Jun-Jun lamp based on Jun-Jun glove and mounting structure of Jun-Jun lamp
By combining dual photoresistors and Velcro telescopic straps, the intelligent light control and fixation issues of the fluorescent light are solved, enabling automatic start-stop and secure installation in any posture, improving the intelligence and comfort of the device, and adapting it to various outdoor applications.
Patent Information
- Application Number
- CN202511740405.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-25
- Publication Date
- 2026-01-02
AI Technical Summary
Existing fluorescent lights lack intelligent light control functions, require manual switching, are prone to malfunction due to their single-sided light sensor, are easily detached due to poor fixation, and emit glaring light, affecting their usability and comfort.
It employs dual photoresistors to achieve light control in any posture, with adjustable Velcro straps for fixation, and a diffuser to soften the light source, simulating firefly glow. The combination of Velcro hooks and elastic straps ensures that the device automatically starts and stops and is securely installed in any posture.
It achieves automatic start and stop in any posture, the light is soft to simulate the glow of fireflies, the device is firmly and reliably installed, and the intelligence and comfort of use are improved, making it suitable for various outdoor applications.
Smart Images

Figure CN121252004A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of biological observation and ecological interaction technology, specifically to a firefly-inducing lamp based on a firefly-inducing glove and its installation structure. Background Technology
[0002] Firefly lamps are devices specifically designed to simulate the light signals of fireflies to attract other insects of the same species. They emit light of a specific wavelength and flashing frequency to mimic the courtship signals of fireflies. They are mainly used for ecological observation, nature education, or nighttime interactive activities, and their purpose is to enhance the connection between humans and nature and assist in scientific research and monitoring.
[0003] Most common firefly-attracting lights lack comprehensive intelligent light control functions, failing to automatically turn on at dusk and off at dawn. Their control methods largely rely on manual switches, requiring frequent user operation. If forgotten to turn off, they easily waste electricity, making them unsuitable for long-term unattended field observation needs. Although some are equipped with photosensitive elements, they are only arranged on one side. When the device is placed haphazardly or blocked by vegetation or objects, the light sensor fails, rendering the automatic control function useless. Furthermore, the devices generally lack reliable fixing structures, making it difficult to securely install on tree branches, railings, tents, or backpacks, and they are prone to slipping or tipping over, which is extremely inconvenient, especially in complex outdoor terrain. At the same time, the light is often a glaring direct beam without diffusion, resulting in insufficient realism in simulating fireflies, affecting the insect-attracting effect and the comfort of nighttime use. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides a firefly lamp based on a firefly glove and its installation structure. Dual photoresistors enable light-controlled start and stop in any posture, ensuring reliability and intelligence. The Velcro elastic strap allows for adjustable fixation, adapting to multiple scenarios. Installation is convenient and secure, solving the problems of common firefly lamps that require manual switching, lack intelligent light control, are prone to failure due to single-sided photosensitive sensors, are easily detached due to poor fixation, and have glaring light that lacks softening, thus affecting the user experience.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a firefly-emitting lamp based on a firefly-emitting glove and its installation structure, comprising an outer shell, the outer shell being divided into a front shell and a rear shell, with an installation plate disposed between the front shell and the rear shell; further comprising a circuit board mounted on the installation plate, an LED light mounted on the surface of both the front shell and the rear shell, a diffuser being provided on the outer side of the LED light, a frequency adjustment knob and a power switch mounted on the front shell, a lithium battery mounted on the installation plate, a Velcro hook surface mounted on the front shell, a Velcro stretchable fabric strap mounted on the rear shell, a photoresistor mounted on both the front shell and the rear shell, and a charging port being provided on the lower end face of the installation plate, the charging port being electrically connected to the lithium battery for charging the lithium battery.
[0006] Furthermore, the LED light is a yellow-green light-emitting diode, and its main emission wavelength is 555nm to 570nm.
[0007] Furthermore, the diffuser is a hemispherical cover made of milky white silicone material. The bottom of the diffuser is fixed to the front and rear shells by a snap-fit method and completely covers the LED lights.
[0008] Furthermore, the rotation shaft of the frequency adjustment knob passes through the front shell and is connected to a potentiometer soldered on the circuit board. When the frequency adjustment knob is rotated to change the resistance value of the potentiometer, the flashing frequency of the LED will change accordingly.
[0009] Furthermore, the photosensitive surface of the photoresistor faces the external environment, and light-transmitting holes are provided on the front and rear shells corresponding to the positions of the photoresistor. When the ambient light intensity detected by the photoresistor is lower than a preset threshold, the control circuit board will start the LED to flash.
[0010] Furthermore, the lithium battery is fixed to the back of the circuit board via a connector, and the circuit board integrates a charging management module for managing the charging process of the lithium battery.
[0011] Furthermore, the free end of the Velcro stretch tape can be pulled out and wrapped around an object. When temporary fixation is required, the Velcro stretch tape is pulled out and wrapped around the object, and the loop side of the Velcro stretch tape adheres to the hook side of the Velcro, thus securing the outer shell.
[0012] Compared with the prior art, the technical solution of this application has the following beneficial effects:
[0013] 1. Photoresistors are installed on both the front and rear shells, enabling the detection of ambient light from two directions. Regardless of whether the device is placed facing up, facing down, or on its side, at least one photoresistor can effectively sense changes in external light, ensuring that the device can accurately achieve the intelligent light control function of "automatically turning on at dusk and automatically turning off at dawn" in any installation position. This avoids the problem of functional failure due to one-sided light sensing being blocked, thus improving the reliability and intelligence level of use.
[0014] 2. It adopts a combination design of Velcro hook side and telescopic loop tape. Users can pull out the telescopic loop tape and wrap it around objects such as tree branches, railings, and backpacks, and then stick it to the hook side to achieve quick and secure binding. The telescopic design allows the loop tape to be adjusted in length to adapt to objects of different thicknesses, and it can be retracted and reset when not in use to keep the device neat. This design improves the installation flexibility and convenience of the device in complex outdoor environments.
[0015] 3. The device is equipped with LED lights on both the front and rear shells, enabling simultaneous illumination from both sides. Compared to insect-attracting lamps that emit light from only one side, its light coverage angle is wider, and it can emit simulated firefly flashing signals at close range or near range, significantly expanding the attraction range and visibility of target fireflies, and improving the success rate of trapping or observing them. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of the present invention;
[0017] Figure 2 This is a three-dimensional structural diagram of the location of the photoresistor in this invention;
[0018] Figure 3 This is a schematic diagram of the disassembled three-dimensional structure of the present invention;
[0019] Figure 4 This is a three-dimensional structural diagram of the location of the circuit board of the present invention;
[0020] Figure 5 This is a three-dimensional structural diagram of the location of the charging port in this invention.
[0021] In the diagram: 1. Outer shell; 101. Front shell; 102. Mounting plate; 103. Rear shell; 2. Circuit board; 3. LED light; 4. Diffuser cover; 5. Frequency adjustment knob; 6. Power switch; 7. Lithium battery; 8. Charging port; 9. Hook and loop fastener; 10. Hook and loop stretchable fabric tape; 11. Photoresistor. Detailed Implementation
[0022] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0023] Please see Figure 1 This embodiment includes a firefly-emitting lamp based on a firefly-emitting glove and its installation structure, comprising an outer shell 1, which is divided into a front shell 101 and a rear shell 103, with a mounting plate 102 disposed between the front shell 101 and the rear shell 103; it also includes a circuit board 2 mounted on the mounting plate 102, an LED light 3 mounted on the surface of both the front shell 101 and the rear shell 103, a diffuser 4 disposed on the outer side of the LED light 3, and a frequency adjustment knob 5 and a power switch 6 mounted on the front shell 101.
[0024] In this embodiment, the device uses a dual photoresistor design on the front and rear shells 103 to ensure that it can achieve automatic light-controlled switching in any placement posture, thus improving reliability. At the same time, it adopts a combination of Velcro hooks 9 and telescopic fabric tape, which can be adjusted in length for winding and fixing, adapting to various scenarios and making it convenient to use.
[0025] Please see Figures 1-5In this embodiment, to ensure that the device can sense light regardless of its placement and automatically turn on and off without being obstructed, a lithium battery 7 is installed on the mounting plate 102, a Velcro hook surface 9 is installed on the front shell 101, and a Velcro retractable loop tape 10 is installed on the rear shell 103. A photoresistor 11 is installed on both the front shell 101 and the rear shell 103. A charging port 8 is provided on the lower end face of the mounting plate 102, which is electrically connected to the lithium battery 7 for charging the lithium battery 7. The LED 3 is a yellow-green light-emitting diode with a main emission wavelength of 555nm to 570nm. The photosensitive surface of the photoresistor 11 faces the external environment, and light-transmitting holes are provided on the front shell 101 and the rear shell 103 corresponding to the position of the photoresistor 11. When the ambient light intensity detected by the photoresistor 11 is lower than a preset threshold, the control circuit board 2 will start the LED 3 to flash.
[0026] In this embodiment, photoresistors 11 are installed on both the front shell 101 and the rear shell 103. The photosensitive surfaces of both photoresistors 11 face the external environment. Light-transmitting holes are provided at corresponding positions on the front shell 101 and the rear shell 103, so that at least one photoresistor 11 can receive ambient light when the device is placed in any direction. When the light intensity is detected to be lower than a preset threshold, the circuit board 2 is automatically triggered to start the LED 3 to flash, realizing intelligent control of automatically turning on when it gets dark and automatically turning off when it gets light. This avoids functional failure caused by the light sensor being blocked on one side, improving the reliability and intelligence level of use. The LED 3 uses a yellow-green light-emitting diode with a main emission wavelength of 555 nm to 570 nm. This wavelength of light is closest to the natural bioluminescence characteristics of fireflies and has a strong attraction to target insects. Gravity ensures the effectiveness of the light signal. A lithium battery 7 is installed on the mounting plate 102 to provide power to the entire device. The lithium battery 7 is fixed by a connector, which is safe and stable. A charging port 8 is opened on the lower end face of the mounting plate 102. The charging port 8 is electrically connected to the lithium battery 7, which supports external charging. There is no need to replace the battery, making it more environmentally friendly and convenient to use. A Velcro hook surface 9 is installed on the front shell 101, and a Velcro telescopic loop tape 10 is installed on the rear shell 103. When in use, the telescopic loop tape can be pulled out and wrapped around objects such as tree branches and railings, and then glued to the hook surface to achieve a firm binding and fixation. The telescopic design can adapt to fixing objects of different thicknesses. When not in use, the loop tape can be retracted and reset to keep the device tidy. This combination structure makes the device flexible and convenient to install in complex outdoor environments and has strong adaptability.
[0027] It should be noted that the diffuser 4 is a hemispherical cover made of milky white silicone material. The bottom of the diffuser 4 is fixed to the front shell 101 and the rear shell 103 by a snap-fit mechanism, completely covering the LED 3. The rotation axis of the frequency adjustment knob 5 passes through the front shell 101 and is connected to a potentiometer on the circuit board 2. When the frequency adjustment knob 5 is rotated to change the resistance value of the potentiometer, the flashing frequency of the LED 3 changes accordingly. The lithium battery 7 is fixed to the back of the circuit board 2 via a connector, and the circuit board 2 integrates a charging management module for managing the charging process of the lithium battery 7. The diffuser 4, made of milky white silicone material, softens and diffuses the point light source emitted by the LED 3, making the light more uniform and hazy, eliminating glare, and highly simulating fluorescence. The visual effect of fireflies' natural bioluminescence enhances the realism and effectiveness of attracting insects. The diffuser hood 4 is fixed to the front shell 101 and the rear shell 103 by a snap-fit mechanism, ensuring a secure installation and facilitating disassembly and maintenance. The rotation shaft of the frequency adjustment knob 5 is connected to a potentiometer on the circuit board 2. By rotating the frequency adjustment knob 5, the resistance of the potentiometer is changed, thereby adjusting the flashing frequency of the LED light 3. Users can manually adjust the frequency according to the bioluminescence rhythm of different firefly species to achieve precise simulation and enhance the attraction effect. The lithium battery 7 is fixed to the back of the circuit board 2 via a connector, ensuring stable and reliable installation. In conjunction with the charging management module integrated on the circuit board 2, the charging process can be effectively controlled to prevent overcharging and over-discharging, ensuring battery safety and extending its service life. It supports repeated charging and is economical and environmentally friendly.
[0028] Please see Figures 1-5 In this embodiment, in order to make the hook and loop tape stretchable and securely fixed wherever it is wrapped, and easy to retract when not in use, the free end of the hook and loop tape 10 can be pulled out and wrapped around an object. When temporary fixation is required, the hook and loop tape 10 is pulled out and wrapped around the object, and the loop side of the hook and loop tape 10 is bonded to the hook and loop hook side 9 to bind and fix the outer shell 1.
[0029] In this embodiment, the free end of the Velcro retractable textured tape 10 can be pulled out, and its adjustable length allows it to accommodate objects of varying thicknesses. When temporary fixation is needed, the pulled-out textured tape can be wrapped around objects such as tree branches, railings, or backpacks. Its textured surface firmly adheres to the Velcro hook surface 9 on the front shell 101, achieving quick and secure binding. The installation is firm and reliable, requiring no additional tools and is very convenient to use. When not in use, the textured tape can be retracted to prevent loosening and tangling, keeping the device neat and aesthetically pleasing. This design gives the device excellent installation flexibility and adaptability in complex and ever-changing outdoor environments, allowing it to be secured wherever needed, with simple and efficient operation.
[0030] It should be noted that a microcontroller is integrated on the circuit board 2. The microcontroller is electrically connected to the photoresistor 11, potentiometer, LED 3 and power switch 6. It is used to receive signals from the photoresistor and potentiometer and control the switching and flashing frequency of the LED according to a preset program.
[0031] The working principle of the above embodiments is as follows:
[0032] In use, first charge the lithium battery 7 inside the device through charging port 8. Once charging is complete, it is ready to use. When the ambient light dims, the photoresistors 11 on both the front shell 101 and the rear shell 103 can sense a decrease in light intensity. Once the light intensity falls below a preset threshold, the circuit board 2 automatically starts working, and the LED 3 begins to flash. Simultaneously, the user can adjust the flashing speed of the LED 3 by rotating the frequency adjustment knob 5 to change the potentiometer resistance, thus simulating the bioluminescence rhythm of different types of fireflies. The yellow-green light emitted by the LED 3 has a wavelength between 555 nanometers and 570 nanometers, effectively attracting fireflies. After passing through the outer milky white silicone diffuser 4, the light becomes uniform and soft, more closely resembling the visual effect of fireflies' natural glow. When the device needs to be fixed to objects such as tree branches or railings, the Velcro retractable textured tape 10 on the back shell 103 can be pulled out, wrapped around the object, and then adhered to the Velcro hook surface 9 on the front shell 101 for a secure and convenient binding. When not in use, the textured tape can be retracted and returned to its original position to keep it tidy. During the day, when the ambient light increases, the photoresistor 11 detects the increased light, and the circuit board 2 automatically turns off the LED light 3 and enters standby mode. The entire process requires no manual intervention, achieving automatic start and stop, which is energy-saving and environmentally friendly.
[0033] It should be noted that the control method of the present invention is controlled by a controller. The control circuit of the controller can be implemented by those skilled in the art through simple programming. The power supply is also common knowledge in the field. Furthermore, the present invention is mainly used to protect mechanical devices, so the control method and circuit connection will not be explained in detail.
[0034] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0035] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A glow calling glove based glow calling lamp and its mounting structure, comprising a shell body (1), the shell body (1) is divided into a front shell (101) and a rear shell (103), and a mounting plate (102) is arranged between the front shell (101) and the rear shell (103); characterized in that: It also includes the circuit board (2) installed on the mounting plate (102), the surface of the front shell (101) and the rear shell (103) are installed with an LED lamp (3), the outer side of the LED lamp (3) is provided with a diffusion cover (4), the front shell (101) is installed with a frequency adjusting knob (5) and a power switch (6), the mounting plate (102) is installed with a lithium battery (7), the front shell (101) is installed with a magic hook surface (9), the rear shell (103) is installed with a magic stretchy surface tape (10), the front shell (101) and the rear shell (103) are installed with a photosensitive resistor (11), the lower end surface of the mounting plate (102) is provided with a charging port (8), the charging port (8) is electrically connected with the lithium battery (7), and the lithium battery (7) is charged.
2. A glow-calling glove based glow-calling lamp and its mounting structure according to claim 1, characterized in that: The LED lamp (3) is a yellow-green light-emitting diode, and the main light-emitting wavelength of the LED lamp (3) is 555nm to 570nm.
3. A glow-calling glove based glow-calling lamp and its mounting structure according to claim 2, characterized in that: The diffusion cover (4) is a hemispherical cover body made of milky white silica gel material, the diffusion cover (4) is fixed on the front shell (101) and the rear shell (103) by buckle, and covers the LED lamp (3) completely.
4. A glow-calling glove based glow-calling lamp and its mounting structure according to claim 3, characterized in that: The rotating shaft of the frequency adjusting knob (5) penetrates the front shell (101) and is connected to the potentiometer welded on the circuit board (2), when the frequency adjusting knob (5) is rotated to change the resistance value of the potentiometer, the flicker frequency of the LED lamp (3) will change with the resistance value.
5. A glow-calling glove based glow-calling lamp and its mounting structure according to claim 4, characterized in that: The photosensitive surface of the photosensitive resistor (11) faces the external environment, and the front shell (101) and the rear shell (103) are provided with light transmission holes corresponding to the position of the photosensitive resistor (11), when the ambient light intensity detected by the photosensitive resistor (11) is lower than the preset threshold, the control circuit board (2) will start the flicker of the LED lamp (3).
6. A glow-calling glove based glow-calling lamp and its mounting structure according to claim 5, characterized in that: The lithium battery (7) is fixed on the back of the circuit board (2) through the connector, and the circuit board (2) is integrated with a charging management module for managing the charging process of the lithium battery (7).
7. A glow-calling glove based glow-calling lamp and its mounting structure according to claim 1, characterized in that: The free end of the magic stretchy surface tape (10) can be pulled out and wound around the object, when temporary fixing is needed, the magic stretchy surface tape (10) is pulled out and wound around the object, the surface of the magic stretchy surface tape (10) is adhered to the magic hook surface (9), and the shell body (1) is fixed by binding.