A solar mobile monitoring device and its usage method
Through the design of lifting and stabilizing mechanisms, the problem of inconvenient operation of fixed-point monitoring of solar energy monitoring devices is solved, automatic fixed-point fixing and range expansion are achieved, and usage efficiency is improved and power is saved.
Patent Information
- Application Number
- CN202510536610.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2045-04-27
AI Technical Summary
The existing solar monitoring devices require manual support during fixed-point monitoring, which is inconvenient and time-consuming, affecting the efficiency of use.
A solar movement monitoring device is designed, including a lifting mechanism, a control mechanism, a adjustment mechanism and a stabilizing mechanism. Through the adjustment mechanism, the lifting mechanism and the deployment of the stabilizing mechanism are driven, automatic fixed-point fixation is achieved, the monitoring range is expanded and power is saved.
The automatic fixed point fixation of solar energy monitoring devices is realized, the efficiency of use is improved, the monitoring range is expanded, and the power resources are saved, so that the monitoring equipment can work for a long time.
Smart Images

Figure CN120075407B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of monitoring devices, and specifically provides a solar mobile monitoring device and a usage method thereof. Background Art
[0002] In modern society, people's demand for security monitoring is getting higher and higher. They not only require real-time monitoring of on-site situations but also hope to have functions such as intelligent analysis, early warning and alarm. For example, intelligent functions such as human detection, human tracking, crossing the boundary, intrusion sound and light alarm, license plate recognition, and vehicle shape recognition. The solar mobile monitoring device can combine advanced sensors and intelligent algorithms to meet these diverse and intelligent monitoring needs and provide users with more comprehensive and efficient security protection.
[0003] The existing patent (publication number: CN217428230U) discloses a mobile solar video monitoring device, including a box body, a fixed pipe, a fixing mechanism, a rotating pipe, and a solar panel. A plurality of universal wheels are provided at the bottom of the box body. The fixed pipe is vertically fixed on the top of the box body. An activity rod is inserted into the fixed pipe. The upper end of the activity rod is provided with a monitoring camera through a horizontal rod. When the activity rod slides up and down in the fixed pipe, the fixing mechanism can fix the activity rod at any position. The rotating pipe is coaxially rotatably arranged outside the fixed pipe. A bottom plate is arranged outside the rotating pipe through an activity mechanism. For the above-mentioned mobile solar video monitoring device, the inclination angle of the solar panel can be changed through the activity mechanism, which is convenient for the layout of video monitoring and increases the power generation of the solar panel at the same time. However, in the prior art, when using a solar monitoring device in a factory and needing fixed-point monitoring, it is necessary to manually shake up the support rod to support the four sides of the solar monitoring device, which is not only very time-consuming but also very inconvenient when entering and leaving the factory building. Summary of the Invention
[0004] The purpose of the present invention is to provide a solar mobile monitoring device and a usage method thereof to solve the problems raised in the above background art. To achieve the above purpose, the present invention provides the following technical solution: A solar mobile monitoring device, including a base, a power supply mechanism is fixedly connected to the surface of the base. The power supply mechanism includes a metal shell, the metal shell is fixedly connected to the surface of the base, a storage battery is fixedly connected inside the metal shell, and a solar panel is fixedly connected to the upper surface of the metal shell;
[0005] A lifting mechanism is fixedly connected to the surface of the base, a control mechanism is arranged on the surface of the base, an adjusting mechanism is arranged on the side of the control mechanism, a clutch mechanism is slidably connected to the surface of the base, and a stabilizing mechanism is rotatably connected to the lower surface of the base;
[0006] One end of the control mechanism is adjusted by the adjustment mechanism, which is used to drive the lifting mechanism to rise and fall. At the same time, the adjustment mechanism cooperates with the clutch mechanism to control the expansion of the stability mechanism, so as to improve the stability of the device.
[0007] Preferably, the lifting mechanism includes a hollow rod, the hollow rod is fixedly connected to the upper surface of the base, a first rotating rod is rotatably connected inside the hollow rod, a sleeve rod is splined on the surface of the first rotating rod, a spline groove is opened inside the hollow rod, and a first sliding rod is slidably connected inside the hollow rod through the spline groove. A spline groove is opened inside the first sliding rod, and a second sliding rod is slidably connected inside the first sliding rod through the spline groove. The top end of the second sliding rod is fixedly connected with a monitoring device. Oblique grooves are opened on the surfaces of the first rotating rod and the sleeve rod. The first sliding rod is slidably connected in the oblique groove opened on the surface of the first rotating rod, and the second sliding rod is slidably connected in the oblique groove opened on the surface of the sleeve rod.
[0008] Preferably, the input end of the storage battery is electrically connected to the output end of the solar panel through an electric wire, and the output end of the storage battery is electrically connected to the input end of the monitoring device through an electric wire.
[0009] Preferably, the control mechanism includes a support rod, the support rod is fixedly connected to the surface of the base, the top end of the support rod is rotatably connected with a lever, the middle part of the lever is the axis point and is rotatably connected to the top end of the support rod. One end of the lever is slidably connected with a notched rod, one end of the notched rod is slidably connected to the side surface of the hollow rod in a limited way, a chute is opened at the other end of the lever, a rotating shaft is rotatably connected inside the metal shell, a first bevel gear is fixedly connected to the surface of the rotating shaft, a disc is fixedly connected to one end of the rotating shaft, a sliding rod is fixedly connected to the surface of the disc, and the sliding rod is slidably connected inside the chute. A second rotating rod is rotatably connected to the surface of the base, a second bevel gear is fixedly connected to the upper end of the second rotating rod, the second bevel gear meshes with the first bevel gear, a gear is fixedly connected to the lower end of the second rotating rod, and a rack is slidably connected to the surface of the base. One side of the rack meshes with the gear.
[0010] Preferably, the adjustment mechanism includes a conical groove, the conical groove is fixed to the other end of the rotating shaft and is also fixedly connected to the side surface of the metal shell. A conical block is splined inside the conical groove, an annular clamping sleeve is rotatably connected to the surface of the conical block, a handle is fixedly connected to one end of the conical groove, a first notched rod is rotatably connected to the surface of the metal shell, the lower end of the first notched rod is slidably connected to both sides of the annular clamping sleeve, a grip is fixedly connected to the top end of the first notched rod, and a spring is arranged between the other end of the conical block and the inside of the conical groove.
[0011] Preferably, the combining mechanism includes a sliding rod which is slidably connected to the upper and lower surfaces of the base. A pressing plate is fixedly connected to the upper end of the sliding rod. A first gear is splined to the surface of the sliding rod and is rotatably connected to the surface of the base at the same time. A telescopic spring is arranged between the sliding rod and the base. A vertical chute is fixedly connected to the lower surface of the base. An L-shaped pressing rod is rotatably connected to the surface of the sliding rod and is slidably connected to the inside of the vertical chute at the same time. Spring pressing plates are slidably connected to both sides of the L-shaped pressing rod. A second gear disc is fixedly connected to the lower end of the sliding rod.
[0012] Preferably, the stabilizing mechanism includes a main rotating shaft which is rotatably connected to the lower surface of the base. A rotating sleeve is rotatably connected to the surface of the main rotating shaft. Horizontal plates are fixedly connected to both sides of the main rotating shaft. A first gear disc is fixedly connected to the middle of the surface of the rotating sleeve. A first rotating sleeve is rotatably connected to the surface of the main rotating shaft. A ratchet wheel is fixedly connected to the surface of the first rotating sleeve. A vertical groove plate is fixedly connected to the side of the first rotating sleeve. An inclined groove sleeve is rotatably connected to the side of the first rotating sleeve at the same time. One end of the inclined groove sleeve is fixedly connected to the side of the rotating sleeve at the same time. A ratchet pawl is slidably connected to the inside of the vertical groove plate and the inclined groove sleeve. A second grooved rod is fixedly connected to the surface of the main rotating shaft. A connecting rod is slidably connected to the inside of the second grooved rod. The connecting rod passes through the sliding plate and is slidably connected to the inside of the second grooved rod. A circular ring is fixedly connected to the surface of the first rotating sleeve. The lower end of the connecting rod is rotatably connected to the surface of the circular ring at the same time. An inclined groove one is formed on the surface of the sliding plate. A sector block is fixedly connected to the upper end of the second grooved rod. The lower end of the sector block is fixedly connected to the surface of the main rotating shaft at the same time. Sector blocks one are rotatably connected to both sides of the sector block. Two sector blocks and four sector blocks one form a circle. A round rod is fixedly connected to the surface of the sector block one. A telescopic rod is fixedly connected to the back of the sliding plate. The fixed end of the telescopic rod is fixedly connected to the sliding plate. A vertical rod is fixedly connected to the surface of the telescopic end of the telescopic rod. The vertical rod is slidably connected to the inside of the inclined groove one. One end of the telescopic rod is slidably connected to the round rod.
[0013] A using method of a solar mobile monitoring device includes the following steps:
[0014] S1. When the device is moving, it is pushed by the front wheels and the rear wheels composed of the sector block and the first sector block. It is pushed inside the factory. At the same time, the solar panel charges the battery, and the battery powers the monitoring device. When it is necessary to push, the height of the monitoring device is relatively low, and it can freely enter and exit the factory building. When it is necessary to use the monitoring device at a fixed point, first manually push the grip. The grip drives the first notch rod to rotate with its middle part as the axis point, driving the other end to rotate in the opposite direction. The lower end of the first notch rod will pull the annular collar and slide on both sides of the annular collar, pulling the tapered block through the annular collar to separate the tapered block from the tapered groove. At this time, the tapered block can rotate. Then, shake the handle. The handle drives the tapered block to rotate. The tapered block drives the rotating shaft connected by splines to rotate. When the rotating shaft rotates, it drives the first bevel gear to rotate, and at the same time drives the disc to rotate. When the disc rotates, it drives the slide rod to rotate. When the slide rod rotates, it drives the lever to rotate around its middle part on the support rod through the chute. When the left side of the lever rotates downward, the right side will rotate upward, thus realizing a simple lever principle. It is very labor-saving when the right side moves upward;
[0015] S2. When the right side of the lever rotates upward, it drives the notch rod to move vertically upward inside the hollow rod. When the notch rod moves upward, it will push the first slide rod, and the first slide rod also moves upward inside the hollow rod. While the first slide rod moves upward, it will slide in the inclined groove opened on the surface of the first rotating rod and drive the rotation of the first rotating rod. At the same time, the bottom of the first slide rod fits with the bottom of the sleeve rod, driving the sleeve rod to slide upward on the surface of the first rotating rod through the spline groove, and also driving the sleeve rod to rotate through the spline groove when the first rotating rod rotates. When the sleeve rod moves upward, it drives the second slide rod to move upward at the same time through its own inclined groove, and makes the second slide rod gradually move upward along the inclined groove when the sleeve rod rotates. When moving upward, it is limited by the spline groove of the first slide rod at the same time, making the second slide rod move vertically upward again. When the second slide rod moves upward, it drives the monitoring device to rise;
[0016] S3. When the left side of the lever rotates downward, it will simultaneously squeeze the pressure plate. When the pressure plate is squeezed, it drives the sliding rod to slide downward on the base. When the sliding rod slides downward, it drives the second gear disk to slide downward and mesh with the first gear disk. When the sliding rod slides downward, it drives the L-shaped pressure rod to slide downward. The L-shaped pressure rod slides downward in the vertical chute, and at the same time drives the spring pressure plate to squeeze the cross plate downward, flattening the cross plate. After the cross plate is flattened, it will drive the main rotating shaft and the mechanism on the main rotating shaft to return to the correct position, facilitating the next step. At the same time, when the rotating shaft rotates, it drives the first bevel gear to rotate. When the first bevel gear rotates, it drives the engaged second bevel gear to rotate. When the second bevel gear rotates, it drives the gear to rotate through the second rotating rod. When the gear rotates, it drives the engaged rack to move. The rack moves on the surface of the base until it meshes with the first gear and drives the first gear to rotate. The first gear drives the sliding rod connected by splines to rotate. When the sliding rod rotates, it drives the second gear disk at the lower end to rotate. When the second gear disk rotates, it drives the first gear disk meshing with it to rotate;
[0017] S4. When the first gear disc rotates, it drives the fixedly connected rotating sleeve to rotate on the surface of the relatively stationary main rotating shaft. When the rotating sleeve rotates, it drives the inclined groove sleeve on the side to rotate, causing the pawl to move towards the ratchet in the vertical groove plate until the pawl engages with the ratchet. At this time, the rotating sleeve drives the pawl to rotate, the pawl drives the ratchet to rotate, when the ratchet rotates, it drives the first rotating sleeve to rotate, when the first rotating sleeve rotates, it drives the ring to rotate, when the ring rotates, it drives the connecting rod to slide upward in the second slot rod, when the connecting rod slides, it simultaneously drives the sliding plate to slide up and down, when the sliding plate slides, it drives the telescopic end of the telescopic rod to expand outward along the trajectory of the first inclined groove through the vertical rod. When the telescopic rod expands outward, it drives the first sector block to rotate around the two sides of the sector block as the center until it is fully unfolded, making the upper and lower sector blocks relatively parallel to the first sector block, forming two opposite straight lines. In this way, the rear wheel of this device cannot rotate, thus fixing the entire device. Finally, only need to pull the grip, the grip drives the first slot rod to rotate around its middle as the axis point, driving the other end to rotate in the opposite direction. The lower end of the first slot rod will push the annular collar and slide on both sides of the annular collar, pushing the tapered block through the annular collar, so that the tapered block combines with the tapered groove, and the device can be locked and stabilized.
[0018] In the present invention, the first sector block is driven by the round rod to rotate around the two sides of the sector block as the center until it is fully unfolded, making the upper and lower sector blocks relatively parallel to the first sector block, forming two opposite straight lines. In this way, the rear wheel of this device cannot rotate, thus fixing the entire device, facilitating fixed-point monitoring. When performing fixed-point monitoring, not only the device is stabilized, but also the monitoring range is expanded.
[0019] In the present invention, when the sleeve rod rotates, the second slide rod gradually moves upward along its inclined groove, and when moving upward, it is limited by the spline groove of the first slide rod at the same time, making the second slide rod move vertically upward again. When the second slide rod moves upward, it drives the monitoring device to rise, enabling it to expand the monitoring range when at a fixed position, saving effort and the power of the storage battery at the same time, enabling the monitoring device to work for a long time.
[0020] In the present invention, by pulling the grip, the grip drives the first slot rod to rotate around its middle as the axis point, driving the other end to rotate in the opposite direction. The lower end of the first slot rod will push the annular collar and slide on both sides of the annular collar, pushing the tapered block through the annular collar, so that the tapered block combines with the tapered groove, and the device can be locked and stabilized. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 is the three-dimensional external view schematic diagram of the present invention;
[0022] Figure 2 is the internal structure schematic diagram of the metal shell of the present invention;
[0023] Figure 3 is the side cross-sectional structure schematic diagram of the present invention;
[0024] Figure 4 Schematic structural diagram of the lifting mechanism of the present invention;
[0025] Figure 5 Schematic side sectional structural diagram of the lifting mechanism of the present invention;
[0026] Figure 6 Schematic enlarged structural diagram of the sleeve rod of the present invention;
[0027] Figure 7 Schematic enlarged structural diagram of the first rotating rod of the present invention;
[0028] Figure 8 Schematic structural diagram of the control mechanism of the present invention;
[0029] Figure 9 Schematic partial structural diagram of the control mechanism of the present invention;
[0030] Figure 10 Schematic structural diagram of the adjusting mechanism of the present invention;
[0031] Figure 11 Schematic structural diagram of the clutch mechanism of the present invention;
[0032] Figure 12 Schematic structural diagram of the stabilizing mechanism of the present invention;
[0033] Figure 13 Schematic top view structural diagram of the stabilizing mechanism of the present invention;
[0034] Figure 14 Of the present invention Figure 13 Enlarged structural diagram at position A;
[0035] Figure 15 Schematic side view structural diagram of the stabilizing mechanism of the present invention;
[0036] Figure 16 Schematic partial enlarged view of the stabilizing mechanism of the present invention Figure One ;
[0037] Figure 17 Schematic partial enlarged view of the stabilizing mechanism of the present invention Figure Two .
[0038] In the figure: 1. Base; 2. Power supply mechanism; 21. Metal shell; 22. Storage battery; 23. Electric wire; 3. Solar panel; 4. Lifting mechanism; 5. Monitoring device; 6. Control mechanism; 7. Adjusting mechanism; 8. Clutch mechanism; 9. Stabilizing mechanism; 41. Hollow rod; 42. First rotating rod; 43. Sleeve rod; 44. First sliding rod; 45. Second sliding rod; 46. Inclined groove; 61. Support rod; 62. Lever; 63. Grooved rod; 64. Sliding groove; 65. Rotating shaft; 66. First bevel gear; 67. Disc; 68. Sliding rod; 69. Second rotating rod; 610. Second bevel gear; 611. Gear; 612. Rack; 71. Conical groove; 72. Conical block; 73. Annular retaining sleeve; 74. Handle; 75. First grooved rod; 76. Grip; 77. Spring; 81. Sliding rod; 82. Pressure plate; 83. First gear; 84. Telescopic spring; 85. Vertical sliding groove; 86. L-shaped pressing rod; 87. Spring pressure plate; 88. Cross plate; 89. First toothed disc; 810. Second toothed disc; 91. Main rotating shaft; 92. Rotating sleeve; 93. First rotating sleeve; 94. Ratchet; 95. Vertical groove plate; 96. Inclined groove sleeve; 97. Pawl; 98. Second grooved rod; 99. Connecting rod; 910. Slide plate; 911. First inclined groove; 912. Sector block; 913. First sector block; 914. Round rod; 915. Telescopic rod; 916. Vertical rod; 917. Ring. Detailed implementation manners
[0039] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0040] Please refer to Figures 1 to 17 , the present invention provides a technical solution: a solar mobile monitoring device, including a base 1, a power supply mechanism 2 is fixedly connected to the surface of the base 1, the power supply mechanism 2 includes a metal shell 21, the metal shell 21 is fixedly connected to the surface of the base 1, a storage battery 22 is fixedly connected inside the metal shell 21, and a solar panel 3 is fixedly connected to the upper surface of the metal shell 21;
[0041] A lifting mechanism 4 is fixedly connected to the surface of the base 1, a monitoring device 5 is fixedly connected to the upper end of the lifting mechanism 4, a control mechanism 6 is arranged on the surface of the base 1, an adjusting mechanism 7 is arranged on the side of the control mechanism 6, a clutch mechanism 8 is slidably connected to the surface of the base 1, and a stabilizing mechanism 9 is rotatably connected to the lower surface of the base 1;
[0042] The input end of the storage battery 22 is electrically connected to the output end of the solar panel 3 through the wire 23, and the output end of the storage battery 22 is electrically connected to the input end of the monitoring device 5 through the wire 23;
[0043] One end of the control mechanism 6 is adjusted by the adjusting mechanism 7 to drive the lifting mechanism 4 to rise and fall. At the same time, the adjusting mechanism 7 cooperates with the clutch mechanism 8 to control the expansion of the stabilizing mechanism 9 to improve the stability of the device.
[0044] The lifting mechanism 4 includes a hollow rod 41. The hollow rod 41 is fixedly connected to the upper surface of the base 1. A first rotating rod 42 is rotatably connected inside the hollow rod 41. A sleeve rod 43 is splined to the surface of the first rotating rod 42. A spline groove is provided inside the hollow rod 41. A first sliding rod 44 is slidably connected inside the hollow rod 41 through the spline groove. A spline groove is provided inside the first sliding rod 44. A second sliding rod 45 is slidably connected inside the first sliding rod 44 through the spline groove. The top end of the second sliding rod 45 is fixedly connected to the monitoring device 5. Oblique grooves 46 are provided on the surfaces of the first rotating rod 42 and the sleeve rod 43. The first sliding rod 44 is slidably connected in the oblique groove 46 provided on the surface of the first rotating rod 42. The second sliding rod 45 is slidably connected in the oblique groove 46 provided on the surface of the sleeve rod 43. When the sleeve rod 43 rotates, the second sliding rod 45 gradually moves upward along the oblique groove 46 through its own oblique groove 46. When moving upward, it is limited by the spline groove of the first sliding rod 44 at the same time, so that the second sliding rod 45 is perpendicular upward again. When the second sliding rod 45 moves upward, it drives the monitoring device 5 to rise, so that when it is at a fixed position, the monitoring range can be expanded, saving effort and the power of the storage battery at the same time, enabling the monitoring device to work for a long time.
[0045] The control mechanism 6 includes a support rod 61. The support rod 61 is fixedly connected to the surface of the base 1. The top end of the support rod 61 is rotatably connected to a lever 62. The middle part of the lever 62 is the axis point and is rotatably connected to the top end of the support rod 61. One end of the lever 62 is slidably connected to a slotted rod 63. One end of the slotted rod 63 is slidably connected to the side surface of the hollow rod 41. A chute 64 is provided at the other end of the lever 62. A rotating shaft 65 is rotatably connected inside the metal shell 21. A first bevel gear 66 is fixedly connected to the surface of the rotating shaft 65. A disc 67 is fixedly connected to one end of the rotating shaft 65. A sliding rod 68 is fixedly connected to the surface of the disc 67. The sliding rod 68 is slidably connected inside the chute 64. A second rotating rod 69 is rotatably connected to the surface of the base 1. A second bevel gear 610 is fixedly connected to the upper end of the second rotating rod 69. The second bevel gear 610 meshes with the first bevel gear 66. A gear 611 is fixedly connected to the lower end of the second rotating rod 69. A rack 612 is slidably connected to the surface of the base 1. One side of the rack 612 meshes with the gear 611.
[0046] The adjusting mechanism 7 includes a conical groove 71 which is fixed at the other end of the rotating shaft 65 and is also fixedly connected to the side surface of the metal housing 21. A spline connection is provided between the inner spline of the conical groove 71 and a conical block 72. A ring-shaped collar 73 is rotatably connected to the surface of the conical block 72. One end of the conical groove 71 is fixedly connected to a handle 74. A slot rod 75 is rotatably connected to the surface of the metal housing 21. The lower end of the slot rod 75 is slidably connected to both sides of the ring-shaped collar 73. The top end of the slot rod 75 is fixedly connected to a grip 76. A spring 77 is provided between the other end of the conical block 72 and the inside of the conical groove 71. By pulling the grip 76, the grip 76 drives the slot rod 75 to rotate with the midpoint as the axis, driving the other end to rotate in the opposite direction. The lower end of the slot rod 75 will push the ring-shaped collar 73 and slide on both sides of the ring-shaped collar 73. By pushing the ring-shaped collar 73, the conical block 72 is pushed, enabling the conical block 72 to engage with the conical groove 71, thereby locking and stabilizing the device.
[0047] The clutch mechanism 8 includes a sliding rod 81 which is slidably connected to the upper and lower surfaces of the base 1. The upper end of the sliding rod 81 is fixedly connected to a pressing plate 82. A spline connection is provided between the surface of the sliding rod 81 and a first gear 83, and the first gear 83 is rotatably connected to the surface of the base 1. A telescopic spring 84 is provided between the sliding rod 81 and the base 1. A vertical chute 85 is fixedly connected to the lower surface of the base 1. An L-shaped pressing rod 86 is rotatably connected to the surface of the sliding rod 81, and the L-shaped pressing rod 86 is also slidably connected to the inside of the vertical chute 85. Spring pressing plates 87 are slidably connected to both sides of the L-shaped pressing rod 86. The lower end of the sliding rod 81 is fixedly connected to a second gear 810.
[0048] The stabilizing mechanism 9 includes a main rotating shaft 91, which is rotatably connected to the lower surface of the base 1. A rotating sleeve 92 is rotatably connected to the surface of the main rotating shaft 91. Transverse plates 88 are fixedly connected to both sides of the main rotating shaft 91. A first gear disk 89 is fixedly connected to the middle of the surface of the rotating sleeve 92. A first rotating sleeve 93 is rotatably connected to the surface of the main rotating shaft 91. A ratchet 94 is fixedly connected to the surface of the first rotating sleeve 93. A vertical groove plate 95 is fixedly connected to the side of the first rotating sleeve 93. A slant groove sleeve 96 is simultaneously rotatably connected to the side of the first rotating sleeve 93. One end of the slant groove sleeve 96 is fixedly connected to the side of the rotating sleeve 92 at the same time. A ratchet pawl 97 is slidably connected inside the vertical groove plate 95 and the slant groove sleeve 96. A second grooved rod 98 is fixedly connected to the surface of the main rotating shaft 91. A connecting rod 99 is slidably connected inside the second grooved rod 98. A sliding plate 910 is slidably and limit-connected to the surface of the second grooved rod 98. The connecting rod 99 passes through the sliding plate 910 and is slidably connected inside the second grooved rod 98. A circular ring 917 is fixedly connected to the surface of the first rotating sleeve 93. At the same time, the lower end of the connecting rod 99 is rotatably connected to the surface of the circular ring 917. A first slant groove 911 is formed on the surface of the sliding plate 910. A sector block 912 is fixedly connected to the upper end of the second grooved rod 98. At the same time, the lower end of the sector block 912 is fixedly connected to the surface of the main rotating shaft 91. Sector blocks 913 are rotatably connected to both sides of the sector block 912. Two sector blocks 912 and four sector blocks 913 form a circle. A round rod 914 is fixedly connected to the surface of the sector block 913. A telescopic rod 915 is fixedly connected to the back of the sliding plate 910. The fixed end of the telescopic rod 915 is fixedly connected to the sliding plate 910. A vertical rod 916 is fixedly connected to the surface of the telescopic end of the telescopic rod 915. The vertical rod 916 is slidably connected inside the first slant groove 911. One end of the telescopic rod 915 is slidably connected to the round rod 914. In the present invention, the sector block 913 is driven by the round rod 914 to rotate with both sides of the sector block 912 as the centers until it is fully unfolded, so that the upper and lower sector blocks 912 and the sector blocks 913 are relatively parallel, forming two opposite straight lines. In this way, the rear wheels of the device cannot rotate, and thus the entire device will be fixed, facilitating fixed-point monitoring. When performing fixed-point monitoring, not only is the device stabilized, but also the monitoring range is expanded.
[0049] The usage method and advantages of the present invention: A usage method of a solar mobile monitoring device is as follows. The working process is as follows:
[0050] Such as Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 、 Figure 9 、 Figure 10 、 Figure 11 、 Figure 12 、 Figure 13 、 Figure 14 、Figure 15 , Figure 16 , Figure 17 as shown in;
[0051] A method for using a solar mobile monitoring device, comprising the following steps:
[0052] S1. When the device is moving, it is pushed by the front wheels and the rear wheels composed of the sector block 912 and the first sector block 913. When pushed in the factory, the solar panel 3 charges the battery 22 at the same time, and the battery 22 supplies power to the monitoring device 5. When it is necessary to push, the height of the monitoring device 5 is relatively low, and it can freely enter and exit the factory building. When it is necessary to use the monitoring device 5 at a fixed point, first manually push the handle 76. The handle 76 drives the first notch rod 75 to rotate around the middle as the axis point, driving the other end to rotate in the opposite direction. The lower end of the first notch rod 75 will pull the annular collar 73 and slide on both sides of the annular collar 73. The annular collar 73 pulls the tapered block 72, so that the tapered block 72 is separated from the tapered groove 71. At this time, the tapered block 72 can rotate. Then shake the handle 74. The handle 74 drives the tapered block 72 to rotate. The tapered block 72 drives the spline-connected rotating shaft 65 to rotate. When the rotating shaft 65 rotates, it drives the first bevel gear 66 to rotate, and at the same time drives the disc 67 to rotate. When the disc 67 rotates, it drives the slide rod 68 to rotate. When the slide rod 68 rotates, it will drive the lever 62 to rotate around its middle in the support rod 61 through the chute 64. When the left side of the lever 62 rotates downward, the right side will rotate upward, thus realizing a simple lever principle. It will be very labor-saving when the right side moves upward;
[0053] S2. When the right side of the lever 62 rotates upward, it drives the notch rod 63 to move vertically upward inside the hollow rod 41. When the notch rod 63 moves upward, it will push the first slide rod 44. The first slide rod 44 also moves upward inside the hollow rod 41 at the same time. While the first slide rod 44 moves upward, it will slide in the inclined groove 46 opened on the surface of the first rotating rod 42 and drive the rotation of the first rotating rod 42. At the same time, the bottom of the first slide rod 44 is in contact with the bottom of the sleeve rod 43, which will drive the sleeve rod 43 to slide upward on the surface of the first rotating rod 42 through the spline groove, and will also drive the sleeve rod 43 to rotate through the spline groove when the first rotating rod 42 rotates. When the sleeve rod 43 moves upward, it drives the second slide rod 45 to move upward at the same time through its own inclined groove 46, and makes the second slide rod 45 gradually move upward along the inclined groove 46 when the sleeve rod 43 rotates. When moving upward, it is limited by the spline groove of the first slide rod 44 at the same time, so that the second slide rod 45 moves vertically upward again. When the second slide rod 45 moves upward, it drives the monitoring device 5 to rise, so that when it is at a fixed position, the monitoring range can be expanded, saving power of the battery while saving labor, so that the monitoring device can work for a long time;
[0054] S3. When the lever 62 rotates downward on the left side, it will simultaneously squeeze the pressure plate 82. When the pressure plate 82 is squeezed, it will drive the sliding rod 81 to slide downward on the base 1. When the sliding rod 81 slides downward, it drives the second gear disk 810 to slide downward and mesh with the first gear disk 89. When the sliding rod 81 slides downward, it drives the L-shaped pressure rod 86 to slide downward. The L-shaped pressure rod 86 slides downward in the vertical chute 85 and simultaneously drives the spring pressure plate 87 to squeeze the cross plate 88 downward, flattening the cross plate 88. After the cross plate 88 is flattened, it will drive the main rotating shaft 91 and the mechanism on the main rotating shaft 91 to return to the correct position, facilitating the next step. At the same time, when the rotating shaft 65 rotates, it drives the first bevel gear 66 to rotate. When the first bevel gear 66 rotates, it drives the engaged second bevel gear 610 to rotate. When the second bevel gear 610 rotates, it drives the gear 611 to rotate through the second rotating rod 69. When the gear 611 rotates, it drives the engaged rack 612 to move. The rack 612 moves on the surface of the base 1 until it meshes with the first gear 83 and drives the first gear 83 to rotate. The first gear 83 drives the sliding rod 81 connected by splines to rotate. When the sliding rod 81 rotates, it drives the second gear disk 810 at the lower end to rotate. When the second gear disk 810 rotates, it drives the meshing first gear disk 89 to rotate;
[0055] S4. When the first gear disk 89 rotates, it drives the fixedly connected rotating sleeve 92 to rotate on the surface of the relatively stationary main rotating shaft 91. When the rotating sleeve 92 rotates, it drives the inclined groove sleeve 96 on the side to rotate, causing the pawl 97 to move towards the ratchet 94 in the vertical groove plate 95 until the pawl 97 meshes with the ratchet 94. At this time, the rotating sleeve 92 drives the pawl 97 to rotate, the pawl 97 drives the ratchet 94 to rotate, the ratchet 94 drives the first rotating sleeve 93 to rotate, the first rotating sleeve 93 drives the ring 917 to rotate, the ring 917 drives the connecting rod 99 to slide upward in the second slot rod 98. When the connecting rod 99 slides, it simultaneously drives the slide plate 910 to slide up and down. When the slide plate 910 slides, it drives the telescopic end of the telescopic rod 915 to expand outward along the track of the first inclined groove 911 through the vertical rod 916. When the telescopic rod 915 expands outward, it drives the first sector block 913 to rotate with the two sides of the sector block 912 as the center of the circle until it is fully unfolded, making the upper and lower sector blocks 912 and the first sector block 913 relatively parallel, forming two opposite straight lines. In this way, the rear wheels of this device cannot rotate, thus fixing the entire device, facilitating fixed-point monitoring. When performing fixed-point monitoring, not only is the device stabilized, but also the monitoring range is expanded. Finally, only need to pull the grip 76. The grip 76 drives the first slot rod 75 to rotate with its midpoint as the axis of rotation, driving the other end to rotate in the opposite direction. The lower end of the first slot rod 75 will push the annular collar 73 and slide on both sides of the annular collar 73, pushing the tapered block 72 through the annular collar 73, so that the tapered block 72 is combined with the tapered groove 71, and the device can be locked and stabilized.
[0056] The basic principles, main features and advantages of the present invention have been shown and described above. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.
Claims
1. A solar mobile monitoring device, comprising a base (1), on the surface of the base (1) is fixedly connected a power supply mechanism (2), the power supply mechanism (2) includes a metal shell (21), the metal shell (21) is fixedly connected to the surface of the base (1), inside the metal shell (21) is fixedly connected a storage battery (22), on the upper surface of the metal shell (21) is fixedly connected a solar panel (3); It is characterized in that: On the surface of the base (1) is fixedly connected a lifting mechanism (4), on the surface of the base (1) is provided a control mechanism (6), on the side of the control mechanism (6) is provided an adjusting mechanism (7), on the surface of the base (1) is slidably connected a clutch mechanism (8), on the lower surface of the base (1) is rotatably connected a stabilizing mechanism (9); By adjusting one end of the control mechanism (6) through the adjusting mechanism (7), it is used to drive the lifting and lowering of the lifting mechanism (4), and at the same time the adjusting mechanism (7) cooperates with the clutch mechanism (8) to control the unfolding of the stabilizing mechanism (9) to improve the stability of the device; The lifting mechanism (4) includes a hollow rod (41), the hollow rod (41) is fixedly connected to the surface of the base (1), inside the hollow rod (41) is rotatably connected a first rotating rod (42), on the surface of the first rotating rod (42) is spline-connected a sleeve rod (43), inside the hollow rod (41) is provided a spline groove, a first sliding rod (44) is slidably connected inside the hollow rod (41) through the spline groove, inside the first sliding rod (44) is provided a spline groove, a second sliding rod (45) is slidably connected inside the first sliding rod (44) through the spline groove, the top end of the second sliding rod (45) is fixedly connected to a monitoring device (5), on the surfaces of the first rotating rod (42) and the sleeve rod (43) are both provided inclined grooves (46), the first sliding rod (44) is slidably connected in the inclined groove (46) opened on the surface of the first rotating rod (42), and the second sliding rod (45) is slidably connected in the inclined groove (46) opened on the surface of the sleeve rod (43); The control mechanism (6) includes a support rod (61). The support rod (61) is fixedly connected to the surface of the base (1). The top end of the support rod (61) is rotatably connected to a lever (62). The middle part of the lever (62) is the pivot point and is rotatably connected to the top end of the support rod (61). One end of the lever (62) is slidably connected to a notched rod (63). One end of the notched rod (63) is slidably and limit-connected to the side surface of the hollow rod (41). The other end of the lever (62) is provided with a chute (64). Inside the metal shell (21), a rotating shaft (65) is rotatably connected. On the surface of the rotating shaft (65), a first bevel gear (66) is fixedly connected. One end of the rotating shaft (65) is fixedly connected to a disc (67). On the surface of the disc (67), a slide rod (68) is fixedly connected. The slide rod (68) is slidably connected inside the chute (64). On the surface of the base (1), a second rotating rod (69) is rotatably connected. The upper end of the second rotating rod (69) is fixedly connected to a second bevel gear (610). The second bevel gear (610) meshes with the first bevel gear (66). The lower end of the second rotating rod (69) is fixedly connected to a gear (611). On the surface of the base (1), a rack (612) is slidably connected. One side of the rack (612) meshes with the gear (611).
2. The solar mobile monitoring device according to claim 1, characterized in that: The input end of the storage battery (22) is electrically connected to the output end of the solar panel (3) through a wire (23). The output end of the storage battery (22) is electrically connected to the input end of the monitoring device (5) through a wire (23).
3. The solar mobile monitoring device according to claim 2, characterized in that: The adjusting mechanism (7) includes a conical groove (71). The conical groove (71) is fixed to the other end of the rotating shaft (65) and is also fixedly connected to the side surface of the metal shell (21). Inside the conical groove (71), a conical block (72) is connected by splines. On the surface of the conical block (72), an annular collar (73) is rotatably connected. One end of the conical groove (71) is fixedly connected to a handle (74). On the surface of the metal shell (21), a first notched rod (75) is rotatably connected. The lower end of the first notched rod (75) is slidably connected to both sides of the annular collar (73). The top end of the first notched rod (75) is fixedly connected to a grip (76). A spring (77) is provided between the other end of the conical block (72) and the inside of the conical groove (71).
4. The solar mobile monitoring device according to claim 3, characterized in that: The clutch mechanism (8) includes a sliding rod (81) which is slidably connected to the upper and lower surfaces of the base (1). The upper end of the sliding rod (81) is fixedly connected to a pressure plate (82). The surface of the sliding rod (81) is splined with a first gear (83), and at the same time, the first gear (83) is rotatably connected to the surface of the base (1). A telescopic spring (84) is provided between the sliding rod (81) and the base (1). The lower surface of the base (1) is fixedly connected with a vertical chute (85). The surface of the sliding rod (81) is rotatably connected to an L-shaped pressing rod (86), and the L-shaped pressing rod (86) is simultaneously slidably connected inside the vertical chute (85). The two sides of the L-shaped pressing rod (86) are slidably connected with spring pressing plates (87). The lower end of the sliding rod (81) is fixedly connected with a second gear disk (810).
5. The solar mobile monitoring device according to claim 4, characterized in that: The stabilizing mechanism (9) includes a main rotating shaft (91) which is rotatably connected to the lower surface of the base (1). The surface of the main rotating shaft (91) is rotatably connected to a rotating sleeve (92). Two sides of the main rotating shaft (91) are fixedly connected with cross plates (88). The middle part of the surface of the rotating sleeve (92) is fixedly connected with a first gear disk (89). The surface of the main rotating shaft (91) is rotatably connected to a first rotating sleeve (93). The surface of the first rotating sleeve (93) is fixedly connected with a ratchet wheel (94). One side of the first rotating sleeve (93) is fixedly connected with a vertical groove plate (95). One side of the first rotating sleeve (93) is simultaneously rotatably connected to an inclined groove sleeve (96). One end of the inclined groove sleeve (96) is fixedly connected to one side of the rotating sleeve (92). A pawl (97) is slidably connected inside the vertical groove plate (95) and the inclined groove sleeve (96). The surface of the main rotating shaft (91) is fixedly connected with a second grooved rod (98). A connecting rod (99) is slidably connected inside the second grooved rod (98).
6. The solar mobile monitoring device according to claim 5, wherein: The surface of the second notch rod (98) is connected with a sliding plate (910) in a limited way. The connecting rod (99) passes through the sliding plate (910) and is slidably connected inside the second notch rod (98). The surface of the first rotating sleeve (93) is fixedly connected with a circular ring (917). At the same time, the lower end of the connecting rod (99) is rotatably connected to the surface of the circular ring (917). The surface of the sliding plate (910) is provided with a first inclined groove (911). The upper end of the second notch rod (98) is fixedly connected with a sector block (912). At the same time, the lower end of the sector block (912) is fixedly connected to the surface of the main rotating shaft (91). The two sides of the sector block (912) are rotatably connected with a first sector block (913). The two sector blocks (912) and the four first sector blocks (913) form a circle. The surface of the first sector block (913) is fixedly connected with a round rod (914). The back of the sliding plate (910) is fixedly connected with a telescopic rod (915). The fixed end of the telescopic rod (915) is fixedly connected with the sliding plate (910). The surface of the telescopic end of the telescopic rod (915) is fixedly connected with a vertical rod (916). The vertical rod (916) is slidably connected inside the first inclined groove (911). One end of the telescopic rod (915) is slidably connected with the round rod (914).
7. A method of using a solar mobile monitoring device, using a solar mobile monitoring device as described in claim 6, characterized in that, The steps are as follows: S1. When the device moves, it is pushed by the front wheels and the rear wheels formed by the sector block (912) and the first sector block (913). It is pushed inside the factory. At the same time, the solar panel (3) charges the battery (22), and the battery (22) supplies power to the monitoring device (5). When it is necessary to push, the height of the monitoring device (5) is relatively low, and it can freely enter and exit the factory building. When it is necessary to use the monitoring device (5) at a fixed point, first, the adjustment mechanism (7) drives the control mechanism (6) to achieve a labor-saving effect; S2. The lever (62) in the control mechanism (6) drives the notch rod (63) upward and moves inside the hollow rod (41) on the lifting mechanism (4). When the second sliding rod (45) on the lifting mechanism (4) moves upward, it drives the monitoring device (5) to rise; S3. When the left side of the lever (62) rotates downward, it will simultaneously squeeze the pressing plate (82) on the clutch mechanism (8), causing the rack (612) on the clutch mechanism (8) to move on the surface of the base (1) until it meshes with the first gear (83), and drives the first gear (83) to rotate. The first gear (83) drives the sliding rod (81) connected by splines to rotate. When the sliding rod (81) rotates, it drives the second toothed disc (810) at the lower end to rotate. When the second toothed disc (810) rotates, it drives the first toothed disc (89) meshing with it to rotate; S4. Finally, the clutch mechanism (8) drives the surface of the main rotating shaft (91) on the stabilizing mechanism (9) to rotate, drives the circular ring (917) to rotate, and at the same time drives the connecting rod (99) to slide inside the second notch rod (98). The connecting rod (99) drives the sliding plate (910) to slide. The sliding plate (910) drives the telescopic end of the telescopic rod (915) to expand outward through the vertical rod (916). The round rod (914) drives the first sector block (913) to rotate until it is fully unfolded.
Citation Information
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Mobile solar video monitoring device
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