WO2017152321A1 - 一种采用光纤远程控制技术的电机控制系统 - Google Patents

一种采用光纤远程控制技术的电机控制系统 Download PDF

Info

Publication number
WO2017152321A1
WO2017152321A1 PCT/CN2016/075735 CN2016075735W WO2017152321A1 WO 2017152321 A1 WO2017152321 A1 WO 2017152321A1 CN 2016075735 W CN2016075735 W CN 2016075735W WO 2017152321 A1 WO2017152321 A1 WO 2017152321A1
Authority
WO
WIPO (PCT)
Prior art keywords
resistor
motor
transistor
thyristor
capacitor
Prior art date
Application number
PCT/CN2016/075735
Other languages
English (en)
French (fr)
Inventor
张舒维
Original Assignee
张舒维
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 张舒维 filed Critical 张舒维
Priority to PCT/CN2016/075735 priority Critical patent/WO2017152321A1/zh
Publication of WO2017152321A1 publication Critical patent/WO2017152321A1/zh

Links

Images

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P7/00Arrangements for regulating or controlling the speed or torque of electric DC motors
    • H02P7/06Arrangements for regulating or controlling the speed or torque of electric DC motors for regulating or controlling an individual dc dynamo-electric motor by varying field or armature current
    • H02P7/18Arrangements for regulating or controlling the speed or torque of electric DC motors for regulating or controlling an individual dc dynamo-electric motor by varying field or armature current by master control with auxiliary power
    • H02P7/24Arrangements for regulating or controlling the speed or torque of electric DC motors for regulating or controlling an individual dc dynamo-electric motor by varying field or armature current by master control with auxiliary power using discharge tubes or semiconductor devices
    • H02P7/28Arrangements for regulating or controlling the speed or torque of electric DC motors for regulating or controlling an individual dc dynamo-electric motor by varying field or armature current by master control with auxiliary power using discharge tubes or semiconductor devices using semiconductor devices

Definitions

  • the invention relates to a motor control system using a fiber optic remote control technology.
  • the optical fiber is used for remote control of the motor, and in the current remote control process, the lack of signal adjustment capability and the problem of poor motor drive capability are improved.
  • the technical problem to be solved by the present invention is to provide a motor control system using a fiber optic remote control technology with an adjustment capability and a reliable driving capability in order to overcome the lack of adjustment capability and poor driving capability of the prior art.
  • a motor control system using a fiber optic remote control technology includes a center console, an optical fiber, and a motor device, the center console includes a casing, a display interface disposed in the casing, and a control button, a central control device is disposed in the outer casing, the central control device is a PLC, the central control device includes a remote control module and a wireless communication module, and the motor device includes a motor drive module;
  • the remote control module includes a remote control circuit, and the remote control circuit includes a first resistor, a second resistor, a third resistor, a fourth resistor, a fifth resistor, a sixth resistor, a first capacitor, a second capacitor, and an adjustable a resistor, a first thyristor, a second thyristor, and a light emitting diode, wherein one end of the second capacitor is externally connected to a 12V DC voltage source through a second resistor, and the other end of the second capacitor is grounded, the first thyristor
  • the triggering end of the tube is respectively connected to the second capacitor and the second resistor through a fourth resistor, and the trigger end of the second thyristor is respectively connected to the second capacitor and the second resistor through a fifth resistor, and the cathode of the first thyristor is grounded a cathode of the first thyristor is connected to an anode of the light emitting diode, a catho
  • the motor drive module includes a motor drive circuit, and the motor drive circuit includes a seventh resistor, an eighth resistor, a ninth resistor, a tenth resistor, an eleventh resistor, a twelfth resistor, a thirteenth resistor, and a fourteenth a resistor, a third capacitor, a fourth capacitor, a phototransistor, a second triode, a third triode, a fourth triode, a fourth diode, and a motor, wherein an emitter of the phototransistor is grounded, The collector of the phototransistor is externally connected to the 24V DC voltage power supply through a series circuit composed of a seventh resistor and an eighth resistor, and the base of the second triode is respectively connected to the seventh resistor and the eighth resistor, the second three poles The emitter of the tube is grounded through a series circuit composed of a ninth resistor and a tenth resistor, the collector of the second transistor is externally connected to a 24V DC voltage source, and the emitter of
  • the base of the third transistor is respectively connected to the ninth resistor and the tenth resistor, and the collector of the third transistor is externally connected to the 24V DC voltage source through the eleventh resistor, the fourth triode Emitter pass a three-resistor grounding, the collector of the fourth triode is externally connected to a 24V DC voltage power supply through a fourth diode, and the collector of the fourth triode is connected to an anode of the fourth diode, the fourth The collector of the triode is grounded through a series circuit composed of a fourth capacitor and a fourteenth resistor, and the collector of the fourth triode is externally connected to a 24V DC voltage source through a motor, and the bases of the fourth triode are respectively The collector of the third transistor is connected through the twelfth resistor and the third capacitor.
  • the second triode is a PNP triode
  • the third triode and the fourth triode are both NPN triodes.
  • the single mode fiber has the characteristics of long transmission distance and stable signal
  • the optical fiber is a single mode fiber.
  • the digital display tube has a wide operating range, thereby improving the utility of the system, and the display interface includes a digital display tube.
  • the touch button has the characteristic of high sensitivity
  • the control button is a light touch button.
  • the motor is electrically connected to the motor device.
  • said wireless communication module transmits a wireless signal via WIFI.
  • the invention has the beneficial effects that the motor control system adopts the optical fiber remote control technology, and the motor control system adopting the optical fiber remote control technology can control the blinking of the LED through the turn-on triggering of the first thyristor and the second thyristor, and simultaneously Change the resistance of the adjustable resistor, change the speed of adjusting the flashing of the LED, and adjust the signal size; not only that, the power amplification through each triode, thus ensuring the driving ability of the motor and improving the reliability of the system.
  • FIG. 1 is a schematic structural view of a motor control system using a fiber optic remote control technology of the present invention
  • FIG. 2 is a circuit schematic diagram of a remote control circuit using the optical fiber remote control technology of the present invention
  • FIG. 3 is a circuit schematic diagram of a motor drive circuit using the optical fiber remote control technology of the present invention.
  • a motor control system using a fiber optic remote control technology includes a center console, an optical fiber 4, and a motor device 5.
  • the center console includes a casing 1 and a display interface 2 disposed in the casing 1.
  • a control button 3 the housing 1 is provided with a central control device, the central control device is a PLC, the central control device comprises a remote control module and a wireless communication module, and the motor device 5 comprises a motor drive module;
  • the remote control module includes a remote control circuit, and the remote control circuit includes a first resistor R1, a second resistor R2, a third resistor R3, a fourth resistor R4, a fifth resistor R5, a sixth resistor R6, and a first capacitor C1. a second capacitor C2, an adjustable resistor Rp1, a first thyristor D1, a second thyristor D2, and a light-emitting diode D3.
  • One end of the second capacitor C2 is externally connected to a 12V DC voltage source through a second resistor R2, and the second capacitor C2 The other end is grounded, the trigger end of the first thyristor D1 is connected to the second capacitor C2 and the second resistor R2 through the fourth resistor R4, and the trigger end of the second thyristor D2 is respectively connected to the second through the fifth resistor R5.
  • the capacitor C2 is connected to the second resistor R2, the cathode of the first thyristor D1 is grounded, the cathode of the first thyristor D1 is connected to the anode of the light-emitting diode D3, the cathode of the light-emitting diode D3 is grounded, and the first thyristor D1 is connected.
  • the anode is connected to the anode of the second thyristor D2 through the first capacitor C1, and the anode of the first thyristor D1 passes through the series circuit composed of the first resistor R1, the adjustable resistor Rp1 and the third resistor R3, and the anode of the second thyristor D2 Connecting the adjustable termination resistor Rp1 external variable external 12V DC power supply;
  • the motor drive module includes a motor drive circuit, and the motor drive circuit includes a seventh resistor R7, The eighth resistor R8, the ninth resistor R9, the tenth resistor R10, the eleventh resistor R11, the twelfth resistor R12, the thirteenth resistor R13, the fourteenth resistor R14, the third capacitor C3, the fourth capacitor C4, and the photosensitive Transistor Q1, second triode Q2, third triode Q3, fourth triode Q4, fourth diode D4 and motor M, the emitter of the phototransistor Q1 is grounded, and the phototransistor Q1
  • the collector is connected to a 24V DC voltage power supply through a series circuit composed of a seventh resistor R7 and an eighth resistor R8, and a base of the second transistor Q2 is respectively connected to a seventh resistor R7 and an eighth resistor R8, the second The emitter of the transistor Q2 is grounded through a series circuit composed of a ninth resistor R9 and a tenth resistor R10, the collector of the second
  • the pole is grounded through the thirteenth resistor R13, the base of the third transistor Q3 is connected to the ninth resistor R9 and the tenth resistor R10, respectively, and the collector of the third transistor Q3 passes through the eleventh resistor R11 External 24V DC voltage power supply, the emitter of the fourth transistor Q4 is grounded through the thirteenth resistor R13
  • the collector of the fourth transistor Q4 is externally connected to a 24V DC voltage source through the fourth diode D4, and the collector of the fourth transistor Q4 is connected to the anode of the fourth diode D4.
  • the collector of the quadrupole Q4 is grounded through a series circuit composed of a fourth capacitor C4 and a fourteenth resistor R14, and the collector of the fourth transistor Q4 is externally connected to the 24V DC voltage source through the motor M, the fourth three The base of the pole transistor Q4 is connected to the collector of the third transistor Q3 through the twelfth resistor R12 and the third capacitor C3, respectively.
  • the second transistor Q2 is a PNP transistor
  • the third transistor Q3 and the fourth transistor Q4 are both NPN transistors.
  • the single mode fiber has the characteristics of long transmission distance and stable signal
  • the optical fiber 4 is a single mode fiber.
  • the digital display tube has a wide operating range, thereby improving the utility of the system, and the display interface 2 includes a digital display tube.
  • the touch button has the characteristic of high sensitivity
  • the control button 3 is a touch button.
  • the motor M is electrically connected to the motor device 5.
  • said wireless communication module transmits a wireless signal via WIFI.
  • the center console remotely controls the operation of the motor device 5 through the optical fiber 4.
  • a display interface 2 and a control button 3 are provided, and the display interface 2 is used to display related information and improve
  • the control button 3 is used to facilitate the user to control, and the operability of the system is improved;
  • the wireless communication module is used for wireless communication with the user to ensure the remote control of the system by the user.
  • the working principle of the remote control circuit is: determining the blinking of the light-emitting diode D3 by the turn-on triggering of the first thyristor D1 and the second thyristor D2, firstly, through the resistor divider, the trigger point of the first thyristor D1 triggering point is At the same time, the second capacitor C2 performs energy storage. When the voltage of the second capacitor C2 reaches the triggering requirement, the second thyristor D2 is triggered, then the LED D3 is illuminated, and then the second capacitor C2 starts to release energy, when the second capacitor C2 is low. When the triggering request is made, the second thyristor D2 is turned off, and the light-emitting diode D3 is turned off.
  • the conduction voltages of the first thyristor D1 and the second thyristor D2 can be changed, thereby adjusting the light-emitting diode D3.
  • the speed of the flash thus adjusting the size of the signal.
  • the working principle of the motor driving circuit is: firstly, the optical signal is sensed by the phototransistor Q3, and the driving ability of the motor M is controlled by the blinking speed of the light emitting diode D3; when the phototransistor Q3 is turned on, the second triode Q2 The power amplifier circuit composed of the third transistor Q3 and the fourth transistor Q4 is turned on, thereby ensuring the driving capability of the motor M.
  • the motor control system using the optical fiber remote control technology can control the blinking of the light-emitting diode D3 through the turn-on triggering of the first thyristor D1 and the second thyristor D2, and change the resistance of the adjustable resistor Rp1. , change the speed of adjusting the flashing of the light-emitting diode D3, thereby adjusting the size of the signal; not only that, the power amplification by the triodes, thereby ensuring the driving energy of the motor M Force, improve the reliability of the system.

Abstract

一种采用光纤远程控制技术的电机控制系统,包括中控台、光纤(4)和电机设备(5),中控台包括外壳(1)、设置在外壳(1)内的显示界面(2)和控制按键(3),外壳(1)内设有中央控制装置,中央控制装置为PLC,其包括远程控制模块和无线通讯模块,电机设备(5)包括电机驱动模块。该采用光纤远程控制技术的电机控制系统通过第一晶闸管(D1)和第二晶闸管(D2)的轮流触发导通能够控制发光二极管(D3)的闪烁,通过改变可调电阻(RP1)的阻值,能够改变调节发光二极管(D3)闪烁的速度,从而调节信号的大小;不仅如此,通过各三极管(Q2,Q3,Q4)进行功率放大,保证了电机驱动能力,提高了系统的可靠性。

Description

一种采用光纤远程控制技术的电机控制系统 技术领域
本发明涉及一种采用光纤远程控制技术的电机控制系统。
背景技术
随着现代电力电子技术的快速发展,其对于工业场合的提供了很大的帮助。在现有的很多工业场合,都是需要对电机进行操控,而大多数的操控设备都是设立在电机附近,而由于工业现场情况较复杂,如果工作人员对其进行操控时,容易发生安全事故,这样大大降低了安全性。
在本发明中,采用了光纤对电机进行远程控制,针对目前远程控制过程中,缺少信号的调节能力,而且对电机驱动能力差的问题进行了改进。
发明内容
本发明要解决的技术问题是:为了克服现有技术缺少调节能力且驱动能力差的不足,提供一种具有调节能力且驱动能力可靠的采用光纤远程控制技术的电机控制系统。
本发明解决其技术问题所采用的技术方案是:一种采用光纤远程控制技术的电机控制系统包括中控台、光纤和电机设备,所述中控台包括外壳、设置在外壳内的显示界面和控制按键,所述外壳内设有中央控制装置,所述中央控制装置为PLC,所述中央控制装置包括远程控制模块和无线通讯模块,所述电机设备包括电机驱动模块;
所述远程控制模块包括远程控制电路,所述远程控制电路包括第一电阻、第二电阻、第三电阻、第四电阻、第五电阻、第六电阻、第一电容、第二电容、可调电阻、第一晶闸管、第二晶闸管和发光二极管,所述第二电容的一端通过第二电阻外接12V直流电压电源,所述第二电容的另一端接地,所述第一晶闸 管的触发端通过第四电阻分别与第二电容和第二电阻连接,所述第二晶闸管的触发端通过第五电阻分别与第二电容和第二电阻连接,所述第一晶闸管的阴极接地,所述第一晶闸管的阴极与发光二极管的阳极连接,所述发光二极管的阴极接地,所述第一晶闸管的阳极通过第一电容与第二晶闸管的阳极连接,所述第一晶闸管的阳极通过第一电阻、可调电阻和第三电阻组成的串联电路与第二晶闸管的阳极连接,所述可调电阻的可调端外接外接12V直流电压电源;
所述电机驱动模块包括电机驱动电路,所述电机驱动电路包括第七电阻、第八电阻、第九电阻、第十电阻、第十一电阻、第十二电阻、第十三电阻、第十四电阻、第三电容、第四电容、光敏三极管、第二三极管、第三三极管、第四三极管、第四二极管和电机,所述光敏三极管的发射极接地,所述光敏三极管的集电极通过第七电阻和第八电阻组成的串联电路外接24V直流电压电源,所述第二三极管的基极分别与第七电阻和第八电阻连接,所述第二三极管的发射极通过第九电阻和第十电阻组成的串联电路接地,所述第二三极管的集电极外接24V直流电压电源,所述第三三极管的发射极通过第十三电阻接地,所述第三三极管的基极分别与第九电阻和第十电阻连接,所述第三三极管的集电极通过第十一电阻外接24V直流电压电源,所述第四三极管的发射极通过第十三电阻接地,所述第四三极管的集电极通过第四二极管外接24V直流电压电源,所述第四三极管的集电极与第四二极管的阳极连接,所述第四三极管的集电极通过第四电容和第十四电阻组成的串联电路接地,所述第四三极管的集电极通过电机外接24V直流电压电源,所述第四三极管的基极分别通过第十二电阻和第三电容与第三三极管的集电极连接。
作为优选,所述第二三极管为PNP三极管,所述第三三极管和第四三极管均为NPN三极管。
作为优选,单模光纤具有传输距离远且信号稳定的特点,所述光纤为单模光纤。
作为优选,数码显示管具有工作范围广的特点,从而提高了系统的实用性,所述显示界面包括数码显示管。
作为优选,轻触按键具有灵敏度高的特点,所述控制按键为轻触按键。
作为优选,所述电机与电机设备电连接。
作为优选,所述无线通讯模块通过WIFI传输无线信号。
本发明的有益效果是,该采用光纤远程控制技术的电机控制系统,该采用光纤远程控制技术的电机控制系统中通过第一晶闸管和第二晶闸管的轮流触发导通能够控制发光二极管的闪烁,同时改变可调电阻的阻值,改变调节发光二极管闪烁的速度,从而调节信号的大小;不仅如此,通过各三极管进行功率放大,从而保证了电机的驱动能力,提高了系统的可靠性。
附图说明
下面结合附图和实施例对本发明进一步说明。
图1是本发明的采用光纤远程控制技术的电机控制系统的结构示意图;
图2是本发明的采用光纤远程控制技术的远程控制电路的电路原理图;
图3是本发明的采用光纤远程控制技术的电机驱动电路的电路原理图;
图中:1.外壳,2.显示界面,3.控制按键,4.光纤,5.电机设备,R1.第一电阻,R2.第二电阻,R3.第三电阻,R4.第四电阻,R5.第五电阻,R6.第六电阻,R7.第七电阻,R8.第八电阻,R9.第九电阻,R10.第十电阻,R11.第十一电阻,R12.第十二电阻,R13.第十三电阻,R14.第十四电阻,C1.第一电容,C2.第二电容,C3.第三电容,C4.第四电容,Q1.光敏三极管,Q2.第二三极管,Q3.第三三极管,Q4.第 四三极管,D1.第一晶闸管,D2.第二晶闸管,D3.发光二极管,D4.第四二极管,M.电机,Rp1.可调电阻。
具体实施方式
现在结合附图对本发明作进一步详细的说明。这些附图均为简化的示意图,仅以示意方式说明本发明的基本结构,因此其仅显示与本发明有关的构成。
如图1-图3所示,一种采用光纤远程控制技术的电机控制系统包括中控台、光纤4和电机设备5,所述中控台包括外壳1、设置在外壳1内的显示界面2和控制按键3,所述外壳1内设有中央控制装置,所述中央控制装置为PLC,所述中央控制装置包括远程控制模块和无线通讯模块,所述电机设备5包括电机驱动模块;
所述远程控制模块包括远程控制电路,所述远程控制电路包括第一电阻R1、第二电阻R2、第三电阻R3、第四电阻R4、第五电阻R5、第六电阻R6、第一电容C1、第二电容C2、可调电阻Rp1、第一晶闸管D1、第二晶闸管D2和发光二极管D3,所述第二电容C2的一端通过第二电阻R2外接12V直流电压电源,所述第二电容C2的另一端接地,所述第一晶闸管D1的触发端通过第四电阻R4分别与第二电容C2和第二电阻R2连接,所述第二晶闸管D2的触发端通过第五电阻R5分别与第二电容C2和第二电阻R2连接,所述第一晶闸管D1的阴极接地,所述第一晶闸管D1的阴极与发光二极管D3的阳极连接,所述发光二极管D3的阴极接地,所述第一晶闸管D1的阳极通过第一电容C1与第二晶闸管D2的阳极连接,所述第一晶闸管D1的阳极通过第一电阻R1、可调电阻Rp1和第三电阻R3组成的串联电路与第二晶闸管D2的阳极连接,所述可调电阻Rp1的可调端外接外接12V直流电压电源;
所述电机驱动模块包括电机驱动电路,所述电机驱动电路包括第七电阻R7、 第八电阻R8、第九电阻R9、第十电阻R10、第十一电阻R11、第十二电阻R12、第十三电阻R13、第十四电阻R14、第三电容C3、第四电容C4、光敏三极管Q1、第二三极管Q2、第三三极管Q3、第四三极管Q4、第四二极管D4和电机M,所述光敏三极管Q1的发射极接地,所述光敏三极管Q1的集电极通过第七电阻R7和第八电阻R8组成的串联电路外接24V直流电压电源,所述第二三极管Q2的基极分别与第七电阻R7和第八电阻R8连接,所述第二三极管Q2的发射极通过第九电阻R9和第十电阻R10组成的串联电路接地,所述第二三极管Q2的集电极外接24V直流电压电源,所述第三三极管Q3的发射极通过第十三电阻R13接地,所述第三三极管Q3的基极分别与第九电阻R9和第十电阻R10连接,所述第三三极管Q3的集电极通过第十一电阻R11外接24V直流电压电源,所述第四三极管Q4的发射极通过第十三电阻R13接地,所述第四三极管Q4的集电极通过第四二极管D4外接24V直流电压电源,所述第四三极管Q4的集电极与第四二极管D4的阳极连接,所述第四三极管Q4的集电极通过第四电容C4和第十四电阻R14组成的串联电路接地,所述第四三极管Q4的集电极通过电机M外接24V直流电压电源,所述第四三极管Q4的基极分别通过第十二电阻R12和第三电容C3与第三三极管Q3的集电极连接。
作为优选,所述第二三极管Q2为PNP三极管,所述第三三极管Q3和第四三极管Q4均为NPN三极管。
作为优选,单模光纤具有传输距离远且信号稳定的特点,所述光纤4为单模光纤。
作为优选,数码显示管具有工作范围广的特点,从而提高了系统的实用性,所述显示界面2包括数码显示管。
作为优选,轻触按键具有灵敏度高的特点,所述控制按键3为轻触按键。
作为优选,所述电机M与电机设备5电连接。
作为优选,所述无线通讯模块通过WIFI传输无线信号。
该电机控制系统中,中控台通过光纤4远程控制电机设备5的工作,其中为了提高中控台的实用性,设有显示界面2和控制按键3,显示界面2用来显示相关信息,提高系统的实用性,控制按键3用来便于用户进行操控,提高了系统的可操作性;无线通讯模块用于与用户进行无线通讯,保证用户对系统进行远程操控。
该远程控制电路的工作原理是:通过第一晶闸管D1和第二晶闸管D2的轮流触发导通,来决定发光二极管D3的闪烁,首先经过电阻分压,第一晶闸管D1触发点端具有触发电压,同时第二电容C2进行储能,当第二电容C2的电压达到触发要求时,第二晶闸管D2被触发,则发光二极管D3就亮,随后第二电容C2开始释放能量,当第二电容C2低于触发要求时,则第二晶闸管D2断开,发光二极管D3就灭,其中改变可调电阻Rp1的阻值,能够改变第一晶闸管D1和第二晶闸管D2的导通电压,从而调节发光二极管D3闪烁的速度,从而调节信号的大小。
该电机驱动电路的工作原理是:首先通过光敏三极管Q3对光信号进行感应,通过发光二极管D3的闪烁的速度来控制电机M的驱动能力;当光敏三极管Q3导通时,第二三极管Q2、第三三极管Q3和第四三极管Q4为主组成的功率放大电路就被导通,从而保证了电机M的驱动能力。
与现有技术相比,该采用光纤远程控制技术的电机控制系统中通过第一晶闸管D1和第二晶闸管D2的轮流触发导通能够控制发光二极管D3的闪烁,同时改变可调电阻Rp1的阻值,改变调节发光二极管D3闪烁的速度,从而调节信号的大小;不仅如此,通过各三极管进行功率放大,从而保证了电机M的驱动能 力,提高了系统的可靠性。
以上述依据本发明的理想实施例为启示,通过上述的说明内容,相关工作人员完全可以在不偏离本项发明技术思想的范围内,进行多样的变更以及修改。本项发明的技术性范围并不局限于说明书上的内容,必须要根据权利要求范围来确定其技术性范围。

Claims (7)

  1. 一种采用光纤远程控制技术的电机控制系统,其特征在于,包括中控台、光纤(4)和电机设备(5),所述中控台包括外壳(1)、设置在外壳(1)内的显示界面(2)和控制按键(3),所述外壳(1)内设有中央控制装置,所述中央控制装置为PLC,所述中央控制装置包括远程控制模块和无线通讯模块,所述电机设备(5)包括电机驱动模块;
    所述远程控制模块包括远程控制电路,所述远程控制电路包括第一电阻(R1)、第二电阻(R2)、第三电阻(R3)、第四电阻(R4)、第五电阻(R5)、第六电阻(R6)、第一电容(C1)、第二电容(C2)、可调电阻(Rp1)、第一晶闸管(D1)、第二晶闸管(D2)和发光二极管(D3),所述第二电容(C2)的一端通过第二电阻(R2)外接12V直流电压电源,所述第二电容(C2)的另一端接地,所述第一晶闸管(D1)的触发端通过第四电阻(R4)分别与第二电容(C2)和第二电阻(R2)连接,所述第二晶闸管(D2)的触发端通过第五电阻(R5)分别与第二电容(C2)和第二电阻(R2)连接,所述第一晶闸管(D1)的阴极接地,所述第一晶闸管(D1)的阴极与发光二极管(D3)的阳极连接,所述发光二极管(D3)的阴极接地,所述第一晶闸管(D1)的阳极通过第一电容(C1)与第二晶闸管(D2)的阳极连接,所述第一晶闸管(D1)的阳极通过第一电阻(R1)、可调电阻(Rp1)和第三电阻(R3)组成的串联电路与第二晶闸管(D2)的阳极连接,所述可调电阻(Rp1)的可调端外接外接12V直流电压电源;
    所述电机驱动模块包括电机驱动电路,所述电机驱动电路包括第七电阻(R7)、第八电阻(R8)、第九电阻(R9)、第十电阻(R10)、第十一电阻(R11)、第十二电阻(R12)、第十三电阻(R13)、第十四电阻(R14)、第三电容(C3)、第四电容(C4)、光敏三极管(Q1)、第二三极管(Q2)、第三三极管(Q3)、第四三极管(Q4)、第四二极管(D4)和电机(M),所述光敏三极管(Q1)的发射 极接地,所述光敏三极管(Q1)的集电极通过第七电阻(R7)和第八电阻(R8)组成的串联电路外接24V直流电压电源,所述第二三极管(Q2)的基极分别与第七电阻(R7)和第八电阻(R8)连接,所述第二三极管(Q2)的发射极通过第九电阻(R9)和第十电阻(R10)组成的串联电路接地,所述第二三极管(Q2)的集电极外接24V直流电压电源,所述第三三极管(Q3)的发射极通过第十三电阻(R13)接地,所述第三三极管(Q3)的基极分别与第九电阻(R9)和第十电阻(R10)连接,所述第三三极管(Q3)的集电极通过第十一电阻(R11)外接24V直流电压电源,所述第四三极管(Q4)的发射极通过第十三电阻(R13)接地,所述第四三极管(Q4)的集电极通过第四二极管(D4)外接24V直流电压电源,所述第四三极管(Q4)的集电极与第四二极管(D4)的阳极连接,所述第四三极管(Q4)的集电极通过第四电容(C4)和第十四电阻(R14)组成的串联电路接地,所述第四三极管(Q4)的集电极通过电机(M)外接24V直流电压电源,所述第四三极管(Q4)的基极分别通过第十二电阻(R12)和第三电容(C3)与第三三极管(Q3)的集电极连接。
  2. 如权利要求1所述的采用光纤远程控制技术的电机控制系统,其特征在于,所述第二三极管(Q2)为PNP三极管,所述第三三极管(Q3)和第四三极管(Q4)均为NPN三极管。
  3. 如权利要求1所述的采用光纤远程控制技术的电机控制系统,其特征在于,所述光纤(4)为单模光纤。
  4. 如权利要求1所述的采用光纤远程控制技术的电机控制系统,其特征在于,所述显示界面(2)包括数码显示管。
  5. 如权利要求1所述的采用光纤远程控制技术的电机控制系统,其特征在于,所述控制按键(3)为轻触按键。
  6. 如权利要求1所述的采用光纤远程控制技术的电机控制系统,其特征在于,所述电机(M)与电机设备(5)电连接。
  7. 如权利要求1所述的采用光纤远程控制技术的电机控制系统,其特征在于,所述无线通讯模块通过WIFI传输无线信号。
PCT/CN2016/075735 2016-03-06 2016-03-06 一种采用光纤远程控制技术的电机控制系统 WO2017152321A1 (zh)

Priority Applications (1)

Application Number Priority Date Filing Date Title
PCT/CN2016/075735 WO2017152321A1 (zh) 2016-03-06 2016-03-06 一种采用光纤远程控制技术的电机控制系统

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/CN2016/075735 WO2017152321A1 (zh) 2016-03-06 2016-03-06 一种采用光纤远程控制技术的电机控制系统

Publications (1)

Publication Number Publication Date
WO2017152321A1 true WO2017152321A1 (zh) 2017-09-14

Family

ID=59788910

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2016/075735 WO2017152321A1 (zh) 2016-03-06 2016-03-06 一种采用光纤远程控制技术的电机控制系统

Country Status (1)

Country Link
WO (1) WO2017152321A1 (zh)

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4306314A (en) * 1979-10-29 1981-12-15 Griffiths Edward E Equipment control system with fiber optic coupled remote control
CN2793860Y (zh) * 2004-12-10 2006-07-05 冯惠忠 便携式汽车专用电子警示牌
CN2794104Y (zh) * 2005-04-29 2006-07-05 侯志岩 彩色闪烁灯
CN103237393A (zh) * 2013-05-11 2013-08-07 兰如根 Led灯闪烁电路
CN104158525A (zh) * 2014-08-29 2014-11-19 电子科技大学 基于单根光纤供电与脉冲信号传输的光驱动igbt装置
CN204256866U (zh) * 2014-12-04 2015-04-08 宿州学院 一种光控式家居防盗门报警器
CN105790656A (zh) * 2016-03-06 2016-07-20 张舒维 一种采用光纤远程控制技术的电机控制系统

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4306314A (en) * 1979-10-29 1981-12-15 Griffiths Edward E Equipment control system with fiber optic coupled remote control
CN2793860Y (zh) * 2004-12-10 2006-07-05 冯惠忠 便携式汽车专用电子警示牌
CN2794104Y (zh) * 2005-04-29 2006-07-05 侯志岩 彩色闪烁灯
CN103237393A (zh) * 2013-05-11 2013-08-07 兰如根 Led灯闪烁电路
CN104158525A (zh) * 2014-08-29 2014-11-19 电子科技大学 基于单根光纤供电与脉冲信号传输的光驱动igbt装置
CN204256866U (zh) * 2014-12-04 2015-04-08 宿州学院 一种光控式家居防盗门报警器
CN105790656A (zh) * 2016-03-06 2016-07-20 张舒维 一种采用光纤远程控制技术的电机控制系统

Similar Documents

Publication Publication Date Title
CN205581551U (zh) 一种适用于敲击控制的无线智能控制系统
WO2013159480A1 (zh) 一种遥控玩具飞机控制装置以及控制方法
CN108982897B (zh) 信号检测电路与测量装置以及齿轮测速系统
CN205405224U (zh) 一种电动工具控制器
WO2017152321A1 (zh) 一种采用光纤远程控制技术的电机控制系统
CN206773646U (zh) 基于光定位的手势识别系统
CN105356554A (zh) 一种双色led指示状态的装置
CN206294393U (zh) Led远程调光电路
WO2018099182A1 (zh) 基于io口的单向元件控制电路
CN105790656A (zh) 一种采用光纤远程控制技术的电机控制系统
CN210009001U (zh) 可视内窥镜红白光源切换控制电路
CN207780953U (zh) 一种具有可开关灯功能的遥控器
WO2015058609A1 (zh) 定时控制器
TWI577364B (zh) 應用於電動裝置之控制系統及其控制方法
CN106292777B (zh) 一种用于通讯网络工程的智能温控系统
CN103929165A (zh) Led手电筒光控开关
CN205844409U (zh) 电阻阻值显示自动绘图控制电路
CN104797049A (zh) 一种用于led灯照明的触摸式无极调光控制电路
CN205005316U (zh) 一种驱动电路
CN203465842U (zh) 用于遥控器的电池损耗指示电路
CN220606096U (zh) 一种基于app的智能家居控制装置
CN204204369U (zh) 一种挥动式图文显示棒
CN109302769A (zh) 智能家居照明系统
CN208442671U (zh) 一种智能遥控灯
CN109040902A (zh) 智能音箱

Legal Events

Date Code Title Description
NENP Non-entry into the national phase

Ref country code: DE

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 16892973

Country of ref document: EP

Kind code of ref document: A1

32PN Ep: public notification in the ep bulletin as address of the adressee cannot be established

Free format text: NOTING OF LOSS OF RIGHTS PURSUANT TO RULE 112(1) EPC (EPO FORM 1205A DATED 25.01.2019)

122 Ep: pct application non-entry in european phase

Ref document number: 16892973

Country of ref document: EP

Kind code of ref document: A1