Ultrahigh bright flash control system for machine vision light source

By designing an ultra-high bright flash control system, and using the circuit design of MOS tubes and MOSFET drivers, frequent switching control of light sources is realized, solving the problem that light source control systems in the prior art are difficult to meet the fast switching under high speed conditions, and improving detection efficiency and reliability.

CN223285974UActive Publication Date: 2025-08-29东莞康视达自动化科技有限公司
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Patent Information

Application Number
CN202422816581.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-18
Publication Date
2025-08-29
Estimated Expiration
2034-11-18

AI Technical Summary

Technical Problem

In existing machine vision detection, the light source control system is difficult to meet the needs of fast switches under high speed conditions and is prone to failure.

Method used

The ultra-high bright flash control system is adopted, and the power supply circuit is designed by the power supply, controller and power supply circuit. The MOS tube and MOSFET driver are used to realize frequent switching control of the light source, and combined with the 65V voltage input to achieve the bright light source.

Benefits of technology

It realizes fast and reliable switching control of the light source, ensures shooting requirements under high speed conditions, and improves detection efficiency and reliability.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223285974U_ABST
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Abstract

The utility model provides an ultra-bright flash control system for a machine vision light source, which comprises a power supply, a controller, a power supply circuit and a control circuit, and is characterized in that the power supply can output different voltages to respectively supply power to the controller, the power supply circuit and the control circuit, and the power supply supplies power to the light source through the power supply circuit; the output end, connected with the power supply circuit, of the power source is a first output end, the controller controls on-off of the light source through the control circuit, the power supply circuit comprises an operational amplifier U9A and an MOS tube U7, the MOS tube U7 is a PMOS tube, the positive input end of the operational amplifier U9A is connected with the 65V output end of the power source through a first circuit, and the negative input end of the operational amplifier U9A is connected with the 65V output end of the power source through a second circuit. The output end of the operational amplifier U9A is connected with the grid electrode of the MOS tube U7 through a second circuit, the source electrode of the MOS tube U7 is connected with the first output end through a third circuit, a resistor R26 is arranged on the third circuit, the negative input end of the MOS tube U7 is connected to the part, located between the MOS tube U7 and the resistor R26, of the third circuit through a fourth circuit, and the drain electrode of the MOS tube U7 is connected with a first wiring end.
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Description

Technical Field

[0001] The utility model relates to the field of machine vision, and in particular to an ultra-bright flash control system for a machine vision light source. Background Art

[0002] Diamond wire inspection often relies on machine vision. Cameras, however, require a high-brightness light source. To improve inspection efficiency, the wire's speed must be increased, which necessitates faster capture and, in turn, requires a fill light capable of rapid on / off switching. Currently, software control is often used, but at certain speeds, the software struggles to meet these requirements and is prone to malfunctions. Utility Model Content

[0003] The main purpose of the present invention is to provide an ultra-bright flash control system for machine vision light sources to solve the above technical problems.

[0004] To achieve the above objectives, the technical solution adopted by the present invention is: an ultra-bright flash control system for machine vision light sources, including a power supply, a controller, a power supply circuit and a control circuit. The power supply can output different voltages to respectively power the controller, the power supply circuit and the control circuit. The power supply supplies power to the light source through the power supply circuit. The output end of the power supply connected to the power supply circuit is the first output end. The controller controls the switch of the light source through the control circuit. The power supply circuit includes an operational amplifier U9A and a MOS tube U7. The MOS tube U7 is a PMOS tube. The positive input end of the operational amplifier U9A is connected to the 65V output end of the power supply through the first circuit. The output end of the operational amplifier U9A is connected to the gate of the MOS tube U7 through the second circuit. The source of the MOS tube U7 is connected to the first output end through the third circuit. A resistor R26 is provided on the third circuit. The negative input end of the MOS tube U7 is connected to the part of the third circuit located between the MOS tube U7 and the resistor R26 through the fourth circuit. The drain of the MOS tube U7 is connected to the first terminal.

[0005] Preferably, the power supply circuit further includes a fifth circuit, one end of the fifth circuit being connected to the first output end and the other end being grounded, a capacitor C22 being provided on the fifth circuit, a diode D4 being provided on the fifth circuit and located between the capacitor C22 and the power supply, the diode D4 being unidirectionally conductive in a direction from the capacitor C22 toward the power supply, a second terminal being provided on a portion of the fifth circuit located between the capacitor C22 and the diode D4, the second terminal being electrically connected to the first terminal.

[0006] Preferably, the power supply circuit further includes an eleventh circuit, one end of the eleventh circuit is connected to the first output end, a resistor R13, a resistor R21, and a resistor R28 are connected in series on the first circuit, and the first circuit is connected to the portion of the eleventh circuit located between the resistor R13 and the resistor R21.

[0007] Preferably, a twelfth circuit is further provided on the first output end, the other end of the twelfth circuit is grounded, and a capacitor C29 and a capacitor C30 are connected in parallel to the twelfth circuit.

[0008] Preferably, the power supply circuit also includes a seventh circuit, one end of the seventh circuit is connected to an interface of the terminal, and the other end is connected to the second terminal through the third terminal. The terminal J1 is used to install the light-emitting body, and the other interface of the terminal is connected to the eighth circuit.

[0009] Preferably, the control circuit includes a MOSFET driver U15 and a MOS transistor Q1. The input end of the MOSFET driver is connected to the controller, and the output end of the MOSFET driver U15 is connected to the gate of the MOS transistor Q1 through a sixth circuit. The controller can control the on and off of the MOS transistor Q1 by controlling its input to the MOSFET driver U15. The drain of the MOS transistor Q1 is connected to the other end of the eighth circuit, and the source of the MOS transistor Q1 is grounded through a ninth circuit. A resistor R55 is provided on the ninth circuit.

[0010] Preferably, a resistor R49 and a diode D6 are connected in parallel between the seventh circuit and the eighth circuit, and the diode D6 is unidirectionally conductive in a direction from the eighth circuit to the seventh circuit.

[0011] Compared with the prior art, the present invention has the following beneficial effects:

[0012] This utility model controls the power supply circuit through a control circuit, enabling frequent switching of the same light source through the circuit, thus controlling the light source's on / off state. Furthermore, a 65V voltage input is applied to the light source. The instant the circuit is turned on, the current increases rapidly, enabling the light source to operate at high brightness. Frequent switching and high brightness operation of the light source can achieve flashing. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 This is the interface diagram of the controller;

[0014] Figure 2 It is a circuit diagram of the power supply circuit;

[0015] Figure 3 It is a voltage divider circuit;

[0016] Figure 4is a circuit diagram of capacitor C22 and the circuit connected thereto;

[0017] Figure 5 This is the circuit diagram where capacitors C29 and C30 are connected;

[0018] Figure 6 This is the circuit diagram of the control circuit. DETAILED DESCRIPTION

[0019] The following description is intended to disclose the present invention so that those skilled in the art can implement the present invention. The preferred embodiments described below are merely examples, and those skilled in the art may conceive of other obvious variations.

[0020] like Figure 1-6 The figure shows an ultra-bright flash control system for a machine vision light source. The control system is used to control the light source on and off. It includes a power supply, a controller, a power supply circuit, and a control circuit. The power supply can output different voltages to power the controller, the power supply circuit, and the control circuit respectively. The power supply powers the light source through the power supply circuit, and the control circuit is used to control the light source on and off. Specifically, the power supply can output 65V, 12V, and 3.3V voltages.

[0021] The power supply circuit includes an operational amplifier U9A and a MOS transistor U7. MOS transistor U7 is a PMOS transistor. The positive input of operational amplifier U9A is connected to the 65V output of the power supply via a first circuit 1. The output of operational amplifier U9A is connected to the gate (G) of MOS transistor U7 via a second circuit 2. The source (S) of MOS transistor U7 is connected to the 65V output of the power supply via a third circuit 3. A resistor R26 is provided on the third circuit 3. The negative input of MOS transistor U7 is connected to the portion of the third circuit 3 between MOS transistor U7 and resistor R26 via a fourth circuit 4. The drain (D) of MOS transistor U7 is connected to a first terminal 6.

[0022] The power supply circuit also includes a fifth circuit 10, one end of which is connected to the 65V output terminal of the power supply and the other end is grounded. A capacitor C22 is provided on the fifth circuit 19, and a diode D4 is provided on the fifth circuit 19 between the capacitor C22 and the power supply. The diode D4 conducts electricity unidirectionally from the capacitor C22 toward the power supply. A second terminal 8 is provided on the portion of the fifth circuit 10 between the capacitor C22 and the diode D4, and the second terminal 8 is electrically connected to the first terminal 6. When the circuit is operating normally, the diode D4 prevents current from directly charging the capacitor C22 through the fifth circuit 10. When the power supply is disconnected, since the voltage at the power supply is zero, the capacitor C22 can discharge toward the power supply through the fifth circuit 10.

[0023] The power supply circuit also includes an eleventh circuit 17, one end of which is connected to the 65V output terminal of the power supply. Resistors R13, R21, and R28 are connected in series to the first circuit 17. The first circuit 1 is connected to the portion of the eleventh circuit 17 located between resistors R13 and R21. The voltage at the positive input terminal of the operational amplifier U9A is equal to the voltage at the portion of the eleventh circuit 17 located between resistors R13 and R21. When the voltage difference between the positive and negative input terminals of the operational amplifier U9A exceeds a certain value, the output of the operational amplifier U9A exceeds the turn-on voltage of the MOS transistor U7, turning on the MOS transistor U7 and turning on the third circuit 3, allowing the power supply to charge the capacitor C22. When the voltage difference between the positive and negative input terminals of the operational amplifier U9A is less than a certain value, the output voltage of the operational amplifier U9A is less than the turn-on voltage of the MOS transistor U7, causing the MOS transistor U7 to turn off and the third circuit 3 to disconnect. That is, the third circuit 3 is controlled to be turned on or off by the voltage fed back from the third circuit 3, so that the voltage on the third circuit 3 is kept as constant as possible.

[0024] A twelfth circuit 18 is also provided at the 65V output end of the power supply, the other end of the twelfth circuit 18 is grounded, and capacitors C29 and C30 are connected in parallel to the twelfth circuit 18. Capacitors C29 and C30 can ensure the stability of the output voltage at the 65V output end of the power supply.

[0025] The power supply circuit also includes a seventh circuit 13, one end of the seventh circuit 13 is connected to an interface of the terminal J1, and the other end is connected to the second terminal 8 through the third terminal 12. The terminal J1 is used to install an LED lamp, and the other interface of the terminal J1 is connected to the eighth circuit 14.

[0026] The control circuit includes a MOSFET driver U15 and a MOS transistor Q1. The input of the MOSFET driver is connected to the controller, and the output of the MOSFET driver U15 is connected to the gate G of the MOS transistor Q1 via the sixth circuit 11. The controller can control the on and off of the MOS transistor Q1 by controlling its input to the MOSFET driver U15. The drain D of the MOS transistor Q1 is connected to the other end of the eighth circuit 14, and the source S of the MOS transistor Q1 is grounded via the ninth circuit 15. A resistor R55 is provided on the ninth circuit 15. When the MOS transistor Q1 is turned on, the seventh circuit 13, the eighth circuit 14, and the ninth circuit 15 form a path, allowing the capacitor C22 to output a voltage to power the LED lamp.

[0027] A resistor R49 and a diode D6 are connected in parallel between the seventh circuit 13 and the eighth circuit 14. The resistor R49 is a dummy load for providing a stable load for the diode D6. The diode D6 is unidirectionally conducted in the direction from the eighth circuit 14 to the seventh circuit 13 to facilitate current backflow when the power is cut off.

[0028] In practice, there are four LED lamps, and the shooting angles of the four LED lamps are different, which are used to fill in the light for cameras in different positions, so as to shoot different positions of the workpiece being inspected. Each LED lamp corresponds to a power supply circuit and a control circuit. Preferably, the two control circuits can share a MOSFET driver U15. The MOSFET driver U15 adopts a dual MOSFET driver with two input terminals and two output terminals. The controller can send control signals to the two input terminals of the MOSFET driver U15 respectively to realize the control of the light source switch and can realize the rapid switching of different light sources. Of course, the number of LED lamps can also be adjusted according to actual conditions, and the light source can also adopt non-LED lamps.

[0029] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions merely illustrate the principles of the present invention. Various changes and improvements are possible without departing from the spirit and scope of the present invention. Such changes and improvements are intended to fall within the scope of the present invention. The scope of protection claimed for the present invention is defined by the appended claims and their equivalents.

Claims

1. An ultra-bright flash control system for machine vision light sources, characterized in that: The system includes a power supply, a controller, a power supply circuit, and a control circuit. The power supply can output different voltages to respectively power the controller, the power supply circuit, and the control circuit. The power supply supplies power to the light source through the power supply circuit. The output end of the power supply connected to the power supply circuit is the first output end. The controller controls the switching of the light source through the control circuit. The power supply circuit includes an operational amplifier U9A and a MOS transistor U7. The MOS transistor U7 is a PMOS transistor. The positive input end of the operational amplifier U9A is connected to the 65V output end of the power supply through the first circuit. The output end of the operational amplifier U9A is connected to the gate of the MOS transistor U7 through the second circuit. The source of the MOS transistor U7 is connected to the first output end through the third circuit. A resistor R26 is provided on the third circuit. The negative input end of the MOS transistor U7 is connected to the portion of the third circuit located between the MOS transistor U7 and the resistor R26 through the fourth circuit. The drain of the MOS transistor U7 is connected to the first terminal.

2. The ultra-bright flash control system for machine vision light sources according to claim 1, characterized in that: The power supply circuit also includes a fifth circuit, one end of which is connected to the first output end and the other end is grounded. A capacitor C22 is provided on the fifth circuit, and a diode D4 is provided on the fifth circuit and located between the capacitor C22 and the power supply. The diode D4 is unidirectionally conductive in a direction from the capacitor C22 to the power supply. A second terminal is provided on a portion of the fifth circuit located between the capacitor C22 and the diode D4, and the second terminal is electrically connected to the first terminal.

3. The ultra-bright flash control system for machine vision light source according to claim 1, characterized in that: The power supply circuit also includes an eleventh circuit, one end of which is connected to the first output end. Resistors R13, R21, and R28 are connected in series on the first circuit, and the first circuit is connected to the portion of the eleventh circuit located between resistors R13 and R21.

4. The ultra-bright flash control system for machine vision light sources according to claim 1, characterized in that: A twelfth circuit is further provided on the first output end, the other end of the twelfth circuit is grounded, and a capacitor C29 and a capacitor C30 are connected in parallel to the twelfth circuit.

5. The ultra-bright flash control system for machine vision light source according to claim 2, characterized in that: The power supply circuit also includes a seventh circuit, one end of the seventh circuit is connected to an interface of the wiring terminal, and the other end is connected to the second wiring terminal through the third wiring terminal. The wiring terminal J1 is used to install the light-emitting body, and the other interface of the wiring terminal is connected to the eighth circuit.

6. The ultra-bright flash control system for machine vision light sources according to claim 5, characterized in that: The control circuit includes a MOSFET driver U15 and a MOS transistor Q1. The input end of the MOSFET driver is connected to the controller, and the output end of the MOSFET driver U15 is connected to the gate of the MOS transistor Q1 via a sixth circuit. The controller can control the on and off of the MOS transistor Q1 by controlling its input to the MOSFET driver U15. The drain of the MOS transistor Q1 is connected to the other end of the eighth circuit, and the source of the MOS transistor Q1 is grounded via a ninth circuit. A resistor R55 is provided on the ninth circuit.

7. The ultra-bright flash control system for machine vision light sources according to claim 6, characterized in that: A resistor R49 and a diode D6 are connected in parallel between the seventh circuit and the eighth circuit. The diode D6 is unidirectionally conductive in a direction from the eighth circuit to the seventh circuit.