Integrated stand type intelligent street lamp

By designing a rotating mechanism to dissipate wind force, a wiping mechanism to remove dust, a heat dissipation mechanism to cool down, and a cleaning mechanism to remove mosquitoes, the problems of easy damage to solar panels and poor lighting effects have been solved, achieving stable power supply and long lifespan for solar streetlights.

CN116464942BActive Publication Date: 2026-04-28JIANGXI BAIYING HIGH TECH HLDG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JIANGXI BAIYING HIGH TECH HLDG CO LTD
Filing Date
2023-05-06
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

The solar panels of existing solar streetlights cannot absorb wind force when the wind is strong, making them easily damaged, and dust and insects affect the lighting effect.

Method used

An integrated pillar-type smart street light was designed. The solar panel is deflected by wind through a rotating mechanism and a blocking mechanism, the dust is removed by a wiping mechanism, the heat dissipation mechanism cools the area, and the cleaning mechanism removes insects. Sensors and motors control the various modules to work together.

Benefits of technology

It effectively protects solar panels from damage, maintains lighting performance, extends lamp life, eliminates mosquitoes, and ensures a stable power supply.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to an intelligent street lamp, in particular to an integrated column type intelligent street lamp. The application provides an integrated column type intelligent street lamp with a wind removing function. The integrated column type intelligent street lamp comprises a base, a support column, a fixed frame, a first speed reducer, a first full gear and a lighting lamp, etc., the bottom of the support column is connected with the base, the upper portion of the support column is connected with the fixed frame, the right side of the top of the fixed frame is connected with the first speed reducer, the front side of the upper portion of the fixed frame is rotatably connected with the lighting lamp, and the left side of the output shaft of the first speed reducer is connected with the upper portion of the lighting lamp and is connected with the first full gear. The solar panel is rotatably connected with the rotating plate, when the wind is relatively strong, the solar panel can drive the sliding clamping block to rotate under the action of the wind, so that the sliding clamping block is separated from the fixed clamping block, in this way, the rotation of the solar panel can achieve the purpose of removing the force, and the solar panel can be prevented from being easily damaged due to the relatively strong wind.
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Description

Technical Field

[0001] This invention relates to an intelligent street light, and more particularly to an integrated pillar-type intelligent street light. Background Technology

[0002] In cities, solar streetlights are commonly used for nighttime lighting to save electricity. However, the solar panels of these streetlights are mostly fixed and cannot be moved according to the movement of the sun.

[0003] Patent publication number CN113405063A discloses a solar-powered LED energy-saving street light, including a street light body. The street light body includes a support rod with a fixed base welded to its bottom. The fixed base has a fixing hole, and a fixing sleeve is installed on the support rod. An installation ring is welded to the fixing sleeve, and a fixing rod is installed on the installation ring. A street light holder is installed at one end of the fixing rod. In use, the solar-powered LED energy-saving street light uses a motor to drive a rotating disk, causing the fixed disk to rotate. This rotation increases the contact time between the solar panel and sunlight. Additionally, an electric push rod moves the motor housing up and down, causing the solar panel to move downwards. During this movement, the solar panel rotates, bringing one side of its top into contact with a sponge board. This contact removes dust from the solar panel. Furthermore, the solar panel can be adjusted bidirectionally for easy cleaning and use. However, this device's solar panel cannot effectively absorb wind force during strong winds, making it susceptible to wind damage.

[0004] Therefore, it is necessary to develop an integrated pillar-type intelligent street light with wind-relief function. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides an integrated pillar-type smart street light with wind deflection function, overcoming the limitation that the solar panels of existing devices cannot effectively deflect wind.

[0006] To achieve the above objectives, the present invention is implemented through the following solution: an integrated column-type intelligent street light, comprising a base, a column, a fixed frame, a first geared motor, a first full gear, a lighting fixture, a first pressure sensor, a rotating mechanism, a closing mechanism, and a blocking mechanism. The base is connected to the bottom of the column, and the fixed frame for enclosing the components is connected to the upper part of the column. The first geared motor is connected to the top right side of the fixed frame, and the lighting fixture for illumination is rotatably connected to the front upper part of the fixed frame. At least two heat dissipation holes are evenly opened on the lighting fixture. The left side of the output shaft of the first geared motor is connected to the upper part of the lighting fixture, and the two first full gears mesh. The first pressure sensor is provided on the top right side of the column, and a rotating mechanism is provided in the upper part of the column. The rotating mechanism component is provided with a closing mechanism, and the closing mechanism component is provided with a blocking mechanism. The rotating mechanism is used to drive the closing mechanism and the blocking mechanism to rotate.

[0007] Optionally, the rotating mechanism includes a first support, a second geared motor, a rotating cylinder, a second full gear, and a photosensitive sensor. The photosensitive sensor is provided on the upper front side of the support column, the first support is provided in the upper part of the support column, the top of the first support is connected to the second geared motor, the upper part of the output shaft of the second geared motor is connected to the second full gear, the upper part of the support column is rotatably connected to the rotating cylinder for driving the closing mechanism components to rotate, the outer wall of the rotating cylinder has a first guide groove, and a stop is provided on the left side of the rotating cylinder.

[0008] Optionally, the closing mechanism includes a second bracket, a rotating plate, a third geared motor, a third full gear, and a second pressure sensor. The top of the rotating cylinder is connected to the second bracket, and two rotating plates for driving the blocking mechanism components to rotate are rotatably connected to the second bracket. The upper left side of the second bracket is connected to the third geared motor, and the output shaft of the third geared motor is connected to the rotating plate on the left. The upper inner side of both rotating plates is connected to the third full gear, and the two third full gears mesh. The second pressure sensor is provided on the left side of the top of the support column.

[0009] Optionally, the blocking mechanism includes a solar panel, a torsion spring, a fixed block, a fixed latch, a sliding latch, and a first telescopic spring. Both rotating plates are rotatably connected to a solar panel for converting solar energy into electrical energy. Torsion springs connect the lower sides of both solar panels to the rotating plates on the same side. Two fixed blocks are connected to the inner sides of both solar panels. Sliding latches are slidably connected to the four fixed blocks. First telescopic springs connect the outer sides of the four sliding latches to the fixed blocks on the same side. Two fixed latches for limiting the movement of the sliding latches are connected to the inner sides of both rotating plates.

[0010] Optionally, it also includes a wiping mechanism for wiping lighting fixtures. The wiping mechanism includes a fixed rod, a wiping plate, a slide rail, and a sliding frame. Fixed rods are symmetrically connected vertically to the front side of the fixed frame. A wiping plate for wiping lighting fixtures is slidably connected between the right sides of the two fixed rods. The front side of the wiping plate contacts the lighting fixture. Slide rails are symmetrically connected horizontally to the front side of the fixed frame. A sliding frame is slidably connected between the upper parts of the two slide rails. A groove for moving the wiping plate is opened on the sliding frame. The rear side of the wiping plate is slidably connected to the groove.

[0011] Optionally, it also includes a heat dissipation mechanism for cooling the lighting fixture. The heat dissipation mechanism includes a third bracket, an air pump, a hose, a vent plate, and a temperature sensor. The third bracket is connected to the upper side inside the support column, the air pump is connected to the top of the third bracket, the vent plate is provided on the upper right side of the support column, the hose is provided on the upper right side of the air pump, the hose passes through the vent plate and connects to the upper front side of the lighting fixture, and the temperature sensor is provided on the upper right side of the lighting fixture.

[0012] Optionally, it also includes a cleaning mechanism for cleaning mosquitoes. The cleaning mechanism includes a rotating storage plate, a squeezing rod, and a second telescopic spring. The rotating storage plate for collecting mosquitoes is rotatably connected to the lower side of the lighting fixture. A second guide groove is opened on the right side inside the rotating storage plate. The squeezing rod is slidably connected to the right side inside the rotating storage plate. A protrusion is provided on the right rear side of the squeezing rod. A second telescopic spring is connected between the left side of the squeezing rod and the left wall inside the rotating storage plate.

[0013] Optionally, it also includes a control box, which is located in the middle of the front side of the pillar. The control box includes a switching power supply, a power module, and a control module. The switching power supply powers the entire integrated pillar-type intelligent street light. The output terminal of the switching power supply is electrically connected to the power module. The power module is connected to the main power switch via a line. The power module is electrically connected to the control module. The control module is connected to a DS1302 clock circuit and a 24C02 circuit. The first pressure sensor, the second pressure sensor, the photosensitive sensor, and the temperature sensor are all electrically connected to the control module. The first geared motor, the second geared motor, and the third geared motor are all connected to the control module via a DC motor forward and reverse module. The lighting fixture and the air pump are all connected to the control module via a relay control module.

[0014] The present invention has the following advantages: 1. The present invention uses a rotating connection between the solar panel and the rotating plate. When the wind is strong, the solar panel can drive the sliding block to rotate under the action of the wind, so that the sliding block separates from the fixed block. In this way, the rotation of the solar panel can achieve the purpose of unloading the force, which can avoid the solar panel being easily damaged by strong winds.

[0015] 2. Under the action of the sliding groove, the present invention can drive the wiping plate to move, so that the wiping plate can wipe the lighting fixture. In this way, dust mixed with dew can be prevented from adhering to the lighting fixture and affecting the lighting effect.

[0016] 3. This invention controls the air pump to start via a temperature sensor, which cools the inside of the lighting fixture. The hot air is then discharged through the heat dissipation holes. This prevents the lighting fixture from being in a high-temperature state for a long time, which could easily affect its service life.

[0017] 4. In this invention, mosquitoes are killed by high temperatures inside the lighting fixture and fall into a rotating storage plate for collection. Then, under the action of the second guide groove, the protrusion drives the squeezing rod and the rotating storage plate to rotate, causing the rotating storage plate to pour out the mosquitoes. In this way, the mosquitoes inside the lighting fixture can be cleaned. Attached Figure Description

[0018] Figure 1 A three-dimensional structural schematic diagram of the first embodiment of the present invention.

[0019] Figure 2 This is a three-dimensional structural diagram of the second embodiment of the present invention.

[0020] Figure 3 This is a three-dimensional structural diagram of the third embodiment of the present invention.

[0021] Figure 4 This is a three-dimensional structural diagram of the fourth embodiment of the present invention.

[0022] Figure 5 This is a three-dimensional structural diagram of the first cross-section of the present invention.

[0023] Figure 6 This is a three-dimensional structural schematic diagram of the second cross-section of the present invention.

[0024] Figure 7 This is a three-dimensional structural diagram of the fifth embodiment of the present invention.

[0025] Figure 8 This is a three-dimensional structural diagram of the first part of the rotating mechanism of the present invention.

[0026] Figure 9 This is a three-dimensional structural diagram of the second part of the rotating mechanism of the present invention.

[0027] Figure 10 This is a three-dimensional structural diagram of the first part of the closing mechanism of the present invention.

[0028] Figure 11 This is a three-dimensional structural diagram of the second part of the closing mechanism of the present invention.

[0029] Figure 12 This is a three-dimensional structural diagram of the third part of the closing mechanism of the present invention.

[0030] Figure 13 This is an enlarged three-dimensional structural diagram of point A in the present invention.

[0031] Figure 14 This is a three-dimensional structural diagram of the fourth part of the closing mechanism of the present invention.

[0032] Figure 15 This is a three-dimensional structural diagram of the first part of the wiping mechanism of the present invention.

[0033] Figure 16 This is a three-dimensional structural diagram of the second part of the wiping mechanism of the present invention.

[0034] Figure 17 This is a three-dimensional structural diagram of the first part of the heat dissipation mechanism of the present invention.

[0035] Figure 18 This is a three-dimensional structural diagram of the second part of the heat dissipation mechanism of the present invention.

[0036] Figure 19 This is a three-dimensional structural diagram of the first part of the cleaning mechanism of the present invention.

[0037] Figure 20 This is an enlarged three-dimensional structural diagram of section B of the present invention.

[0038] Figure 21 This is a three-dimensional structural diagram of the second part of the cleaning mechanism of the present invention.

[0039] Figure 22 This is a circuit block diagram of the present invention.

[0040] Figure 23 This is the circuit schematic diagram of the present invention.

[0041] In the attached diagrams: 1: Base, 2: Support column, 3: Control box, 4: Fixing frame, 5: First geared motor, 6: First full gear, 7: Lighting fixture, 8: First pressure sensor, 9: Rotating mechanism, 91: First bracket, 92: Second geared motor, 93: Rotating cylinder, 94: Second full gear, 95: Photosensitive sensor, 10: Closing mechanism, 101: Second bracket, 102: Rotating plate, 103: Third geared motor, 104: Third full gear, 11: Blocking mechanism, 111: Solar panel Plate, 112: Torsion spring, 1121: Fixing block, 113: Fixing block, 114: Sliding block, 115: First telescopic spring, 12: Wiping mechanism, 121: Fixing rod, 122: Wiping plate, 123: Slide rail, 124: Sliding frame, 13: Heat dissipation mechanism, 131: Third bracket, 132: Air pump, 133: Hose, 134: Ventilation plate, 135: Temperature sensor, 14: Cleaning mechanism, 141: Rotating storage plate, 142: Squeezing rod, 143: Second telescopic spring. Detailed Implementation

[0042] The present invention will now be further described with reference to the accompanying drawings and specific embodiments:

[0043] Example 1

[0044] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 and Figure 7 An integrated column-type intelligent street light includes a base 1, a column 2, a fixing frame 4, a first reduction motor 5, a first full gear 6, a lighting fixture 7, a first pressure sensor 8, a rotating mechanism 9, a closing mechanism 10, and a blocking mechanism 11. The base 1 is welded to the bottom of the column 2, and the fixing frame 4 is welded to the upper part of the column 2. The fixing frame 4 is used to enclose the components. The lighting fixture 7 is hinged to the front upper part of the fixing frame 4. The lighting fixture 7 is used for lighting. At least two heat dissipation holes are evenly opened on the lighting fixture 7. The first reduction motor 5 is fixed to the top right side of the fixing frame 4 by bolts. The left side of the output shaft of the first reduction motor 5 is connected to the upper part of the lighting fixture 7 by a key. The two first full gears 6 mesh. The first pressure sensor 8 is provided on the top right side of the column 2. The rotating mechanism 9 is provided in the upper part of the column 2. The closing mechanism 10 is provided on the rotating mechanism 9. The blocking mechanism 11 is provided on the closing mechanism 10.

[0045] Please see Figure 1 , Figure 8 and Figure 9 The rotating mechanism 9 includes a first support 91, a second reduction motor 92, a rotating cylinder 93, a second full gear 94, and a photosensitive sensor 95. The first support 91 is located in the upper part of the support column 2, and the photosensitive sensor 95 is located on the front side of the upper part of the support column 2. The second reduction motor 92 is fixed to the top of the first support 91 by bolts. The second full gear 94 is connected to the upper part of the output shaft of the second reduction motor 92 by a key. The rotating cylinder 93 is rotatably connected to the upper part of the support column 2. The rotating cylinder 93 is used to drive the components of the closing mechanism 10 to rotate. The outer wall of the rotating cylinder 93 has a first guide groove. The inside of the rotating cylinder 93 is toothed. The second full gear 94 meshes with the rotating cylinder 93. A stop is provided on the left side of the rotating cylinder 93.

[0046] Please see Figure 1 and Figure 10The closing mechanism 10 includes a second bracket 101, a rotating plate 102, a third geared motor 103, a third full gear 104, and a second pressure sensor. The second bracket 101 is welded to the top of the rotating cylinder 93. The third geared motor 103 is fixed to the upper left side of the second bracket 101 by bolts. Two rotating plates 102 are rotatably connected to the second bracket 101. The rotating plates 102 are used to drive the components of the blocking mechanism 11 to rotate. The output shaft of the third geared motor 103 is connected to the rotating plate 102 on the left side by a coupling. The upper inner side of the two rotating plates 102 is connected to the third full gear 104 by a key. The two third full gears 104 mesh. The second pressure sensor is provided on the top left side of the support column 2.

[0047] Please see Figure 1 , Figure 11 , Figure 12 , Figure 13 , Figure 14 and Figure 15 The blocking mechanism 11 includes a solar panel 111, a torsion spring 112, a fixing block 1121, a fixing block 113, a sliding block 114, and a first telescopic spring 115. The solar panels 111 are rotatably connected inside both rotating plates 102. The solar panels 111 are used to convert solar energy into electrical energy. Torsion springs 112 are connected between the lower sides of both solar panels 111 and the rotating plates 102 on the same side. Two fixing blocks 1121 are welded to the inner sides of both solar panels 111. Sliding blocks 114 are slidably connected inside each of the four fixing blocks 1121. The first telescopic spring 115 is connected between the outer sides of each of the four sliding blocks 114 and the fixing blocks 1121 on the same side. Two fixing blocks 113 are welded to the inner sides of both rotating plates 102. The fixing blocks 113 are used to limit the sliding blocks 114. All four fixing blocks 113 are in contact with the sliding blocks 114 on the same side.

[0048] Initially, the stop block is located at the rear. When the streetlight is needed, pressing the main power switch powers on the device. The photosensitive sensor 95 detects that the light is bright enough to reach a preset value. The control module then controls the second reduction motor 92 to start for one second. The output shaft of the second reduction motor 92 drives the second full gear 94 to rotate, which in turn drives the rotating cylinder 93 to rotate. This causes the rotating cylinder 93 to move the stop block to the left, pressing the second pressure sensor. The second pressure sensor detects that the pressure has reached a preset value. The control module then controls the output shaft of the second reduction motor 92 to continue rotating for ten seconds. Simultaneously, the control module also controls the third reduction motor 103 to start for five seconds. The output shaft of the second reduction motor 92 drives the second full gear 94 to continue rotating, which in turn drives the rotating cylinder 93 to continue rotating, causing the rotating cylinder to move to the left. 93 drives the stop block, second bracket 101, rotating plate 102, third reduction motor 103, and third full gear 104 to rotate. The output shaft of the third reduction motor 103 drives the left rotating plate 102 to rotate, which in turn drives the third full gear 104 to rotate. The third full gear 104 drives the right rotating plate 102 to rotate, causing the rotating plate 102 to rotate and open the solar panel 111, allowing the solar panel 111 to absorb solar energy. The solar panel 111 converts light energy into electrical energy to power the device. The rotating plate 102 drives the solar panel 111 to rotate and open, which in turn drives the fixing block 1121, fixing latch 113, and sliding latch 114 to rotate and open. When the wind is strong, the wind can blow the solar panel 111, allowing the solar energy to... When the solar panel 111 rotates, the torsion spring 112 deforms, causing the sliding block 114 to move outward. At this time, the first telescopic spring 115 is compressed, causing the sliding block 114 to separate from the fixed block 113. This allows the solar panel 111 to rotate, thus relieving stress and preventing damage from strong winds. After the sliding block 114 separates from the fixed block 113, the first telescopic spring 115 returns to its original position, causing the sliding block 114 to return to its original position. When the wind decreases, the torsion spring 112 returns to its original position, causing the solar panel 111 to rotate and return to its original position, which in turn causes the sliding block 114 to rotate and return to its original position. The sliding block 114 then contacts the fixed block 113, causing it to move outward. At this time, the first telescopic spring 115 is compressed, causing the sliding block 114 to move outward. When the first extension spring 115 is compressed, and the sliding block 114 resets, the first extension spring 115 also resets, causing the sliding block 114 to reset and engage with the fixed block 113, thus limiting the movement of the solar panel 111. In low wind conditions, the solar panel 111 will not rotate. When the baffle rotates to contact the first pressure sensor 8, the baffle presses against the first pressure sensor 8. The first pressure sensor 8 detects that the pressure has reached a preset value, and the control module stops the second reduction motor 92 and turns on the lighting fixture 7. Simultaneously, it controls the output shaft of the first reduction motor 5 to rotate 90 degrees and also controls the output shaft of the third reduction motor 103 to reverse for five seconds to reset. The output shaft of the first reduction motor 5 then drives the first full gear 6 to rotate 90 degrees.Then, the first full gear 6 drives the lighting fixture 7 to rotate upwards by 90 degrees, causing the lighting fixture 7 to start working. The lighting fixture 7 has heat dissipation holes to dissipate the heat generated by the lighting fixture 7, preventing the internal temperature of the lighting fixture 7 from becoming too high and affecting its service life. The output shaft of the third geared motor 103 drives the left rotating plate 102 to reverse, which in turn drives the third full gear 104 to reverse. The third full gear 104 drives the right rotating plate 102 to reverse, causing the rotating plate 102 to drive the solar panel 111 to rotate and close, thus protecting the solar panel 111. When the photosensitive sensor 95 detects that the light is bright enough to reach the preset value again, the control module controls the second geared motor 92 to reverse for five seconds to reset, causing the rotating cylinder 93 to drive the stop block to reverse and reset, pressing the second pressure sensor. When the second pressure sensor detects that the pressure has reached the preset value, the control module controls the output shaft of the second geared motor 92 to rotate for ten hours. At the same time, the control module also controls the third geared motor 103 to start for five seconds, and the output shaft of the second geared motor 92 drives... The rotation of the second full gear 94 drives the rotating cylinder 93 to rotate, which in turn drives the stop block, the second bracket 101, the rotating plate 102, the third reduction motor 103, and the third full gear 104 to rotate. The output shaft of the third reduction motor 103 drives the left rotating plate 102 to rotate, which in turn drives the third full gear 104 to rotate. The third full gear 104 then drives the right rotating plate 102 to rotate, causing the solar panel 111 to rotate and open, allowing the solar panel 111 to continue absorbing solar energy. At the same time, the control module also controls the lighting fixture 7 to turn off and controls the output shaft of the first reduction motor 5 to reverse 90 degrees to reset. The output shaft of the first reduction motor 5 drives the first full gear 6 to reverse 90 degrees, which in turn drives the lighting fixture 7 to rotate downwards by 90 degrees, thus retracting the lighting fixture 7. This protects the lighting fixture 7. This cycle allows the solar panel 111 and the lighting fixture 7 to work alternately. When not in use, simply press the main power switch to turn off the power.

[0049] Example 2

[0050] Based on Example 1, please refer to Figure 5 , Figure 15 and Figure 16It also includes a wiping mechanism 12, which is used to wipe the lighting fixture 7. The wiping mechanism 12 includes a fixed rod 121, a wiping plate 122, a slide rail 123, and a sliding frame 124. The fixed rod 121 is symmetrically welded to the front of the fixed frame 4. The wiping plate 122 is slidably connected between the right sides of the two fixed rods 121. The wiping plate 122 is used to wipe the lighting fixture 7. The front side of the wiping plate 122 contacts the lighting fixture 7. The slide rail 123 is symmetrically welded to the front of the fixed frame 4. The sliding frame 124 is slidably connected between the upper parts of the two slide rails 123. The sliding frame 124 has a sliding groove, which is used to drive the wiping plate 122 to move. The rear side of the wiping plate 122 is slidably connected to the sliding groove. The upper part of the sliding frame 124 contacts the first guide groove on the rotating cylinder 93.

[0051] When the rotating cylinder 93 drives the first guide groove to rotate, the sliding frame 124 moves downward under the guidance of the first guide groove. At the same time, the wiping plate 122 moves to the left under the action of the sliding groove, so that the wiping plate 122 wipes the lighting fixture 7. In this way, dust mixed with dew can be prevented from adhering to the lighting fixture 7 and affecting the lighting effect of the lighting fixture 7. When the rotating cylinder 93 drives the first guide groove to reverse and reset, the sliding frame 124 moves upward and reset under the guidance of the first guide groove. At the same time, the wiping plate 122 moves to the right and reset under the action of the sliding groove.

[0052] Please see Figure 1 , Figure 17 and Figure 18 It also includes a heat dissipation mechanism 13, which is used to cool the lighting fixture 7. The heat dissipation mechanism 13 includes a third bracket 131, an air pump 132, a hose 133, a vent plate 134, and a temperature sensor 135. The upper right side of the support column 2 is provided with a vent plate 134. The upper inside of the support column 2 is welded with a third bracket 131. The top of the third bracket 131 is fixed with an air pump 132 by bolts. The upper right side of the air pump 132 is provided with a hose 133. The hose 133 passes through the vent plate 134 and connects to the upper front side of the lighting fixture 7. The upper right side of the lighting fixture 7 is provided with a temperature sensor 135.

[0053] The temperature sensor 135 is set with two preset values. The first preset value is greater than the second preset value. When the lighting fixture 7 is working, when the temperature sensor 135 detects that the temperature has risen to the first preset value, the control module controls the air pump 132 to start. The air pump 132 blows air into the interior of the lighting fixture 7 through the hose 133 to cool the interior of the lighting fixture 7. Then the hot air is discharged through the heat dissipation holes. In this way, the lighting fixture 7 can be prevented from being in a high-temperature state for a long time, which can easily affect the service life of the lighting fixture 7. When the temperature sensor 135 detects that the temperature has dropped to the second preset value, the control module controls the air pump 132 to stop operating.

[0054] Please see Figure 4 , Figure 19 , Figure 20 and Figure 21 It also includes a cleaning mechanism 14, which is used to clean mosquitoes. The cleaning mechanism 14 includes a rotating storage plate 141, a squeezing rod 142, and a second telescopic spring 143. The rotating storage plate 141 is rotatably connected to the lower side of the lighting fixture 7. The rotating storage plate 141 is used to collect mosquitoes. A second guide groove is opened on the right side inside the rotating storage plate 141. The squeezing rod 142 is slidably connected to the right side inside the rotating storage plate 141. A protrusion is provided on the right rear side of the squeezing rod 142. The protrusion contacts the second guide groove after it moves. A second telescopic spring 143 is connected between the left side of the squeezing rod 142 and the inner left wall of the rotating storage plate 141.

[0055] When the lighting fixture 7 rotates the storage plate 141 and the pressing rod 142 upwards to open, the pressing rod 142 separates from the fixed frame 4. At this time, the second telescopic spring 143, which was initially compressed, returns to its original state, causing the pressing rod 142 and the protrusion to move to the right. Under the action of the second guide groove, the rotating storage plate 141 and the pressing rod 142 rotate, causing the rotating storage plate 141 to close the bottom of the lighting fixture 7. When the lighting fixture 7 is working, some mosquitoes will fly into the interior of the lighting fixture 7 through the heat dissipation holes, making it difficult to clean the mosquitoes inside the lighting fixture 7. After the mosquitoes are killed by the high temperature inside the lighting fixture 7, they fall into the rotating storage plate 141 for collection. When the lighting fixture 7 is reset, it drives the rotating storage plate 141 and the squeezing rod 142 to move downwards and reset. When the squeezing rod 142 moves to contact the fixed frame 4, it drives the protrusion to move to the left. At this time, the second telescopic spring 143 is compressed. Under the action of the second guide groove, the protrusion drives the rotating storage plate 141 to rotate, so that the rotating storage plate 141 pours out the mosquitoes. In this way, the mosquitoes inside the lighting fixture 7 can be cleaned.

[0056] Please see Figure 1 , Figure 22 and Figure 23 It also includes a control box 3, which is located in the middle of the front side of the support column 2. The control box 3 includes a switching power supply, a power module, and a control module. The switching power supply powers the entire integrated column-type intelligent street light. The output terminal of the switching power supply is electrically connected to the power module. The power module is connected to the main power switch via a line. The power module is electrically connected to the control module. The control module is connected to a DS1302 clock circuit and a 24C02 circuit. The first pressure sensor 8, the second pressure sensor, the photosensitive sensor 95, and the temperature sensor 135 are all electrically connected to the control module. The first geared motor 5, the second geared motor 92, and the third geared motor 103 are all connected to the control module via a DC motor forward and reverse module. The lighting fixture 7 and the air pump 132 are all connected to the control module via a relay control module.

[0057] For those skilled in the art, various other corresponding changes and modifications can be made based on the technical solutions and concepts described above, and all such changes and modifications should fall within the protection scope of the claims of this invention.

Claims

1. An integrated column-type intelligent street light, comprising a base (1), a column (2), a fixing frame (4), and a lighting fixture (7), wherein the base (1) is connected to the bottom of the column (2), the fixing frame (4) for enclosing components is connected to the upper part of the column (2), and the lighting fixture (7) for illumination is rotatably connected to the front side of the upper part of the fixing frame (4), and at least two heat dissipation holes are evenly opened on the lighting fixture (7), characterized in that, It also includes a first geared motor (5), a first full gear (6), a first pressure sensor (8), a rotating mechanism (9), a closing mechanism (10), and a blocking mechanism (11). The first geared motor (5) is connected to the top right side of the fixed frame (4). The output shaft of the first geared motor (5) is connected to the upper part of the lighting fixture (7) on the left side. The two first full gears (6) mesh. The first pressure sensor (8) is provided on the top right side of the support column (2). The rotating mechanism (9) is provided in the upper part of the support column (2). The rotating mechanism (9) includes a rotating cylinder (93). The rotating cylinder (93) is rotatably connected to the upper part of the support column (2) for driving the components of the closing mechanism (10) to rotate. The outer wall of the rotating cylinder (93) has a first guide groove. A stop is provided on the left side of the rotating cylinder (93), and a closing mechanism (10) is provided on the rotating mechanism (9) component. The closing mechanism (10) includes a second bracket (101) and a rotating plate (102). The top of the rotating cylinder (93) is connected to the second bracket (101). Two rotating plates (102) for driving the blocking mechanism (11) component to rotate are rotatably connected on the second bracket (101). The closing mechanism (10) component is provided with a blocking mechanism (11). The blocking mechanism (11) includes a solar panel (111). The two rotating plates (102) are rotatably connected to a solar panel (111) for converting solar energy into electrical energy. The rotating mechanism (9) is used to drive the closing mechanism (10) and the blocking mechanism (11) to rotate.

2. The integrated column-type intelligent street light according to claim 1, characterized in that, The rotating mechanism (9) also includes a first bracket (91), a second geared motor (92), a second full gear (94) and a photosensitive sensor (95). A photosensitive sensor (95) is provided on the upper front side of the support column (2). A first bracket (91) is provided on the upper part of the support column (2). The top of the first bracket (91) is connected to the second geared motor (92). The upper part of the output shaft of the second geared motor (92) is connected to the second full gear (94).

3. The integrated column-type intelligent street light according to claim 2, characterized in that, The closing mechanism (10) also includes a third geared motor (103), a third full gear (104) and a second pressure sensor. The third geared motor (103) is connected to the upper left side of the second bracket (101). The output shaft of the third geared motor (103) is connected to the rotating plate (102) on the left side. The upper inner side of both rotating plates (102) is connected to the third full gear (104). The two third full gears (104) mesh. The second pressure sensor is provided on the top left side of the support column (2).

4. The integrated column-type intelligent street light according to claim 3, characterized in that, The blocking mechanism (11) also includes a torsion spring (112), a fixing block (1121), a fixing block (113), a sliding block (114), and a first telescopic spring (115). The lower side of each of the two solar panels (111) is connected to the rotating plate (102) on the same side by a torsion spring (112). The inner side of each of the two solar panels (111) is connected to two fixing blocks (1121). The four fixing blocks (1121) are all slidably connected to the sliding blocks (114). The outer side of each of the four sliding blocks (114) is connected to the fixing block (1121) on the same side by a first telescopic spring (115). The inner side of each of the two rotating plates (102) is connected to two fixing blocks (113) for limiting the sliding blocks (114).

5. An integrated column-type intelligent street light according to claim 4, characterized in that, It also includes a wiping mechanism (12) for wiping the lighting fixture (7). The wiping mechanism (12) includes a fixed rod (121), a wiping plate (122), a slide rail (123), and a sliding frame (124). The fixed rod (121) is symmetrically connected to the front of the fixed frame (4). The wiping plate (122) for wiping the lighting fixture (7) is slidably connected between the right sides of the two fixed rods (121). The front side of the wiping plate (122) contacts the lighting fixture (7). The slide rail (123) is symmetrically connected to the front of the fixed frame (4). The sliding frame (124) is slidably connected between the upper parts of the two slide rails (123). The sliding frame (124) has a groove for moving the wiping plate (122). The rear side of the wiping plate (122) is slidably connected to the groove.

6. The integrated column-type intelligent street light according to claim 5, characterized in that, It also includes a heat dissipation mechanism (13) for cooling the lighting fixture (7). The heat dissipation mechanism (13) includes a third bracket (131), an air pump (132), a hose (133), a vent plate (134), and a temperature sensor (135). The third bracket (131) is connected to the upper side inside the support column (2). The air pump (132) is connected to the top of the third bracket (131). The vent plate (134) is provided on the upper right side of the support column (2). The hose (133) is provided on the upper right side of the air pump (132). The hose (133) passes through the vent plate (134) and is connected to the upper front side of the lighting fixture (7). The temperature sensor (135) is provided on the upper right side of the lighting fixture (7).

7. An integrated column-type intelligent street light according to claim 6, characterized in that, It also includes a cleaning mechanism (14) for cleaning mosquitoes. The cleaning mechanism (14) includes a rotating storage plate (141), a squeezing rod (142), and a second telescopic spring (143). The rotating storage plate (141) for collecting mosquitoes is rotatably connected to the lower side of the lighting fixture (7). A second guide groove is opened on the right side inside the rotating storage plate (141). The squeezing rod (142) is slidably connected to the right side inside the rotating storage plate (141). A protrusion is provided on the right rear side of the squeezing rod (142). A second telescopic spring (143) is connected between the left side of the squeezing rod (142) and the left wall inside the rotating storage plate (141).

8. An integrated column-type intelligent street light according to claim 7, characterized in that, It also includes a control box (3). The control box (3) is located in the middle of the front side of the support column (2). The control box (3) includes a switching power supply, a power module and a control module. The switching power supply powers the entire integrated column-type intelligent street light. The output terminal of the switching power supply is electrically connected to the power module. The power module is connected to the main power switch through a line. The power module is electrically connected to the control module. The control module is connected to the DS1302 clock circuit and the 24C02 circuit. The first pressure sensor (8), the second pressure sensor, the photosensitive sensor (95) and the temperature sensor (135) are all electrically connected to the control module. The first geared motor (5), the second geared motor (92) and the third geared motor (103) are all connected to the control module through the DC motor forward and reverse rotation module. The lighting fixture (7) and the air pump (132) are all connected to the control module through the relay control module.

Citation Information

Patent Citations

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