbols]
[0054] 10 valves 11 Flow path block 12 Piezo Actuators 13 Diaphragm valve body 14 Valve seat 15 Displacement sensor 17 Connectors 20 Valve control device 22 Valve drive circuit 24 input / output terminals 26 Digital Communication Circuits 30 External device C1 Cable (Digital Communication) C2 cable (power, analog communication) PS power supply line AS Analog signal line 100 Fluid control device
Claims
1. A fluid control device comprising a valve control device capable of communicating with an external device and a valve connected to the valve control device, The valve control device includes: a valve drive circuit for driving the valve; a digital communication circuit connected to the valve drive circuit; an input / output terminal connected to the valve drive circuit, a digital communication circuit provided in the external device and the digital communication circuit of the valve control device are configured to be able to digitally communicate with each other, A fluid control device wherein a power supply and an analog communication circuit provided in the external device can be connected to the input / output terminals of the valve control device by an integrated cable having a connection connector and at least four wires inside, and wherein power and analog signals from the external device are supplied via the input / output terminals, and wherein both digital control signals and analog control signals for controlling the valve can be input to the valve drive circuit via the digital communication circuit and the analog communication circuit of the external device, and the valve drive circuit is configured to be able to control the valve by selecting either digital control or analog control.
2. A fluid control device as described in claim 1, wherein the external device is configured to be able to determine whether digital communication is established or not, and the valve drive circuit is configured to disable analog input and perform digital control when digital communication is established, and to perform analog control when digital communication is not established.
3. 3. The fluid control device according to claim 1, wherein the cable and the input / output terminal are connected by a D-sub connector.
4. 3. The fluid control device according to claim 1, wherein the valve is provided with a displacement sensor for measuring an opening degree of a valve element, and the valve drive circuit is configured to feedback control an actuator of the valve based on an output of the displacement sensor.
5. The fluid control device according to claim 1 or 2, wherein the valve and the valve control device are provided separately and connected via a cable.
6. A plurality of fluid control devices, each of which is the fluid control device according to claim 1 or 2, A fluid control system in which the digital communication circuit of each valve control device of a plurality of fluid control devices is connected to the external device via an Ethernet-based field bus system, and the input / output terminals of each valve control device are connected to the power supply and analog data communication circuit of the external device via an integrated cable with at least four wires internally.
7. The valve control device provided in the fluid control device according to claim 1 or 2.
Citation Information
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