Energy-saving exhibition hall decorative lighting system and method
By using components such as guide columns and walking pedals to control the opening and closing of the lighting belt in the exhibition hall decorative lighting system, the problem of inability to flexibly regulate the corridor area is solved, and the effect of energy saving and flexible lighting is achieved.
Patent Information
- Application Number
- CN202511076094.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-01
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2045-08-01
AI Technical Summary
The existing exhibition hall decoration lighting system cannot be flexibly regulated in the aisle area according to the specific conditions of the active personnel, resulting in unnecessary resource consumption.
Adaptation components including guide posts, walking pedals, connecting belts, sensing control members and energy return members are adopted to control the opening and closing of the lighting belt through the sliding of the walking pedals to achieve flexible lighting in the fixed-point area.
It realizes flexible lighting in designated areas based on the actual activities of active personnel, avoids unnecessary resource consumption, and improves the energy saving and flexibility of the lighting system.
Smart Images

Figure CN120576359A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of decorative lighting, and in particular to an energy-saving exhibition hall decorative lighting system and method. Background Art
[0002] Exhibition hall decorative lighting is a crucial part of exhibition hall design. It creates a unique spatial atmosphere, highlights the characteristics of exhibits, and enhances the audience's viewing experience through means such as light and shadow effects, color matching and lamp selection. Exhibition hall lighting must not only meet basic lighting needs, but also focus on artistry and decorativeness to enhance the overall atmosphere and visual effects of the exhibition hall. At the same time, the exhibition hall lighting system needs to be highly flexible to adapt to changes in different exhibition themes and exhibit layouts. To better conserve resources and reduce energy consumption, existing exhibition hall decorative lighting systems mostly use high-efficiency energy-saving lamps such as LEDs. Compared with traditional lighting fixtures, they have lower energy consumption, longer lifespan, and higher light efficiency, which can significantly reduce the lighting energy consumption of the exhibition hall. At the same time, they are equipped with intelligent lighting control systems that can automatically adjust the lighting brightness and on / off status according to the actual usage of the exhibition hall, such as exhibition time and traffic flow, to achieve on-demand lighting and avoid unnecessary energy waste. When the existing exhibition hall decorative lighting system performs automatic lighting control, especially in some areas such as aisles where people do not need to stay for a long time, corresponding infrared sensing equipment and personnel detection instruments are generally installed to automatically turn on the power in the aisle when it senses that someone has entered the corresponding aisle, and turn off the power when no one enters. However, the existing aisle lighting systems are all integrated designs, and are controlled as a whole when turning on and off. Once the aisle is long, when people walk a short distance and then turn back, there is no need for subsequent lighting, making it impossible for the entire system to regulate and adapt the actual lighting conditions of the lighting system according to the specific circumstances of the people involved, thereby causing unnecessary resource consumption. Summary of the Invention
[0003] The purpose of the present invention is to provide an energy-saving exhibition hall decorative lighting system and method, which can flexibly illuminate a fixed area according to the actual activities of the participants through the provided components, thereby avoiding unnecessary resource consumption.
[0004] To achieve the above-mentioned object, the present invention provides an energy-saving exhibition hall decorative lighting system, comprising an aisle body and a lighting strip, wherein a plurality of the lighting strips are mounted on the aisle body, and further comprising an adapter assembly; The adapter assembly includes guide posts, walking pedals, connecting belts, sensor control components and energy recovery components. Multiple guide posts are fixedly installed under the aisle body. Multiple walking pedals are slidably connected to the guide posts and are located under the aisle body. Each walking pedal is connected by the connecting belt. The sensor control component is connected to the aisle body for monitoring the support status of the walking pedal. The energy recovery component is connected to the aisle body for cooperating with the corresponding mechanism to complete energy output.
[0005] In which, the sensor control component includes a retraction spring, a pressure sensor and a main control device, and the two sides of the retraction spring are respectively connected to the walking pedal and the aisle body; the pressure sensor is installed on the side of the aisle body close to the walking pedal; the main control device is electrically connected to the pressure sensor, and is electrically connected to the lighting lamp, and is installed on the aisle body.
[0006] In which, the energy recovery component includes a cross rod, a pressure lever, a driving shaft, an energy storage component and a linkage component, the cross rod is fixedly installed at the bottom of the aisle body; the pressure lever is rotatably installed on the cross rod; the driving shaft is fixedly installed on the pressure lever; the energy storage component is connected to the aisle body for energy production and storage distribution; the linkage component is connected to the aisle body for assisting the energy storage component in energy production by combining with the movement of the pressure lever.
[0007] Among them, the energy storage component includes a shaft generator, an accumulator, a support frame, a rotating bearing and a power generation shaft. The shaft generator is installed at the bottom of the aisle body; the accumulator is electrically connected to the shaft generator and to the main control device, and is installed on the aisle body; the support frame is fixedly installed on the aisle body; the power generation shaft is connected to the support frame through the rotating bearings arranged on both sides, and the power generation shaft is connected to the shaft generator.
[0008] Among them, the linkage components include a guide groove frame, a transverse groove slide, a toggle bracket and a wiping block, the guide groove frame is fixedly installed at the bottom of the aisle body; the transverse groove slide is connected to the driving shaft and is slidably installed on the guide groove frame; the toggle bracket is slidably installed on the transverse groove slide; the wiping block is fixedly installed on the side of the toggle bracket close to the power generation shaft.
[0009] Wherein, the energy storage component further comprises an inertia rotating sleeve and a friction outer sleeve, wherein the inertia rotating sleeve is fixedly sleeved on the power generation rotating shaft; and the friction outer sleeve is sleeved on the outside of the inertia rotating sleeve.
[0010] Among them, the linkage component also includes a guide wheel, a guide groove block, a lower bottom rotating plate and an upper connecting rotating plate. The guide wheel is rotatably installed on the back side of the toggle bracket; the guide groove block is connected to the guide wheel and fixedly installed on the bottom of the aisle body; the lower bottom rotating plate is rotatably installed on the bottom of the guide groove block; the upper connecting rotating plate is rotatably installed on the top of the guide groove block.
[0011] In which, the linkage component also includes an external turn buckle, a matching bracket and a torsion spring. The external turn buckle is fixedly installed on one side of the upper turn plate; the matching bracket is fixedly installed on the side of the guide slot block close to the external turn buckle; the torsion spring is arranged between the external turn buckle and the matching bracket.
[0012] Among them, the adapter assembly also includes a fixing frame, a downward pressure bracket, an upper bracket and an upper spring, the fixing frame is fixedly installed at the bottom of the aisle body; the downward pressure bracket is fixedly installed on the side of the pressing lever away from the driving shaft; the upper bracket is slidably installed on the fixing frame; the two sides of the upper spring are respectively connected to the upper bracket and the fixing frame.
[0013] An energy-saving exhibition hall decorative lighting method, using the energy-saving exhibition hall decorative lighting system, includes the following steps: The aisle body is paved into a corresponding road by a plurality of walking pedals and connecting strips between the walking pedals; When visitors step on the walking pedal, the walking pedal will slide down slightly under the guidance of the guide column; When the walking pedal slides down, the sensing control component will turn on the lighting strip provided on the aisle body for lighting; After the visitors leave the corresponding walking pedal, the walking pedal will rebound and reset under the corresponding mechanism, and at this time the sensor control component will control the corresponding lighting strip to turn off.
[0014] The present invention provides an energy-saving exhibition hall decorative lighting system and method. During actual use, the aisle body is paved into a corresponding road by the multiple walking pedals and the connecting belts between the walking pedals. When visitors step on the walking pedals, the walking pedals will slide down slightly under the guidance of the guide columns. After the walking pedals slide down, the sensor-controlled components will turn on the lighting strips set on the aisle body for lighting. After the visitors leave the corresponding walking pedals, the walking pedals will rebound and reset under the corresponding mechanism. At this time, the sensor-controlled components will control the corresponding lighting strips to turn off, thereby realizing flexible lighting in fixed areas according to the actual activities of the active personnel through the provided components, avoiding unnecessary resource consumption. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art.
[0016] Figure 1 It is a structural schematic diagram of the energy-saving exhibition hall decorative lighting system of the present invention.
[0017] Figure 2 It is a front view of the energy-saving exhibition hall decorative lighting system of the present invention.
[0018] Figure 3 The present invention Figure 2 Enlarged view of point A.
[0019] Figure 4 It is a schematic diagram of the installation structure of the pressure sensor of the present invention.
[0020] Figure 5 It is a schematic structural diagram of a side section of the aisle body of the present invention.
[0021] Figure 6 The present invention Figure 5 Enlarged view of point B.
[0022] Figure 7 It is a structural schematic diagram of the energy recovery component of the present invention.
[0023] Figure 8 It is a schematic diagram of the installation structure of the toggle bracket of the present invention.
[0024] Figure 9 The present invention Figure 8 Enlarged view of point C.
[0025] Figure 10 It is a side view of the energy recovery component of the present invention.
[0026] Figure 11 It is a schematic diagram of the structure inside the guide channel block of the present invention.
[0027] Figure 12 The present invention Figure 11 Enlarged view of point D.
[0028] Figure 13 It is a flow chart of the energy-saving exhibition hall decorative lighting method of the present invention.
[0029] In the figure: 101-aisle body, 102-lighting strip, 103-guide column, 104-walking pedal, 105-connecting belt, 201-retraction spring, 202-pressure sensor, 203-main control device, 301-cross rod, 302-pressing lever, 303-driving shaft, 401-rotating shaft generator, 402-accumulator, 403-support frame, 404-rotating bearing, 405-generating shaft, 4 06-inertia rotating sleeve, 407-wiping sleeve, 501-guide groove frame, 502-cross groove slide, 503-toggle bracket, 504-wiping block, 505-guide wheel, 506-guide groove block, 507-lower bottom rotating plate, 508-upper rotating plate, 509-external rotating buckle, 510-matching bracket, 511-torsion spring, 601-fixed frame, 602-lower pressure bracket, 603-upper bracket, 604-upper spring. DETAILED DESCRIPTION
[0030] The following describes embodiments of the present invention in detail, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, and are not to be construed as limiting the present invention.
[0031] In the description of the present invention, it should be understood that “plurality” means two or more than two, unless otherwise clearly defined.
[0032] See also Figures 1 to 12The present invention provides an energy-saving exhibition hall decorative lighting system and method: comprising an aisle body 101, a lighting strip 102 and an adapter component, the adapter component comprising a guide column 103, a walking pedal 104, a connecting belt 105, a sensing control component and an energy recovery component, the sensing control component comprising a retraction spring 201, a pressure sensor 202 and a main control device 203, the energy recovery component comprising a cross rod 301, a pressing lever 302, a driving shaft 303, an energy storage component and a linkage component, the energy storage component comprising a rotating shaft generator 401, an accumulator 402, a support frame 403, a rotating bearing 404 and a power generation rotating shaft 405, the linkage component comprising a guide groove frame 501, a transverse groove slide 502, a toggle bracket 503 and a wiping block 504, the energy storage component further comprising an inertia rotating sleeve 406 and a wiping outer sleeve 407, the linkage component further comprising a guide wheel 505, a guide groove block 506, a lower bottom rotating plate 5 07 and the upper turn plate 508, the linkage component also includes an external turn buckle 509, a matching bracket 510 and a torsion spring 511. The above solution solves the problem that the existing exhibition hall decorative lighting system is automatically controlled during lighting control, especially in some areas such as aisles where there is no need to stay for a long time. Corresponding infrared sensing equipment and personnel detection instruments are usually set up to automatically turn on the power in the aisle when it is sensed that someone has entered the corresponding aisle, and turn off the power when no one enters. However, the existing aisle lighting systems are all integrated designs, and are controlled as a whole when turning on and off. Once the aisle is long, when people walk a short distance and then turn back, there is no need for subsequent lighting, which makes the entire system unable to regulate and adapt the actual lighting conditions of the lighting system according to the specific circumstances of the active personnel, thereby causing unnecessary resource consumption.
[0033] Furthermore, multiple lighting strips 102 are installed on the aisle body 101, multiple guide columns 103 are fixedly installed below the aisle body 101, multiple walking pedals 104 are slidably connected to the guide columns 103, and are located below the aisle body 101, and each of the walking pedals 104 is connected by the connecting belt 105. The sensor control component is connected to the aisle body 101 for monitoring the support status of the walking pedal 104, and the energy recovery component is connected to the aisle body 101 for cooperating with the corresponding mechanism to complete energy output.
[0034] Specifically, corresponding lighting strips 102 are provided on both sides of the aisle body 101. The lighting strips 102 on both sides and the walking pedals 104 provided at the bottom of the aisle body 101 can form a lighting unit. The walking pedals 104 are installed with the guide columns 103 provided in the guide grooves on both sides of the aisle body 101. Under the guidance of the corresponding guide columns 103, the walking pedals 104 can slide up and down slightly.
[0035] The gap between each walking pedal 104 is connected by the connecting belt 105. The connecting belt 105 has strong flexibility and ductility. The setting of the connecting belt 105 can block the gap between two adjacent walking pedals 104 without interfering with the independent sliding of the two adjacent walking pedals 104.
[0036] Each lighting unit consisting of the walking pedal 104 at the bottom and the lighting strips 102 on both sides is provided with an independent sensor-controlled component and an energy recovery component for operation. When a visitor steps on the corresponding walking pedal 104, the lighting strips 102 on both sides of the walking pedal 104 will light up under the action of the sensor-controlled component, while the lighting strips 102 on both sides of the remaining walking pedals 104 that have not been stepped on will not turn on. In this way, not only can the lighting range be adjusted according to the actual situation of the visitors, but the small up and down sliding of the walking pedals 104 can also increase the fun of the visitors when walking, making the visitors feel like walking on a floating bridge, and because the sliding amplitude of the walking pedals 104 is small, it will not cause stepping on air or causing the walking people to shake excessively.
[0037] During actual use, the aisle body 101 is paved into a corresponding road through the multiple walking pedals 104 and the connecting belts 105 between the walking pedals 104. When visitors step on the walking pedals 104, the walking pedals 104 will slide down slightly under the guidance of the guide columns 103. After the walking pedals 104 slide down, the sensor-controlled components will turn on the lighting strips 102 set on the aisle body 101 for lighting. After the visitors leave the corresponding walking pedals 104, the walking pedals 104 will rebound and reset under the corresponding mechanism. At this time, the sensor-controlled components will control the corresponding lighting strips 102 to close, thereby realizing flexible lighting in fixed areas according to the actual activities of the participants through the provided components, avoiding unnecessary resource consumption.
[0038] Furthermore, the two sides of the retraction spring 201 are respectively connected to the walking pedal 104 and the aisle body 101; the pressure sensor 202 is installed on the side of the aisle body 101 close to the walking pedal 104; the main control device 203 is electrically connected to the pressure sensor 202, and is electrically connected to the lighting strip 102, and is installed on the aisle body 101.
[0039] When this embodiment is in use, a plurality of retraction springs 201 are provided at the bottom of each walking pedal 104. When the user steps on the walking pedal 104 to cause the walking pedal 104 to slide down, the walking pedal 104 will squeeze the corresponding retraction spring 201 to deform. In this way, when the user removes the force applied to the walking pedal 104, the walking pedal 104 will move up and reset under the action of the retraction spring 201.
[0040] A corresponding pressure sensor 202 is also provided at the bottom of each walking pedal 104. Once the sensing module on the top of the pressure sensor 202 is pressed down by the bottom of the walking pedal 104, the main control device 203 will control the lighting strip 102 corresponding to the walking pedal 104 to work. When the corresponding walking pedal 104 does not contact and cooperate with the sensing module on the top of the pressure sensor 202, the lighting strip 102 will stop working under the action of the main control device 203, thereby realizing the regulation of the lighting strip 102 within the specified range. It should be noted that in order to ensure the lighting experience of visitors, delayed shutdown can be used when actually controlling the lighting strip 102. When the walking pedal 104 is reset by the retraction spring 201, the main control device 203 can turn off the corresponding lighting strip 102 after a set time to avoid the lighting range being too small when visitors are walking.
[0041] Furthermore, the cross rod 301 is fixedly mounted on the bottom of the aisle body 101; the pressure lever 302 is rotatably mounted on the cross rod 301; the driving shaft 303 is fixedly mounted on the pressure lever 302; the energy storage component is connected to the aisle body 101 for energy production and storage distribution; the linkage component is connected to the aisle body 101 for assisting the energy storage component in energy production by combining with the movement of the pressure lever 302.
[0042] When this embodiment is in use, the pressing lever 302 is installed on the cross rod 301 provided at the bottom of the aisle body 101. The rotation center of the pressing lever 302 is more biased to one side, thereby forming a lever structure with two lever arms with a large difference in force. A corresponding abutment boss is provided on the side of the pressing lever 302 with a smaller force arm. When the walking pedal 104 moves downward, the abutment boss of the pressing lever 302 will be squeezed by the bottom of the walking pedal 104, thereby causing the pressing lever 302 to rotate around the cross rod 301. Since the force arms on both sides of the pressing lever 302 are different, the small downward movement of the walking pedal 104 can be converted into a large swing of the large force arm end of the pressing lever 302, so as to cooperate with the linkage components to complete energy output.
[0043] Furthermore, the shaft generator 401 is installed at the bottom of the aisle body 101; the battery 402 is electrically connected to the shaft generator 401, and is electrically connected to the main control device 203, and is installed on the aisle body 101; the support frame 403 is fixedly installed on the aisle body 101; the power generation shaft 405 is connected to the support frame 403 through the rotating bearings 404 arranged on both sides, and the power generation shaft 405 is connected to the shaft generator 401.
[0044] Furthermore, the inertia rotating sleeve 406 is fixedly mounted on the power generation rotating shaft 405 ; and the friction outer sleeve 407 is mounted on the outside of the inertia rotating sleeve 406 .
[0045] When this embodiment is in use, the shaft generator 401 is arranged in a one-to-one correspondence with the lighting unit composed of the walking pedal 104 and the lighting strip 102. The rotating shaft of the shaft generator 401 is fixed to the power generation shaft 405. The power generation shaft 405 is installed on the two support frames 403 provided at the bottom of the aisle body 101 through the rotating bearings 404 provided at both ends, so that the rotating shaft of the shaft generator 401 can be driven to rotate by the rotation of the power generation shaft 405, thereby realizing the conversion of electric energy. The electric energy produced by the shaft generator 401 The electric energy stored in the battery 402 through the corresponding connection circuit can be used to supply the main control device 203. It should be noted that in actual operation, an external charging circuit can be set to supplement the electric energy of the battery 402 according to actual conditions. At the same time, the corresponding electric energy detection situation can be set to monitor the capacity of the remaining energy inside the battery 402, so as to charge the battery 402 in time. Therefore, the shaft generator 401 is used only to be able to utilize available resources to produce electric energy, thereby better achieving energy saving.
[0046] The inertia sleeve 406 is fixedly provided on the power generation shaft 405, and the friction sleeve 407 is fixedly provided on the outside of the inertia sleeve 406. The inertia sleeve 406 is a cylindrical block with a certain mass, and the friction sleeve 407 is a circular ring kit with a friction layer on the outer ring, so that after the power generation shaft 405 is driven by the corresponding components in the subsequent cooperation, the power generation shaft 405 will continuously rotate under the action of the inertia sleeve 406 and the rotating bearings 404 provided on both sides, and the friction sleeve 407 is provided to better drive the power generation shaft 405 to rotate by cooperating with the subsequent mechanism.
[0047] Furthermore, the guide groove frame 501 is fixedly installed at the bottom of the aisle body 101; the transverse groove slide 502 is connected to the driving shaft 303 and is slidably installed on the guide groove frame 501; the toggle bracket 503 is slidably installed on the transverse groove slide 502; the wiping block 504 is fixedly installed on the side of the toggle bracket 503 close to the power generation shaft 405.
[0048] Furthermore, the guide wheel 505 is rotatably mounted on the back side of the toggle bracket 503; the guide groove block 506 is connected to the guide wheel 505 and fixedly mounted on the bottom of the aisle body 101; the lower bottom rotating plate 507 is rotatably mounted on the bottom of the guide groove block 506; and the upper connecting rotating plate 508 is rotatably mounted on the top of the guide groove block 506.
[0049] Furthermore, the external turn buckle 509 is fixedly installed on one side of the upper turn plate 508; the matching bracket 510 is fixedly installed on the side of the guide groove block 506 close to the external turn buckle 509; the torsion spring 511 is arranged between the external turn buckle 509 and the matching bracket 510.
[0050] When this embodiment is in use, the transverse groove slide 502 cooperates with the guide groove frame 501 arranged on both sides of the bottom of the aisle body 101, and the transverse groove slide 502 is provided with a corresponding transverse groove to cooperate with the driving shaft 303. When the pressing lever 302 rotates, the end of the pressing lever 302 provided with the driving shaft 303 can drive the transverse groove slide 502 to move by cooperating with the transverse groove on the transverse groove slide 502, thereby converting the rotation of the corresponding side of the pressing lever 302 into up and down movement.
[0051] The toggle bracket 503 is slidably installed on the back side of the transverse groove slide 502, and the toggle bracket 503 cooperates with the sleeve frame at the bottom of the transverse groove slide 502 through the provided expenditure boss. The guide wheels 505 are rotatably installed on both sides of the back of the toggle bracket 503, and the guide wheels 505 are adapted to the guide roller grooves provided inside the guide groove block 506. The wiping block 504 is fixed on the side of the toggle bracket 503, and the inertia sleeve 406 and the power generation shaft 405 can be driven to rotate by the contact and cooperation between the wiping block 504 and the wiping sleeve 407.
[0052] The guide groove block 506 is composed of three layers of plates, namely the small shaft guide plate, the wheel body guide plate and the side sealing plate. The small shaft guide plate and the wheel body guide plate are both provided with corresponding guide grooves for guiding the small shaft connecting the toggle bracket 503 and the guide wheel 505 and the guide wheel 505, and the side sealing plate is used to complete the shielding of the corresponding side.
[0053] The upper connecting rotating plate 508 and the lower bottom rotating plate 507 are rotatably installed on the upper and lower sides of the guide groove block 506 respectively. The guide rolling groove provided in the guide groove block 506 is a circular guide groove. The lower bottom rotating plate 507 can only rotate in one direction by cooperating with the rotating hole groove inside the guide groove block 506. When the lower bottom rotating plate 507 rotates in the opposite direction to the set direction, the protruding plate on the corresponding side of the lower bottom rotating plate 507 will be blocked by the side wall of the rotating hole groove, so that the one-way rotation of the lower bottom rotating plate 507 can be achieved.
[0054] The outer side of the upper connecting rotating plate 508 is fixed with the external rotating buckle 509, and the external rotating buckle 509 cooperates with the matching bracket 510 installed on the outer side of the guide groove block 506. The upper connecting rotating plate 508 can only rotate in one direction through the cooperation of the external rotating buckle 509 and the matching bracket 510. At the same time, the corresponding torsion spring 511 is still provided between the external rotating buckle 509 and the matching bracket 510. The torsion spring 511 can assist the upper connecting rotating plate 508 to quickly return to its original position. It should be noted that the lower bottom rotating plate 507 also needs to be returned to its original position after performing one-way rotation. Since the rotation range of the lower bottom rotating plate 507 itself is not large, and the position where the lower bottom rotating plate 507 rotates when the structure is set is at the upper end, the lower bottom rotating plate 507 can rely on its own gravity to rotate and return to its original position after rotation. In actual use, in order to ensure the stable return of the lower bottom rotating plate 507 in actual use, a corresponding return spring can also be provided for assistance.
[0055] When the walking pedal 104 is moved downward by the stepping of the visitors, the pressing lever 302 will rotate. When the pressing lever 302 rotates, the driving shaft 303 will drive the transverse groove slide 502 to move upward under the drive of the pressing lever 302. The upward movement of the transverse groove slide 502 will drive the toggle bracket 503 to move upward. When the toggle bracket 503 moves upward through the cooperation of the guide wheel 505 and the guide groove bracket 501, the friction block 504 will contact the friction sleeve and generate friction, thereby driving the inertia rotating sleeve 406 and the power generation shaft 405 to rotate. When the walking pedal 104 is moved upward and reset by the retraction spring 201, the pressing lever 302 will be reset due to the deadweight of the device at one end of the strong arm. At this time, the transverse groove slide 502 will also drive the toggle bracket 503 to move downward.
[0056] When the toggle bracket 503 moves downward and upward, the guide wheel 505 will change accordingly by cooperating with the guide slot frame 501. When the toggle bracket 503 moves upward, the guide wheel 505 will move upward along the guide slot of the guide slot frame 501 close to the toggle bracket 503. At this time, the guide wheel 505 will first pass through the lower bottom rotating plate 507, and then squeeze the upper connecting rotating plate 508 at the top to rotate. When the upper rotating plate 508 is at the top, the upper rotating plate 508 will rotate and reset under the action of the external rotating buckle 509, the matching bracket 510 and the torsion spring 511. In this way, when the toggle bracket 503 drives the guide wheel 505 to move downward, the guide wheel 505 will roll to the guide groove of the guide groove frame 501 away from the toggle bracket 503 due to the guidance of the upper rotating plate 508, and then move downward along the corresponding guide groove. At this time, the toggle bracket 503 will slide backward for a short distance, so that when it moves downward, During the process, the wiping block 504 on the side of the toggle bracket 503 will not contact the wiping jacket 407, so as to avoid hindering the autonomous inertial rotation of the wiping jacket 407 and the inertia rotating sleeve 406. When the toggle bracket 503 drives the guide wheel 505 to move continuously downward, the guide wheel 505 will squeeze the lower bottom rotating plate 507 to rotate, and finally move to the bottom of the guide groove of the guide groove frame 501 close to the side of the toggle bracket 503. At this time, the lower bottom rotating plate 507 rotates and resets. When the toggle bracket 503 moves up next time, the guide wheel 505 will move along the guide groove of the guide groove frame 501 close to the toggle bracket 503, and then cooperate with the rubbing sleeve 407 to drive the inertia sleeve 406 and the power generation shaft 405 again, so that the rotation direction of the entire power generation shaft 405 remains consistent, and at the same time, it will not affect the autonomous inertial rotation of the power generation shaft 405, thereby ensuring that the power generation of the shaft generator 401 is stable and continuous.
[0057] Preferably, the adapter assembly provided by the present invention further includes a fixing bracket 601 , a downward pressing bracket 602 , an upward supporting bracket 603 and an upward supporting spring 604 .
[0058] Furthermore, the fixing frame 601 is fixedly installed at the bottom of the aisle body 101; the lower pressure bracket 602 is fixedly installed on the side of the pressing lever 302 away from the driving shaft 303; the upper support 603 is slidably installed on the fixing frame 601; the two sides of the upper spring 604 are respectively connected to the upper support 603 and the fixing frame 601.
[0059] When the present embodiment is in use, the lower pressing bracket 602 is fixed to one end of the small force arm of the pressing lever 302, the lower pressing bracket 602 is arranged at the bottom of the pressing lever 302, and the upper supporting bracket 603 is slidably arranged on the fixing bracket 601, and the upper supporting spring 604 is arranged between the upper supporting bracket 603 and the fixing bracket 601. When the pressing lever 302 is rotated under the downward pressure of the walking pedal 104, the lower pressing bracket 602 at the bottom of the pressing lever 302 will squeeze the upper supporting bracket 603 to move downward, and then the upper supporting bracket 603 will squeeze the upper supporting spring 604 to deform. In this way, when the walking pedal 104 moves up and resets, the upper supporting spring 604 will drive the upper supporting bracket 603 to move up, and then by pushing the lower pressing bracket 602, the pressing lever 302 can be rotated and reset more quickly and stably.
[0060] See also Figure 13 An energy-saving exhibition hall decorative lighting system and method are provided, wherein the energy-saving exhibition hall decorative lighting system and method are provided, and the steps are as follows: S1: The aisle body 101 is paved into a corresponding road by setting a plurality of walking boards 104 and connecting strips 105 between the walking boards 104; S2: When the visitor steps on the walking board 104, the walking board 104 will slide down slightly under the guidance of the guide column 103; S3: After the walking pedal 104 slides down, the sensor control component turns on the lighting strip 102 provided on the aisle body 101 for illumination; S4: After the visitor leaves the corresponding walking pedal 104, the walking pedal 104 will rebound and reset under the corresponding mechanism. At this time, the sensor control component will control the corresponding lighting strip 102 to be turned off.
[0061] The above disclosure is merely one or more preferred embodiments of the present application and is not intended to limit the scope of the present application. A person skilled in the art will understand that all or part of the processes of the above embodiments and equivalent changes made in accordance with the claims of the present application are still within the scope of the present application.
Claims
1. An energy-saving exhibition hall decorative lighting system, comprising an aisle body and a lighting strip, wherein a plurality of the lighting strips are installed on the aisle body, characterized in that: Also included are adapter components; The adapter assembly includes guide posts, walking pedals, connecting belts, sensor control components and energy recovery components. Multiple guide posts are fixedly installed under the aisle body. Multiple walking pedals are slidably connected to the guide posts and are located under the aisle body. Each walking pedal is connected by the connecting belt. The sensor control component is connected to the aisle body for monitoring the support status of the walking pedal. The energy recovery component is connected to the aisle body for cooperating with the corresponding mechanism to complete energy output.
2. The energy-saving exhibition hall decorative lighting system according to claim 1, characterized in that: The sensor control component includes a retraction spring, a pressure sensor and a main control device. The two sides of the retraction spring are respectively connected to the walking pedal and the aisle body; the pressure sensor is installed on the side of the aisle body close to the walking pedal; the main control device is electrically connected to the pressure sensor, and is electrically connected to the lighting lamp, and is installed on the aisle body.
3. The energy-saving exhibition hall decorative lighting system according to claim 1, characterized in that: The energy recovery component includes a cross rod, a pressure lever, a driving shaft, an energy storage component and a linkage component. The cross rod is fixedly installed at the bottom of the aisle body; the pressure lever is rotatably installed on the cross rod; the driving shaft is fixedly installed on the pressure lever; the energy storage component is connected to the aisle body for energy production and storage distribution; the linkage component is connected to the aisle body for assisting the energy storage component in energy production by combining with the movement of the pressure lever.
4. The energy-saving exhibition hall decorative lighting system according to claim 3, characterized in that: The energy storage component includes a shaft generator, an accumulator, a support frame, a rotating bearing and a power generation shaft. The shaft generator is installed at the bottom of the aisle body; the accumulator is electrically connected to the shaft generator and to the main control device, and is installed on the aisle body; the support frame is fixedly installed on the aisle body; the power generation shaft is connected to the support frame through the rotating bearings arranged on both sides, and the power generation shaft is connected to the shaft generator.
5. The energy-saving exhibition hall decorative lighting system according to claim 4, characterized in that: The linkage components include a guide groove frame, a transverse groove slide, a toggle bracket and a wiping block. The guide groove frame is fixedly installed at the bottom of the aisle body; the transverse groove slide is connected to the driving shaft and is slidably installed on the guide groove frame; the toggle bracket is slidably installed on the transverse groove slide; the wiping block is fixedly installed on the side of the toggle bracket close to the power generation shaft.
6. The energy-saving exhibition hall decorative lighting system according to claim 4, characterized in that: The energy storage component further comprises an inertia rotating sleeve and a friction outer sleeve. The inertia rotating sleeve is fixedly sleeved on the power generation rotating shaft; the friction outer sleeve is sleeved on the outside of the inertia rotating sleeve.
7. The energy-saving exhibition hall decorative lighting system according to claim 5, characterized in that: The linkage component also includes a guide wheel, a guide groove block, a lower bottom rotating plate and an upper connecting rotating plate. The guide wheel is rotatably installed on the back side of the toggle bracket; the guide groove block is connected to the guide wheel and fixedly installed on the bottom of the aisle body; the lower bottom rotating plate is rotatably installed on the bottom of the guide groove block; the upper connecting rotating plate is rotatably installed on the top of the guide groove block.
8. The energy-saving exhibition hall decorative lighting system according to claim 7, characterized in that: The linkage component also includes an external turn buckle, a matching bracket and a torsion spring. The external turn buckle is fixedly installed on one side of the upper turn plate; the matching bracket is fixedly installed on the side of the guide slot block close to the external turn buckle; the torsion spring is arranged between the external turn buckle and the matching bracket.
9. The energy-saving exhibition hall decorative lighting system according to claim 3, characterized in that: The adapter assembly also includes a fixing frame, a downward pressure frame, an upper support frame and an upper support spring. The fixing frame is fixedly installed at the bottom of the aisle body; the downward pressure frame is fixedly installed on the side of the pressing lever away from the driving shaft; the upper support frame is slidably installed on the fixing frame; the two sides of the upper support spring are respectively connected to the upper support frame and the fixing frame.
10. An energy-saving exhibition hall decorative lighting method, using the energy-saving exhibition hall decorative lighting system according to claim 1, characterized in that: The following steps are included: The aisle body is paved into a corresponding road by a plurality of walking pedals and connecting strips between the walking pedals; When visitors step on the walking pedal, the walking pedal will slide down slightly under the guidance of the guide column; When the walking pedal slides down, the sensing control component will turn on the lighting strip provided on the aisle body for lighting; After the visitors leave the corresponding walking pedal, the walking pedal will rebound and reset under the corresponding mechanism, and at this time the sensor control component will control the corresponding lighting strip to turn off.
Citation Information
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