Slow gate flash triggering control circuit

By designing a slow shutter speed flash control circuit, the slow shutter speed shooting function and independent power supply of the flash trigger are realized, solving the problems of the inability to perform slow shutter speed shooting and the inconvenience in use in the existing technology, and improving the shooting effect and user convenience.

CN223402612UActive Publication Date: 2025-09-30SHENZHEN MINGMEI MOBILE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422587564.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-09-30
Estimated Expiration
2034-10-25

AI Technical Summary

Technical Problem

Existing flash triggers can only perform regular shutter shooting and cannot achieve slow shutter shooting, resulting in the formation of ghosting when shooting moving objects, and requiring multiple shooting superposition, which is inconvenient to use.

Method used

A slow shutter speed flash control circuit is designed, which includes a main control module, a display module, a button module, a PD fast charging module and a camera trigger charging module. The main control module receives the camera trigger signal to set the flash parameters, realizing multiple flashes of the flash. Combined with the PD fast charging module, it powers the flash trigger and camera, supporting slow shutter speed shooting.

Benefits of technology

It achieves the effect of recording the entire process of moving objects in one photo, makes up for the problem of insufficient camera battery power, enables the flash trigger to be used independently, and improves the user experience.

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Abstract

The utility model discloses a slow gate flash triggering control circuit, and belongs to the field of flash triggering devices. The slow gate flash triggering control circuit comprises a main control module, a display module, a key module, a PD fast charging module and a photographing triggering charging module, the display module and the key module are electrically connected with the main control module, and the PD fast charging module is electrically connected with the main control module through the photographing triggering charging module. Compared with the prior art, when the flash trigger device is used and a trigger signal given by a camera is received, the key module can set flash parameters such as flash times and flash frequency of the flash lamp through the main control module, and the flash lamp flashes for multiple times within the exposure time of the camera, so that slow-door shooting is realized; meanwhile, during photographing, power can be supplied to the flash trigger and a camera battery and an external power supply can be provided for the camera through the PD fast charging module, so that the problem that the working time of the camera battery is insufficient is solved, the flash trigger can be independently used, and a user can use the flash trigger more conveniently.
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Description

Technical Field

[0001] The utility model belongs to the technical field of flash triggers, in particular to a slow-door flash triggering control circuit. Background Art

[0002] A flash trigger is an auxiliary device for photographic equipment, typically used in conjunction with various flash units in the studio. Mounted on the camera, the flash trigger controls the flash unit through optical, wired, or wireless means, synchronizing the flash unit's flash timing with the camera's shutter. To achieve optimal photographic results, most professional cameras are equipped with an external flash unit, which connects to the flash trigger unit via radio, optical cable, infrared, or direct electrical connection. When the operator presses the shutter button, the camera transmits a trigger signal to the flash trigger unit via an output electrode. The flash trigger then sends a command via a control circuit, activating the connected flash unit and synchronizing its operation with the camera's shutter.

[0003] When using, the existing flash trigger generally needs to be equipped with an independent external battery for power supply. The flash trigger cannot be used independently, which easily brings inconvenience to the user.

[0004] In order to solve this problem, the patent with publication number CN220473834U discloses a flash trigger with a charging effect. A battery is set inside the flash trigger, and the battery is electrically connected to the control circuit board. When the flash trigger is in use, the battery can power the flash trigger and the camera battery, which is convenient for users to use and improves the user experience.

[0005] However, the flash trigger disclosed in the aforementioned patent only has a shutter triggering function, which allows for conventional shutter shooting and does not facilitate slow shutter shooting. Conventional shutter shooting only produces one flash per exposure, which can cause smearing when shooting moving objects, resulting in poor shooting quality. To better capture the entire process of a moving object, multiple shots are usually required, and the motion effect is displayed by superimposing multiple photos, which is quite inconvenient. Utility Model Content

[0006] In order to solve the above problems, the purpose of the present invention is to provide a slow shutter flash control circuit, which enables the flash trigger to have the function of slow shutter flash, thereby facilitating slow shutter shooting with the camera.

[0007] To achieve the above purpose, the technical solution of the utility model is as follows:

[0008] The utility model provides a slow-door flash control circuit, comprising:

[0009] Main control module, used for signal control processing;

[0010] Display module, used for displaying control parameters;

[0011] Button module, used to adjust control parameters;

[0012] PD fast charging module, used to provide power to the flash trigger;

[0013] The photo-trigger charging module is used to control the switch of the PD fast charging module;

[0014] The display module and the button module are both electrically connected to the main control module, and the PD fast charging module is electrically connected to the main control module by triggering the charging module through taking pictures.

[0015] Furthermore, the main control module includes a main control MCU, and the display module, button module, and photo trigger charging module are all electrically connected to the main control MCU.

[0016] Furthermore, the main control MCU is of model STC8H1K28. Furthermore, the main control module further includes a capacitor C3 and a capacitor C4, wherein a common terminal formed by the capacitors C3 and C4 being connected in parallel is connected to the main control MCU, and the other common terminal is grounded.

[0017] Furthermore, the main control module also includes a resistor R8, a voltage-stabilizing diode, and a capacitor C5. One end of the capacitor C5 and one end of the resistor R8 form a common end connected to the main control MCU, and the other end of the capacitor C5 is grounded; the other end of the resistor R8 is connected to one end of the voltage-stabilizing diode, and the end of the voltage-stabilizing diode away from the resistor R8 is grounded.

[0018] Furthermore, the display module includes an OLED 1, and the OLED 1 is connected to the main control MCU.

[0019] Furthermore, the display module also includes capacitors C6, C7, C14, C15, C16, and R22. The two ends of the capacitors C6 and C6 are respectively connected to different pins of OLED1 to form a closed loop; one end of the capacitors C15 and C16 forms a common end connected to OLED1, one end of the capacitors C14 and R22 is respectively connected to OLED1, and the other ends of the capacitors C14, C15, C16, and R22 form a common end and are grounded.

[0020] Furthermore, the button module includes a button K2, a button K3, and a button K4, which are connected to different pins of the main control module. Among them, the button K2 is used to select the working module, and the button K3 and the button K4 are used to set the number of flashes and the flash frequency respectively.

[0021] Furthermore, the photo trigger charging module includes a button K1, a resistor R9, a resistor R10, a resistor R11, a resistor R12, a transistor Q2, and a transistor Q3. One end of the button K1 is connected to the PD fast charging module, and the other end forms a common end with one end of the resistor R10 and is connected to the first pole of the transistor Q2; the other end of the resistor R10 and one end of the resistor R12 form a common end and are connected to the PD fast charging module; the second pole of the transistor Q2 forms a common end with one end of the resistor R9 and is connected to the resistor R13, and the third pole of the transistor Q2 forms a common end with the other end of the resistor R9 and is connected to the PD fast charging module; the end of the resistor R13 away from the transistor Q2 is connected in series with the transistor Q3 and the resistor R11 and is connected to the main control MCU.

[0022] Furthermore, the PD fast charging module includes a charging chip U2, which is connected to the button K1, the charging chip U2 is connected to the common end formed by the resistor R10 and the resistor R12, and the charging chip U2 is connected to the common end formed by the transistor Q2 and the resistor R9.

[0023] Furthermore, the chip model of the charging chip U2 is IP2366.

[0024] Furthermore, the PD fast charging module also includes a resistor R19, a capacitor C9, a capacitor C10, and a capacitor C11. One end of the resistor R19, capacitor C9, capacitor C10, and capacitor C11 form a common end with the external VBUS power supply line and are connected to the seventh and eighth pins of the charging chip U2 for filtering.

[0025] Furthermore, the PD fast charging module also includes capacitor C17, resistor R24, resistor R26, capacitor C19, capacitor C25, capacitor C26, capacitor C33, capacitor C36, capacitor C38, capacitor C40, capacitor C41, capacitor C42, capacitor C43, and capacitor C44. The capacitors C19, C25, C26, C33, capacitor C36, capacitor C38, capacitor C40, capacitor C41, capacitor C42, capacitor C43, and capacitor C44 are connected in parallel to form a common end connected to the common end formed by resistor R24 ​​and capacitor C17. Resistors R24 and R26 are connected in series, and one end of capacitor C17 and resistor R26 forms a common end and is connected to the tenth pin of the charging chip U2. One end of the resistor R24 ​​and resistor R26 forms a common end and is connected to the eleventh pin of the charging chip U2.

[0026] Furthermore, the PD fast charging module also includes a transistor Q4, a transistor Q7, a capacitor C31, a capacitor C34, a resistor R27, an inductor L1, a capacitor C32, a capacitor C35, a resistor R28, a transistor Q6, and a transistor Q8. The first pole of the transistor Q4 is connected to the eleventh pin of the charging chip U2, and the second pole of the transistor Q4 is connected to the twelfth pin of the charging chip U2; the first pole of the transistor Q7 is grounded, and the second pole is connected to the fifteenth pin of the charging chip U2; the resistor R27, the capacitor C34, and the capacitor C31 are connected in series and connected to the thirteenth pin of the charging chip U2, and the third pole of the transistor Q4 and the third pole of the transistor Q7 are connected in series. , capacitor C31, capacitor C34, and one end of the inductor L1 form a common end connected to the fourteenth pin of the charging chip U2; the first pole of the transistor Q6 is connected to the twentieth pin of the charging chip U2, and the second pole of the transistor Q6 is connected to the nineteenth pin of the charging chip U2; the first pole of the transistor Q8 is grounded, and the second pole is connected to the sixteenth pin of the charging chip U2; the resistor R28, capacitor C35, and capacitor C32 are connected in series and connected to the eighteenth pin of the charging chip U2, the third pole of the transistor Q6, the third pole of the transistor Q8, capacitor C32, capacitor C35, and one end of the inductor L1 form a common end connected to the seventeenth pin of the charging chip U2.

[0027] Furthermore, the PD fast charging module also includes capacitor C12, capacitor C13, capacitor C20, capacitor C21, capacitor C22, capacitor C23, capacitor C24, capacitor C18, resistor R23, and resistor R25. The capacitor C12, capacitor C13, capacitor C20, capacitor C21, capacitor C22, capacitor C23, and capacitor C24 are connected in parallel to form a common end connected to the common end formed by capacitor C18 and resistor R23. The resistor R23 and resistor R25 are connected in series to form a common end formed by capacitor C18 and connected to the 21st pin of the charging chip U2, and the common end formed by the resistor R23 and resistor R25 is connected to the 20th pin of the charging chip U2.

[0028] Furthermore, the slow shutter flash triggering control circuit also includes a flash trigger status indicator module, which includes resistors R2 and R3, and LED 3. Resistors R2 and R3 are connected in parallel to form two common terminals, one of which is connected to the main control MCU, and the other is connected to LED 3. The end of LED 3 away from resistors R2 and R3 is connected to the main control MCU. The flash trigger status indicator module indicates the working status of the flash trigger power by setting LED 3.

[0029] Furthermore, the slow shutter flash control circuit also includes a flash trigger light signal transmitting module, which includes a resistor R1, LED1, resistor R4, LED2, transistor Q1, resistor R5, and resistor R6. The resistor R1 and LED1 are connected in series, and the resistor R4 and LED2 are connected in series. A common end formed by the resistor R1 and the resistor R4 is connected to the main control MUC, and the LED1 and LED2 form a common end connected to the first pole of the transistor Q1; the second pole of the transistor Q1 is grounded; the resistor R5 and the resistor R6 form a common end connected to the third pole of the transistor Q1; the other end of the resistor R6 is grounded, and the other end of the resistor R5 is connected to the main control MCU.

[0030] The beneficial effects of the present invention are as follows:

[0031] Firstly, when the flash trigger of the present invention is used, upon receiving a trigger signal from the camera, the button module can set the flash parameters such as the number of flashes and the flash frequency through the main control module. Within the camera exposure time, the flash flashes multiple times to achieve slow shutter shooting, leaving multiple images in one photo. When shooting moving objects, the entire process of movement can be recorded, and the shooting effect is better.

[0032] Secondly, when taking pictures, the PD fast charging module can also be used to power the flash trigger and camera battery, providing external power to the camera, thereby making up for the problem of insufficient working time of the camera's own battery, and also allowing the flash trigger to be used independently, making it more convenient for users to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 This is a module block diagram of the slow shutter flash control circuit of this embodiment.

[0034] Figure 2 4 is a circuit diagram of the main control module of this embodiment.

[0035] Figure 3 4 is a circuit diagram of the display module of this embodiment.

[0036] Figure 4 4 is a circuit diagram of the key module of this embodiment.

[0037] Figure 5 This is a circuit diagram of the PD fast charging module of this embodiment.

[0038] Figure 6 2 is a circuit diagram of the photo-triggering charging module of this embodiment.

[0039] Figure 7 4 is a circuit diagram of the flash trigger status indication module of this embodiment.

[0040] Figure 8 This is the circuit schematic of the flash trigger optical signal transmitting module.

[0041] Figure 9 4 is a circuit schematic diagram of some auxiliary modules of the slow shutter flash control circuit of this embodiment. DETAILED DESCRIPTION

[0042] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0043] To achieve the above purpose, the technical solution of the utility model is as follows:

[0044] See also Figure 1-9 As shown, this embodiment provides a slow shutter flash control circuit, including:

[0045] Main control module, used for signal control processing;

[0046] Display module, used for displaying control parameters;

[0047] Button module, used to adjust control parameters;

[0048] PD fast charging module, used to provide power to the flash trigger;

[0049] The photo-trigger charging module is used to control the switch of the PD fast charging module;

[0050] The display module and the button module are both electrically connected to the main control module, and the PD fast charging module is electrically connected to the main control module by triggering the charging module through taking pictures.

[0051] In this application, when the operator presses the camera shutter, the main control module of the flash trigger receives the trigger signal from the camera, and then controls the photo trigger charging module to send a trigger signal to the PD fast charging module, controls the PD fast charging module to start up, and supplies power to the flash trigger and the camera; when the flash trigger is in use, when it receives a trigger signal from the camera, the button module can set the flash parameters such as the number of flashes and flash frequency of the flash through the main control module. Within the camera exposure time, the flash flashes multiple times to achieve slow shutter shooting, leaving multiple images in one photo. When shooting moving objects, the entire process of movement can be recorded, and the shooting effect is better; the display module can display the current flash parameters, which is convenient for the photographer to adjust the flash parameters.

[0052] Furthermore, the main control module includes a main control MCU, and the display module, button module, and photo trigger charging module are all electrically connected to the main control MCU.

[0053] Furthermore, the model of the main control MCU is STC8H1K28. It should be noted that in this application, the main control MCU is a prior art, which can adjust flash parameters such as the number of flashes and flash frequency according to the trigger signal transmitted by the camera by modifying the internal program of the chip. For example, after receiving a trigger signal, the number of flashes of the flash can be changed from one to multiple times.

[0054] Furthermore, the main control module further includes a capacitor C3 and a capacitor C4. A common terminal formed by connecting the capacitors C3 and C4 in parallel is connected to the main control MCU, and the other common terminal is grounded.

[0055] Furthermore, the main control module also includes a resistor R8, a voltage-stabilizing diode, and a capacitor C5. One end of the capacitor C5 and one end of the resistor R8 form a common end connected to the main control MCU, and the other end of the capacitor C5 is grounded; the other end of the resistor R8 is connected to one end of the voltage-stabilizing diode, and the end of the voltage-stabilizing diode away from the resistor R8 is grounded.

[0056] Furthermore, the display module includes an OLED1, and the OLED1 is connected to the main control MCU.

[0057] Furthermore, the display module also includes capacitors C6, C7, C14, C15, C16, and R22. The two ends of capacitors C6 and C6 are respectively connected to different pins of OLED1 to form a closed loop; one end of capacitors C15 and C16 forms a common end connected to OELD1, one end of capacitor C14 and resistor R22 are respectively connected to OELD1, and the other ends of capacitors C14, C15, C16, and resistor R22 form a common end and are grounded.

[0058] Furthermore, the button module includes buttons K2, K3, and K4, which are connected to different pins of the main control module. Among them, button K2 is used to select the working module, and buttons K3 and K4 are used to set the number of flashes and flash frequency respectively.

[0059] Furthermore, the photo trigger charging module includes a button K1, a resistor R9, a resistor R10, a resistor R11, a resistor R12, a transistor Q2, and a transistor Q3. One end of the button K1 is connected to the PD fast charging module, and the other end forms a common end with one end of the resistor R10 and is connected to the first pole of the transistor Q2; the other end of the resistor R10 and one end of the resistor R12 form a common end and are connected to the PD fast charging module; the second pole of the transistor Q2 forms a common end with one end of the resistor R9 and is connected to the resistor R13, and the third pole of the transistor Q2 forms a common end with the other end of the resistor R9 and is connected to the PD fast charging module; the end of the resistor R13 away from the transistor Q2 is connected in series with the transistor Q3 and the resistor R11 and is connected to the main control MCU.

[0060] Furthermore, the PD fast charging module includes a charging chip U2, which is connected to the button K1, the charging chip U2 is connected to the common end formed by the resistor R10 and the resistor R12, and the charging chip U2 is connected to the common end formed by the transistor Q2 and the resistor R9.

[0061] Furthermore, the chip model of the charging chip U2 is IP2366.

[0062] Furthermore, the PD fast charging module also includes a resistor R19, a capacitor C9, a capacitor C10, and a capacitor C11. One end of the resistor R19, the capacitor C9, the capacitor C10, and the capacitor C11 form a common end with the external VBUS power supply line and are connected to the seventh and eighth pins of the charging chip U2 for filtering.

[0063] Furthermore, the PD fast charging module also includes capacitor C17, resistor R24, resistor R26, capacitor C19, capacitor C25, capacitor C26, capacitor C33, capacitor C36, capacitor C38, capacitor C40, capacitor C41, capacitor C42, capacitor C43, and capacitor C44. Capacitor C19, capacitor C25, capacitor C26, capacitor C33, capacitor C36, capacitor C38, capacitor C40, capacitor C41, capacitor C42, capacitor C43, and capacitor C44 are connected in parallel to form a common end connected to the common end formed by resistor R24 ​​and capacitor C17. Resistor R24 ​​and resistor R26 are connected in series, and one end of capacitor C17 and resistor R26 form a common end and are connected to the tenth pin of the charging chip U2. One end of resistor R24 ​​and resistor R26 form a common end and are connected to the eleventh pin of the charging chip U2.

[0064] Furthermore, the PD fast charging module also includes transistor Q4, transistor Q7, capacitor C31, capacitor C34, resistor R27, inductor L1, capacitor C32, capacitor C35, resistor R28, transistor Q6, and transistor Q8. The first pole of transistor Q4 is connected to the eleventh pin of the charging chip U2, and the second pole of transistor Q4 is connected to the twelfth pin of the charging chip U2; the first pole of transistor Q7 is grounded, and the second pole is connected to the fifteenth pin of the charging chip U2; the resistor R27, capacitor C34, and capacitor C31 are connected in series and connected to the thirteenth pin of the charging chip U2, the third pole of transistor Q4, the third pole of transistor Q7, One end of capacitor C31, capacitor C34, and inductor L1 form a common end connected to the fourteenth pin of charging chip U2; the first electrode of transistor Q6 is connected to the twentieth pin of charging chip U2, and the second electrode of transistor Q6 is connected to the nineteenth pin of charging chip U2; the first electrode of transistor Q8 is grounded, and the second electrode is connected to the sixteenth pin of charging chip U2; resistor R28, capacitor C35, and capacitor C32 are connected in series and connected to the eighteenth pin of charging chip U2; the third electrode of transistor Q6, the third electrode of transistor Q8, capacitor C32, capacitor C35, and one end of inductor L1 form a common end connected to the seventeenth pin of charging chip U2.

[0065] Furthermore, the PD fast charging module also includes capacitor C12, capacitor C13, capacitor C20, capacitor C21, capacitor C22, capacitor C23, capacitor C24, capacitor C18, resistor R23, and resistor R25. Capacitor C12, capacitor C13, capacitor C20, capacitor C21, capacitor C22, capacitor C23, and capacitor C24 are connected in parallel to form a common end connected to the common end formed by capacitor C18 and resistor R23. Resistor R23 and resistor R25 are connected in series to form a common end formed by capacitor C18 and connected to the 21st pin of the charging chip U2, and a common end formed by resistor R23 and resistor R25 is connected to the 20th pin of the charging chip U2.

[0066] Furthermore, the slow shutter flash triggering control circuit also includes a flash trigger status indicator module, which includes resistors R2 and R3, and LED 3. Resistors R2 and R3 are connected in parallel to form two common terminals, one of which is connected to the main control MCU, and the other is connected to LED 3. The end of LED 3, which is away from resistors R2 and R3, is connected to the main control MCU. The flash trigger status indicator module indicates the operating status of the flash trigger power by setting LED 3.

[0067] Furthermore, the slow shutter flash control circuit also includes a flash trigger light signal transmitting module, which includes a resistor R1, LED1, a resistor R4, LED2, a transistor Q1, a resistor R5, and a resistor R6. The resistor R1 and LED1 are connected in series, and the resistor R4 and LED2 are connected in series. A common end formed by the resistor R1 and the resistor R4 is connected to the main control MUC, and the LED1 and LED2 form a common end connected to the first pole of the transistor Q1; the second pole of the transistor Q1 is grounded; the resistor R5 and the resistor R6 form a common end connected to the third pole of the transistor Q1; the other end of the resistor R6 is grounded, and the other end of the resistor R5 is connected to the main control MCU.

[0068] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A slow-door flash control circuit, characterized in that: include: Main control module, used for signal control processing; Display module, used for displaying control parameters; Button module, used to adjust control parameters; The display module and the key module are both electrically connected to the main control module; The main control module includes a main control MCU, and the display module and the key module are both electrically connected to the main control MCU; The display module includes an OLED1, and the OLED1 is connected to the main control MCU; The slow shutter flash control circuit also includes a flash trigger light signal transmitting module, which includes a resistor R1, LED1, resistor R4, LED2, transistor Q1, resistor R5, and resistor R6. The resistor R1 and LED1 are connected in series, and the resistor R4 and LED2 are connected in series. A common end formed by the resistor R1 and the resistor R4 is connected to the main control MUC, and the LED1 and LED2 form a common end connected to the first pole of the transistor Q1; the second pole of the transistor Q1 is grounded; the resistor R5 and the resistor R6 form a common end connected to the third pole of the transistor Q1; the other end of the resistor R6 is grounded, and the other end of the resistor R5 is connected to the main control MCU.

2. A slow-speed flash triggering control circuit according to claim 1, characterized in that: Also includes: PD fast charging module, used to provide power to the flash trigger; The photo-trigger charging module is used to control the switch of the PD fast charging module; The PD fast charging module is electrically connected to the main control module by triggering the charging module through taking pictures.

3. A slow-speed flash triggering control circuit as claimed in claim 2, characterized in that: The photo-taking trigger charging module is electrically connected to the main control MCU.

4. A slow-speed flash triggering control circuit according to claim 1, characterized in that: The model of the main control MCU is STC8H1K28.

5. A slow-speed flash triggering control circuit according to claim 1, characterized in that: The main control module further includes a capacitor C3 and a capacitor C4. A common terminal formed by connecting the capacitors C3 and C4 in parallel is connected to the main control MCU, and the other common terminal is grounded.

6. A slow-speed flash triggering control circuit according to claim 1, characterized in that: The key module includes a key K2, a key K3, and a key K4, and the key K2, the key K3, and the key K4 are respectively connected to different pins of the main control module.

7. A slow-speed flash triggering control circuit as claimed in claim 2, characterized in that: The photo trigger charging module includes a button K1, a resistor R9, a resistor R10, a resistor R11, a resistor R12, a transistor Q2, and a transistor Q3. One end of the button K1 is connected to the PD fast charging module, and the other end forms a common end with one end of the resistor R10 and is connected to the first pole of the transistor Q2; the other end of the resistor R10 and one end of the resistor R12 form a common end and are connected to the PD fast charging module; the second pole of the transistor Q2 forms a common end with one end of the resistor R9 and is then connected to the resistor R13, and the third pole of the transistor Q2 forms a common end with the other end of the resistor R9 and is then connected to the PD fast charging module; the end of the resistor R13 away from the transistor Q2 is connected in series with the transistor Q3 and the resistor R11 and is then connected to the main control MCU; The PD fast charging module includes a charging chip U2, which is connected to the button K1, the charging chip U2 is connected to the common end formed by the resistor R10 and the resistor R12, and the charging chip U2 is connected to the common end formed by the transistor Q2 and the resistor R9.

8. A slow-speed flash triggering control circuit according to claim 1, characterized in that: The slow shutter flash triggering control circuit also includes a flash trigger status indication module, which includes a resistor R2, a resistor R3, and an LED3; the resistors R2 and R3 are connected in parallel to form two common ends, one of which is connected to the main control MCU, and the other is connected to the LED3, and the end of the LED3 away from the resistors R2 and R3 is connected to the main control MCU.

Citation Information

Patent Citations

  • Flash trigger with charging effect

    CN220473834U