Anti-vibration device and anti-vibration method for mobile phone support
Through the synergistic effect of a multi-layered shock absorption structure and a pneumatic system, the problem of shock absorption for mobile phone holders in dynamic scenarios is solved, thereby improving stability and comfort and protecting the lifespan and performance of the device.
Patent Information
- Application Number
- CN202510701512.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-28
- Publication Date
- 2025-11-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing phone holders are not effective at absorbing shocks in dynamic scenarios, causing the phone to shake violently and the screen to shaki, which affects the safety of use and the lifespan of the device.
It adopts a multi-layered shock absorption structure, including support components and shock absorption components. It utilizes elastic support columns, dampers and air pressure systems to work together to absorb and buffer vibration energy, and combines radiators to improve stability and comfort.
It effectively filters complex vibrations, improves shooting smoothness and image clarity, protects precision components, extends equipment life, and reduces the impact of high temperatures through the heat sink.
Smart Images

Figure CN120897007A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of mobile phone holder technology, and in particular to a mobile phone holder anti-vibration device and anti-vibration method. Background Technology
[0002] A phone stand is an auxiliary tool used to fix, support, and adjust the position and angle of a phone. It aims to free the user's hands and improve ease of use, comfort, and safety. It stabilizes the phone in a specific position through a physical structure, adapts to various usage scenarios, and is a common electronic accessory in modern life.
[0003] Existing phone holders offer poor shock absorption. In dynamic scenarios, the rigid structure of the holder lacks an elastic buffer layer, failing to absorb vibration energy. This results in severe phone shaking, screen jitter, and even drops, interfering with driving safety, video streaming quality, or work efficiency. Furthermore, it can shorten the device's lifespan due to hardware damage such as loose connections, screen cracks, and faulty internal component soldering. Conversely, if the holder is made elastic, the phone will still shake significantly. Summary of the Invention The purpose of this invention is to solve the problem that the above-mentioned devices, due to their poor shock absorption effect, affect the normal operation of mobile phones and reduce their lifespan, thereby proposing a mobile phone holder shock absorption device.
[0004] To achieve the above objectives, this application discloses a mobile phone stand anti-vibration device, including a support assembly and a bracket assembly connected to the support assembly. The bracket assembly is used to mount a mobile phone. The support assembly includes a turntable, a support column is fixedly mounted on the top of the turntable, and a base is fixedly mounted on the top of the support column. The support column includes: The first support column is fixedly connected to the base; The second support column is connected to the first support column in a first elastic manner. The first elastic manner is set such that when the compressive force of the first support column on the second support column is less than a set first threshold, the first support column and the second support column remain stationary, and when the compressive force of the first support column on the second support column is greater than the set first threshold, the first support column and the second support column slide in opposite directions. The third support column is connected to the second support column in a second elastic manner. The second elastic manner is set such that when the tension of the third support column on the second support column is less than a set second threshold, the third support column and the second support column remain stationary, and when the tension of the third support column on the second support column is greater than the set second threshold, the third support column and the second support column slide in opposite directions. The first support column and the second support column are connected by a flexible connecting line. A first spring is provided between the first support column and the second support column. When the connecting line is taut, the first spring is compressed.
[0005] A stretched second spring is provided between the third support column and the second support column. The second support column is connected to a limiting column. The third support column has a groove, and the end of the limiting column extends to the bottom of the groove. The second spring is stretched. Two shock-absorbing components are fixedly installed on the top of the support assembly, and a clamping component is fixedly installed between the outer walls of the two shock-absorbing components. The damping assembly includes: a guide rail, two dampers, and two third springs. The outer walls of the two dampers are fixedly connected to the inner wall of the guide rail. The outer walls of the two third springs are connected to the inner walls of the dampers. A slider is fixedly installed on one side of the outer wall of each of the two dampers. The inner wall of the guide rail is movably embedded between the outer walls of the two sliders. When the sliders move, they will compress the dampers and the third springs, thereby absorbing energy and achieving the purpose of damping. A cylindrical air chamber is fixedly installed on the top of the guide rail. A fourth spring is fixedly installed on the bottom of the inner wall of the cylindrical air chamber. A piston rod is fixedly installed on the top of the fourth spring. The outer wall of the piston rod is movably inserted into the interior of the cylindrical air chamber. The piston rod further improves the shock absorption effect of the device by compressing the air at the bottom and the fourth spring. Two connecting seats 1 are fixedly installed on the top of the guide rail. Connecting arms are movably sleeved on the outer walls of the two connecting seats 1. Connecting seats 2 are movably inserted between the inner walls of the two connecting arms. Connecting seats 3 are fixedly installed on the top of the piston rod. Connecting seats 3 are movably sleeved on the outer walls of the connecting seats 2. The output end of the cylindrical air chamber is fixedly connected to an air pipe. The input end of the cylindrical air chamber is fixedly connected to a one-way valve 1. When the phone and phone stand are vibrated by an external force, the connecting arms connected to them move through connecting seat two. The tops of the two connecting arms rotate and descend on the surface of connecting seat two. At this time, the bottom ends of the connecting arms begin to move outward, pushing connecting seat one to move synchronously. Connecting seat one, limited by the bottom slider, begins to move linearly and pushes the slider, compressing the damper connected to it. The damper absorbs kinetic energy by contracting and timely compresses the internal third spring, thereby further improving the shock absorption capacity of the device. When connecting seat two descends, it also pushes connecting seat three to move synchronously. At this time, connecting seat three drives the piston rod in the cylindrical air chamber. As the piston rod moves, it divides the cylindrical air chamber into two sealed spaces, upper and lower. When the piston rod descends, it compresses the fourth spring, increasing the top space and decreasing the air pressure, while decreasing the bottom space. The internal space, under pressure, is expelled through the air pipe. When the piston rod rises, the air pressure at the bottom decreases due to the reduced air volume, allowing outside air to enter the cylindrical air chamber through the one-way valve. The phone holder, through the synergistic action of the damping spring and air shock absorption, achieves multi-dimensional shock absorption optimization. The combination of these two elements forms a dual shock absorption barrier, which can filter complex vibrations from cycling, car riding, and other scenarios, improving the smoothness of shooting and image clarity, while also protecting precision components from impact damage and extending the device's lifespan.
[0006] Preferably, the support assembly includes a turntable, a support column is fixedly installed on the top of the turntable, a base is fixedly installed on the top of the support column, and the top of the base is fixedly connected to the bottom of two guide rails. The turntable can be manually rotated, which makes it convenient for users to adjust the angle of the mobile phone and brings convenience to users. The support column, as the main support, improves the stability of the structure.
[0007] Preferably, the clamping assembly includes a back plate, one side of the outer wall of the back plate is fixedly connected to the outer walls of the two connecting seats, the outer wall of the back plate has a movable hole, a heat sink is fixedly installed on one side of the outer wall of the back plate, the input end of the heat sink is fixedly connected to the output end of the two air pipes, one side of the outer wall of the heat sink is in contact with the mobile phone body, the air squeezed by the piston rod is transported into the heat sink, and the heat sink is kept at a low temperature by the continuous flow of air. Since the heat sink is in contact with the back plate of the mobile phone, it can quickly reduce the heat of the mobile phone during use, thereby avoiding the impact of high temperature on the performance of the mobile phone.
[0008] Preferably, the output end of the radiator is fixedly connected to a one-way valve two, two guide posts are fixedly installed between the inner surfaces of the movable hole, a bidirectional screw is movably inserted into the back plate, and two guide seats are threadedly connected to the outer surface of the bidirectional screw. The one-way valve two can promptly discharge the air after heat absorption, thereby facilitating the flow of air inside the radiator. After the user places the mobile phone body on the stand, the bidirectional screw needs to be rotated first. At this time, the thread on the surface of the bidirectional screw drives the guide seats. Under the guidance of the guide posts, the two guide seats move in a straight line and move closer to each other.
[0009] Preferably, the two guide posts are movably inserted between the outer walls of the two guide seats. Each of the two guide seats has a locking block fixedly installed on one side of its outer wall. When the guide seats move, the locking blocks will contact the mobile phone, thereby quickly fixing the mobile phone. This device can fix mobile phones of different sizes, greatly improving the adaptability of the bracket.
[0010] Preferably, a rubber pad is adhered to one side of the outer wall of each of the two clips, and the outer walls of the two rubber pads are in contact with the outer wall of the mobile phone body. The rubber pads can fit tightly with the mobile phone body, increasing the fixation of the clamp and preventing the mobile phone body from falling due to vibration or other reasons. In addition, the rubber pads have elasticity, which can further improve the shock absorption capability of the device.
[0011] A method for shockproofing a mobile phone holder includes the following steps: Step 1: After placing the phone on the stand, the user rotates the two-way lead screw. The threads on its surface drive the guide seats on both sides to move closer together along the guide post, simultaneously causing the locking block to clamp the phone. At this time, the rubber pad is in close contact with the back of the phone.
[0012] Step 2: When the bracket is subjected to external force vibration, the second connecting seat is compressed and drives the connecting arm to rotate and descend. Its bottom end expands outward and pushes the first connecting seat to move linearly along the slider limit direction, squeezing the damper to contract. The third spring inside the damper absorbs kinetic energy through elastic potential energy.
[0013] Step 3: Connector 2 descends and synchronously drives Connector 3 to move, causing the piston rod to press down in the cylindrical air chamber. At this time, the top space expands and the air pressure decreases, the bottom space is compressed and the gas is discharged through the air pipe. When the piston rod rebounds, external air is replenished through one-way valve 1, forming a dynamic air pressure balance.
[0014] Step 4: The air expelled by the piston rod is introduced into the heat sink. The continuous airflow carries away the heat from the back panel of the phone. In conjunction with the one-way valve 2 to expel hot air, a highly efficient heat dissipation cycle is formed, which can reduce the impact of high temperature on processor performance.
[0015] When the phone and stand are subjected to external vibration, the damper contracts to absorb kinetic energy and compresses the internal spring, effectively filtering and buffering some of the vibration energy. At the same time, the connecting seat pushes the piston rod to move in the cylindrical air chamber, and the internal air pressure change and air flow further offset the vibration effect. The two work together to not only filter high-frequency and low-frequency vibrations in complex scenarios such as cycling and car riding, greatly improving the smoothness of shooting and image clarity, but also effectively buffer and disperse the impact of vibration, protect the delicate internal components of the phone from impact damage, and extend the service life of the device. Attached Figure Description
[0016] Figure 1 This invention provides a perspective view of the main structure of a mobile phone holder anti-vibration device. Figure 2 This invention provides a top perspective view of the support component and the shock absorption component in a mobile phone holder anti-vibration device; Figure 3 This invention provides a disassembled schematic diagram of the shock-absorbing component in a mobile phone holder anti-vibration device; Figure 4 This invention provides a three-dimensional exploded view of the shock-absorbing component and the clamping component in a mobile phone holder anti-vibration device; Figure 5 This invention provides a three-dimensional schematic diagram of a clamping component in a mobile phone holder anti-vibration device; Figure 6 A sectional perspective view of the clamping component in a mobile phone holder anti-vibration device is provided for this invention; Figure 7 This is a partial structural schematic diagram of the present invention.
[0017] Legend: 1. Support Components; 101. Turntable; 102. Support Column; 1021-First Support Column, 1022-Second Support Column, 1023-Third Support Column, 1024-First Spring, 1025-Connecting Wire, 1026-Second Spring, 1027-Limiting Column, 103. Base; 2. Shock Absorption Components; 201. Guide Rail; 202. Damper; 203. Third Spring; 204. Slider; 205. Connecting Seat 1; 206. Connecting... 207. Relay arm; 208. Connecting seat 2; 209. Cylindrical air chamber; 210. Fourth spring; 211. Piston rod; 212. Connecting seat 3; 213. Air pipe; 214. One-way valve 1; 3. Clamping assembly; 301. Back plate; 302. Movable hole; 303. Heat sink; 304. Mobile phone body; 305. One-way valve 2; 306. Guide post; 307. Two-way lead screw; 308. Guide seat; 309. Locking block; 310. Rubber pad. Detailed Implementation
[0018] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described below in conjunction with the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0019] like Figure 2 As shown, this application discloses a mobile phone holder anti-vibration device, including a support component 1 and a bracket assembly connected to the support component 1. The bracket assembly is used to mount a mobile phone, and the support component 1 is used to fix the bracket assembly in a corresponding position on a car. Specifically, the support component 1 includes a turntable 101 (which is prior art) connected to the car. A support column 102 is fixedly installed on the top of the turntable 101, and a base 103 (which is prior art and is used to fix the mobile phone; it can be of various shapes) is fixedly installed on the top of the support column 102. The support column 102 disclosed in this application has a certain shock absorption effect. When the car vibrates violently, the support column 102 has a certain elasticity. More specifically, when the support column is subjected to contraction and expansion forces less than a certain value, the support column will not deform and can maintain the stability of the holder. When the support column is subjected to contraction and expansion forces greater than a certain value, the support column can take shape (the support column becomes longer or shorter), which can have a certain shock absorption effect and maintain the stability of the mobile phone.
[0020] To achieve the above effect, in one solution, such as Figure 7 As shown, the support column 102 includes a first support column 1021, a second support column 1022, and a third support column 1023.
[0021] The first support column 1021 is fixedly connected to the base 103 by means of bolts, welding, integral molding, etc., and the first support column 1021 and the base 103 are in a rigid connection state.
[0022] The second support column 1022 and the first support column 1021 are connected in a first elastic manner. This first elastic manner is set such that when the compressive force of the first support column 1021 on the second support column 1022 is less than a set first threshold, the first support column 1021 and the second support column 1022 remain stationary, so that the structure formed by the first support column 1021 and the second support column 1022 does not take shape. When the compressive force of the first support column 1021 on the second support column 1022 is greater than the set first threshold, the first support column 1021 and the second support column 1022 slide in opposite directions, taking shape and achieving a shock absorption effect. More specifically, as... Figure 7As shown, the first support column 1021 and the second support column 1022 are connected by a flexible connecting line 1025. A first spring 1024 is provided between the first support column 1021 and the second support column 1022. When the connecting line 1025 is taut, the first spring 1024 is compressed. Let the compression force be X. Ignoring gravity, when the compressive force of the first support column 1021 on the second support column 1022 is less than X, neither of them deforms. When the compressive force of the first support column 1021 on the second support column 1022 is greater than X, both of them deform. X is the first threshold. The first threshold is adjusted by adjusting the size of X. Specifically, the first threshold can be set by adjusting the length of the connecting line 1025, the parameters of the first spring 1024, etc.
[0023] like Figure 7 As shown, the third support column 1023 and the second support column 1022 are connected in a second elastic manner. The second elastic manner is set such that when the tension of the third support column 1023 on the second support column 1022 is less than a set second threshold, the third support column 1023 and the second support column 1022 remain stationary, and the length of the entire support column 102 is fixed. When the tension of the third support column 1023 on the second support column 1022 is greater than the set second threshold, the third support column 1023 and the second support column 1022 slide in opposite directions, and the entire support column 102 can extend.
[0024] To achieve the above functions, more specifically, a stretched second spring 1026 is provided between the third support column 1023 and the second support column 1022. The second support column 1022 is connected to a limiting post 1027, and the third support column 1023 has a groove. The end of the limiting post 1027 extends to the bottom of the groove, and the second spring 1026 is stretched. The preload force of the stretched second spring 1026 is set to Y. When the tensile force exerted on the third support column 1023 by the structure composed of the first support column 1021 and the second support column 1022 is less than Y, no stretched shape is generated between the second support column 1022 and the third support column 1023, thus stabilizing the phone holder. When the tensile force exerted on the third support column 1023 by the structure composed of the first support column 1021 and the second support column 1022 is greater than Y, a stretched shape is generated between the second support column 1022 and the third support column 1023, providing elasticity and a shock-absorbing effect. Therefore, the second threshold value Y can be adjusted by adjusting the parameters of the second spring 1026 and the length of the limiting post 1027 to meet actual needs.
[0025] Most existing phone support columns do not deform and cannot absorb shocks. When a car is moving, the phone vibrates frequently. Looking at the phone can easily damage the eyes and cause motion sickness; additionally, the phone is prone to falling and being damaged. If the support column were made elastic, the vibration would be even greater. The support column designed in this application can keep the phone stable during normal driving and has a shock-absorbing effect during severe vibrations. More specifically, when the car goes over a bump in the road, the support column shortens (by a very small amount) to absorb shocks; when the car goes over a depression in the road, the support column extends (by a very small amount) to absorb shocks.
[0026] In a specific embodiment, the mobile phone holder anti-vibration device further includes two shock-absorbing components 2, and a clamping component 3 is fixedly installed between the outer walls of the two shock-absorbing components 2. In one specific embodiment, the damping component 2 includes: a guide rail 201, two dampers 202, and two third springs 203. The outer walls of the two dampers 202 are fixedly connected to the inner wall of the guide rail 201. The outer walls of the two third springs 203 are connected to the inner walls of the dampers 202. A slider 204 is fixedly installed on one side of the outer wall of each of the two dampers 202. The inner wall of the guide rail 201 is movably embedded between the outer walls of the two sliders 204. When the sliders 204 move, they will compress the dampers 202 and the third springs 203, thereby absorbing energy and achieving the purpose of damping. A cylindrical air chamber 208 is fixedly installed on the top of the guide rail 201. A fourth spring 209 is fixedly installed on the bottom of the inner wall of the cylindrical air chamber 208. A piston rod 210 is fixedly installed on the top of the fourth spring 209. The outer wall of the piston rod 210 is movably inserted into the interior of the cylindrical air chamber 208. The piston rod 210 further improves the shock absorption effect of the device by compressing the bottom air and the fourth spring 209. Two connecting seats 205 are fixedly installed on the top of the guide rail 201. Connecting arms 206 are movably sleeved on the outer walls of the two connecting seats 205. Connecting seat 207 is movably inserted between the inner walls of the two connecting arms 206. Connecting seat 3 211 is fixedly installed on the top of the piston rod 210. Connecting seat 3 211 is movably sleeved on the outer wall of connecting seat 207. The output end of the cylindrical air chamber 208 is fixedly connected to the air pipe 212. The input end of the cylindrical air chamber 208 is fixedly connected to the one-way valve 213. When the phone and phone stand are vibrated by an external force, the connecting arm 206 connected to it will move through the connecting seat 207. The tops of the two connecting arms 206 rotate and descend on the surface of the connecting seat 207. At this time, the bottom of the connecting arm 206 will start to move outward, pushing the connecting seat 1 205 connected to it to move synchronously. Under the limit of the bottom slider 204, the connecting seat 1 205 starts to move linearly and pushes the slider 204, squeezing the damper 202 connected to it. The damper 202 can absorb kinetic energy by contracting and squeeze the internal third spring 203 in time, thereby further improving the shock absorption capacity of the device. When the connecting seat 207 descends, it will also push the connecting seat 3 211 to move synchronously. At this time, the connecting seat 3 211 drives the piston. The piston rod 210 moves inside the cylindrical air chamber 208, dividing the cylindrical air chamber 208 into upper and lower sealed spaces. When the piston rod 210 descends, it compresses the fourth spring 209, increasing the top space and reducing the air pressure, while decreasing the bottom space. The internal space is under pressure and is discharged through the air pipe 212. When the piston rod 210 rises, the air pressure at the bottom decreases due to the reduced air volume, and outside air enters the cylindrical air chamber 208 through the one-way valve 213. The phone holder achieves multi-dimensional shock absorption optimization through the synergistic action of the damping spring and air shock absorption. The combination of the two forms a double shock absorption barrier, which can filter complex vibrations in scenarios such as cycling and vehicle use, improving the smoothness of shooting and image clarity, while also protecting precision components from impact damage and extending the device's lifespan.
[0027] like Figure 2 As shown, the support assembly 1 includes a turntable 101, a support column 102 is fixedly installed on the top of the turntable 101, a base 103 is fixedly installed on the top of the support column 102, and the top of the base 103 is fixedly connected to the bottom of the two guide rails 201. The turntable 101 can be manually rotated, which makes it convenient for users to adjust the angle of the mobile phone and brings convenience to users. The support column 102 serves as the main support, which improves the stability of the structure.
[0028] like Figure 5 As shown, the clamping assembly 3 includes a back plate 301. One side of the outer wall of the back plate 301 is fixedly connected to the outer walls of the two connecting seats 207. The outer wall of the back plate 301 has a movable hole 302. A heat sink 303 is fixedly installed on one side of the outer wall of the back plate 301. The input end of the heat sink 303 is fixedly connected to the output end of the two air pipes 212. One side of the outer wall of the heat sink 303 is in contact with the mobile phone body 304. The air squeezed out by the piston rod 210 is transported into the heat sink 303. Through the continuous flow of air, the heat sink 303 is kept at a low temperature. Since the heat sink 303 is in contact with the back of the mobile phone, it can quickly reduce the heat of the mobile phone during use, thereby avoiding the impact of high temperature on the performance of the mobile phone.
[0029] like Figures 5-6 As shown, the output end of the radiator 303 is fixedly connected to a one-way valve 305. Two guide posts 306 are fixedly installed between the inner surfaces of the movable hole 302. A bidirectional screw 307 is movably inserted into the back plate 301. Two guide seats 308 are threadedly connected to the outer surface of the bidirectional screw 307. The one-way valve 305 can promptly discharge the air after heat absorption, thus facilitating the flow of air inside the radiator 303. After the user places the mobile phone body 304 on the stand, the bidirectional screw 307 needs to be rotated first. At this time, the thread on the surface of the bidirectional screw 307 drives the guide seats 308. Under the guidance of the guide posts 306, the two guide seats 308 move in a straight line and move closer to each other.
[0030] like Figure 4 and Figure 6 As shown, two guide posts 306 are movably inserted between the outer walls of the two guide seats 308. Each guide seat 308 has a locking block 309 fixedly installed on one side of its outer wall. When the guide seat 308 moves, it will cause the locking block 309 to contact the mobile phone, thereby quickly fixing the mobile phone. This device can fix mobile phones of different sizes, greatly improving the adaptability of the bracket.
[0031] like Figures 4-6 As shown, rubber pads 310 are adhered to one side of the outer wall of each of the two clips 309. The outer walls of the two rubber pads 310 are in contact with the outer wall of the mobile phone body 304. The rubber pads 310 can fit tightly against the mobile phone body 304, increasing the stability of the clamping and preventing the mobile phone body 304 from falling due to vibration or other reasons. In addition, the rubber pads 310 have elasticity, which can further improve the shock absorption capability of the device.
[0032] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the protection scope of the present invention.
Claims
1. A mobile phone holder anti-vibration device, characterized in that, The device includes a support assembly (1) and a bracket assembly connected to the support assembly (1). The bracket assembly is used to mount a mobile phone. The support assembly (1) includes a turntable (101). A support column (102) is fixedly mounted on the top of the turntable (101). A base (103) is fixedly mounted on the top of the support column (102). The support column (102) includes: The first support column (1021) is fixedly connected to the base (103); The second support column (1022) is connected to the first support column (1021) in a first elastic manner. The first elastic manner is set such that when the compressive force of the first support column (1021) on the second support column (1022) is less than a set first threshold, the first support column (1021) and the second support column (1022) remain stationary, and when the compressive force of the first support column (1021) on the second support column (1022) is greater than the set first threshold, the first support column (1021) and the second support column (1022) slide in opposite directions. The third support column (1023) is connected to the second support column (1022) in a second elastic manner. The second elastic manner is set such that when the tension of the third support column (1023) on the second support column (1022) is less than a set second threshold, the third support column (1023) and the second support column (1022) remain stationary, and when the tension of the third support column (1023) on the second support column (1022) is greater than the set second threshold, the third support column (1023) and the second support column (1022) slide in opposite directions.
2. The anti-vibration device for a mobile phone holder according to claim 1, characterized in that, The first support column (1021) and the second support column (1022) are connected by a flexible connecting line (1025). A first spring (1024) is provided between the first support column (1021) and the second support column (1022). When the connecting line (1025) is in a taut state, the first spring (1024) is compressed.
3. The anti-vibration device for a mobile phone holder according to claim 2, characterized in that, A stretched second spring (1026) is provided between the third support column (1023) and the second support column (1022). The second support column (1022) is connected to a limiting column (1027). The third support column (1023) is provided with a groove. The end of the limiting column (1027) extends to the bottom of the groove. The second spring (1026) is stretched.
4. The anti-vibration device for a mobile phone holder according to any one of claims 1-3, characterized in that, Two shock-absorbing components (2) are fixedly installed on the top of the support component (1), and a clamping component (3) is fixedly installed between the outer walls of the two shock-absorbing components (2). The shock-absorbing component (2) includes: The system comprises a guide rail (201), two dampers (202), and two third springs (203). The outer walls of the two dampers (202) are fixedly connected to the inner wall of the guide rail (201). The outer walls of the two third springs (203) are connected to the inner walls of the dampers (202). A slider (204) is fixedly installed on one side of the outer wall of each of the two dampers (202). The inner wall of the guide rail (201) is movably embedded between the outer walls of the two sliders (204). When the sliders (204) move, they will squeeze the dampers (202) and the third springs (203), thereby absorbing energy and achieving the purpose of shock absorption. A cylindrical air chamber (208) is fixedly installed on the top of the guide rail (201). A fourth spring (209) is fixedly installed on the bottom of the inner wall of the cylindrical air chamber (208). A piston rod (210) is fixedly installed on the top of the fourth spring (209). The outer wall of the piston rod (210) is movably inserted into the interior of the cylindrical air chamber (208). The piston rod (210) compresses the bottom air and the fourth spring (209) to improve the shock absorption effect of the device.
5. The anti-vibration device for a mobile phone holder according to claim 4, characterized in that: Two connecting seats (205) are fixedly installed on the top of the guide rail (201). Connecting arms (206) are movably sleeved on the outer walls of the two connecting seats (205). Connecting seats (207) are movably inserted between the inner walls of the two connecting arms (206). Connecting seats (211) are fixedly installed on the top of the piston rod (210). Connecting seats (211) are movably sleeved on the outer walls of the connecting seats (207). The output end of the cylindrical air chamber (208) is fixedly connected to an air pipe (212). The input end of the cylindrical air chamber (208) is fixedly connected to a one-way valve (213).
6. The anti-vibration device for a mobile phone holder according to claim 5, characterized in that: The top of the base (103) is fixedly connected to the bottom of the two guide rails (201).
7. A mobile phone holder anti-vibration device according to claim 6, characterized in that: The clamping assembly (3) includes a back plate (301), one side of the outer wall of the back plate (301) is fixedly connected to the outer walls of the two connecting seats (207), the outer wall of the back plate (301) is provided with a movable hole (302), a heat sink (303) is fixedly installed on one side of the outer wall of the back plate (301), the input end of the heat sink (303) is fixedly connected to the output end of the two air pipes (212), and the outer wall of the heat sink (303) contacts the mobile phone body (304).
8. The anti-vibration device for a mobile phone holder according to claim 7, characterized in that: The output end of the radiator (303) is fixedly connected to a one-way valve (305), and two guide posts (306) are fixedly installed between the inner walls of the movable hole (302). A two-way screw (307) is movably inserted into the back plate (301), and two guide seats (308) are threadedly connected to the outer wall of the two-way screw (307).
9. A mobile phone holder anti-vibration device according to claim 8, characterized in that: The two guide posts (306) are movably inserted between the outer walls of the two guide seats (308). Each of the two guide seats (308) has a locking block (309) fixedly installed on one side of its outer wall. Each of the two locking blocks (309) has a rubber pad (310) adhered to one side of its outer wall. The outer walls of the two rubber pads (310) are in contact with the outer wall of the mobile phone body (304).
10. A vibration damping method for a mobile phone holder vibration damping device, using the mobile phone holder vibration damping device according to claim 9.