An integrated planting handset
By integrating the camera body and LED light ring into the all-in-one planting mobile phone, and setting a ring-shaped light-blocking strip on the light-transmitting glass plate, the problems of unstable operation and insufficient light are solved, and high-precision planting hole drilling is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHENZHEN CALVIN TECH CO LTD
- Filing Date
- 2026-04-03
- Publication Date
- 2026-06-02
AI Technical Summary
In existing technologies, integrated implant handpieces are unstable to operate in the small space of the oral cavity, insufficient light causes blurry images, and uneven weight distribution affects operating accuracy.
An integrated planting phone was designed, which integrates the camera body and LED light ring. The weight distribution is optimized by using a clamping protrusion and a bearing plane, and a ring-shaped light-blocking strip is set on the light-transmitting glass plate to improve light conditions and ensure clear image acquisition.
It enables stable operation and clear image acquisition in the confined space of the oral cavity, improving the accuracy and ease of operation of implant hole drilling.
Smart Images

Figure CN122123799A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of dental implant equipment technology, and specifically to an implant handpiece that integrates drilling and real-time navigation. Background Technology
[0002] The purpose of an implant handpiece is to drill a specific hole in the alveolar bone at the site of the missing tooth, so that the implant can be inserted and a crown placed to treat the tooth loss. Drilling the implant hole requires extremely high precision and necessitates a comprehensive analysis of the patient's oral condition, taking into account the type of implant and crown, to drill the hole at a specific location, angle, and depth. Clinically, an optical positioning device is generally used to confirm the real-time relative position of the implant handpiece and the patient's oral cavity for implant navigation, maximizing implant accuracy.
[0003] Current optical positioning devices are independent of the implantation handpiece. Before surgery, operators need to configure the device accordingly and require an external binocular navigation system for real-time navigation during the procedure. In contrast, an integrated implantation handpiece integrates an image sensor into a standard implantation handpiece, enabling real-time navigation during the procedure without the need for an external binocular navigation system.
[0004] Structurally, an integrated implantation handpiece requires the integration of an implantation handpiece and an image data acquisition device. Compared to ordinary implantation handpieces, its structural design and weight distribution are different, making it difficult for operators to control it precisely during use. In addition, considering the relatively narrow human oral cavity, how to provide sufficient light during navigation to acquire clear real-time image data is also a technical problem that the industry urgently needs to solve. Summary of the Invention
[0005] The technical problem to be solved by the present invention is to provide an integrated planting mobile phone that addresses the above-mentioned defects of the prior art. The structure of the mobile phone body and the camera body is optimized to improve the ambient light conditions and overcome the operation problems caused by uneven weight distribution.
[0006] The technical solution adopted by this invention to solve the technical problem is as follows: An integrated planting mobile phone, comprising: The mobile phone body is a circular cylindrical structure, and a drill bit is provided at the front end of the mobile phone body; A connecting collar, which is a circular ring structure, is sleeved and fixed onto the mobile phone body; A clamping protrusion strip is a long strip structure. The clamping protrusion strip is fixedly disposed on the connecting collar. The clamping protrusion strip extends towards the front of the mobile phone body. A first clamping surface and a second clamping surface are formed on the clamping protrusion strip. The first clamping surface and the second clamping surface are disposed opposite to each other. An arc-shaped transition ridge is formed between the first clamping surface and the second clamping surface. A bearing plane portion is fixedly disposed on the connecting collar, and the bearing plane portion extends toward the rear of the mobile phone body; The camera body is fixedly mounted on the supporting plane. An annular support portion is arranged around the camera body. A protective shell is fixedly mounted on the camera body, and a light-emitting window is opened on the protective shell. An annular PCB board is arranged on the annular support portion, and a supplementary light ring is arranged on the annular PCB board. The supplementary light ring includes multiple LED beads. The photosensitive component on the camera body and the LED beads are all facing the light-emitting window.
[0007] Compared with the prior art, the beneficial effects of this technical solution are: a camera body is added to the bearing plane of the mobile phone body, and multiple LED beads are set around the camera body to improve the ambient light conditions, eliminating the trouble of setting up an additional light source for supplementary lighting; furthermore, a clamping protrusion is provided on the mobile phone body to provide a first clamping surface and a second clamping surface for bearing force, which can overcome the operation problems caused by uneven weight distribution and facilitate stable control.
[0008] Furthermore, a light-transmitting glass plate is provided on the light-emitting window, and an annular light-shielding strip is formed on the light-transmitting glass plate. The annular light-shielding strip is a black annular area formed on the light-transmitting glass plate. The supplementary light ring and the annular light-shielding strip are arranged concentrically, and the radius of the supplementary light ring is larger than the radius of the annular light-shielding strip.
[0009] The advantages of adopting the above solution are: the light-transmitting glass plate can play a basic protective role, and together with the protective shell, it can effectively prevent external damage to the internal camera body and other fragile components; in addition, the ring-shaped light-shielding strip formed on the light-transmitting glass plate, which is closer to the center of the camera body than the fill light, can prevent the emitted light at too large an angle from entering the camera body after multiple refractions, thus avoiding image data distortion and effectively ensuring image quality.
[0010] Furthermore, the protective housing is provided with a glass fixing inner ring platform and a glass sealing outer ring platform. The glass fixing inner ring platform and the glass sealing outer ring platform are formed circumferentially outside the light-emitting window. The glass fixing inner ring platform and the glass sealing outer ring platform are concentrically arranged and the radius of the glass fixing inner ring platform is smaller than the radius of the glass sealing outer ring platform. The light-transmitting glass panel is bonded and fixed to the inner glass fixing ring platform with structural adhesive. An outer sealing ring is also formed between the protective shell, the light-transmitting glass panel, and the outer glass sealing ring platform. The outer sealing ring is filled with sealant, or: The protective housing includes a side shell and a top annular plate. A gasket fixing groove is provided on the top annular plate, and a sealing gasket is provided in the gasket fixing groove. A protective cover is provided on the protective housing. The protective cover and the protective housing are connected to each other by a threaded connection. One side of the light-transmitting glass plate is abutted and fixed to the top annular plate and pressed against the sealing gasket, while the other side of the light-transmitting glass plate is abutted and fixed to the protective cover.
[0011] The advantages of the above scheme are as follows: the transparent glass plate is sealed and fixed by the inner glass fixing ring platform and the outer glass sealing ring platform. On the one hand, the transparent glass plate is bonded and fixed to the inner glass fixing ring platform by structural adhesive. On the other hand, sealant is injected into the outer sealing ring formed between the protective shell, the transparent glass plate and the outer glass sealing ring platform, thereby effectively ensuring the sealing performance. The sealing gasket is pressed onto the transparent glass plate by the threaded fit between the protective cover and the protective shell, thereby sealing the device. It has the advantages of simple structure and convenient assembly.
[0012] Furthermore, the inner ring platform of the glass fixing is provided with multiple light emission holes, and the LED beads are respectively arranged below the light emission holes.
[0013] The beneficial effects of adopting the above solution are: multiple light emission holes are opened on the inner ring platform of the glass fixing, and LED beads are set one by one below the light emission holes, which makes the light emission direction of the LED beads stronger and prevents the light emitted by the LED beads from entering the camera body and thus affecting the acquisition of image and video data.
[0014] Furthermore, the annular support portion includes a light-shielding sleeve, a support ring, and a connecting sleeve, wherein the light-shielding sleeve, the support ring, and the connecting sleeve are concentrically arranged. The radius of the light-shielding sleeve is smaller than the radius of the connecting sleeve. The light-shielding sleeve is perpendicularly disposed on the inner edge of one side of the supporting ring, and the connecting sleeve is perpendicularly disposed on the outer edge of the other side of the supporting ring. The height of the light-shielding sleeve is greater than the height of the LED lamp bead. The annular support portion is sleeved onto the camera body via the connecting sleeve; the camera body abuts against the support ring on the side near the connecting sleeve, and the camera body and the support ring are fixed together by adhesive; the annular PCB board is disposed on the support ring on the side near the light-shielding sleeve, and heat-dissipating silicone is disposed between the annular PCB board and the support ring.
[0015] The beneficial effects of adopting the above solution are as follows: by forming an annular support part through the light-shielding sleeve, the bearing ring and the connecting sleeve, on the one hand, the size difference between the light-shielding sleeve and the LED lamp bead is used to prevent the light used for supplementary lighting from entering the camera body; on the other hand, the bearing ring and the connecting sleeve can better fix the annular support part to the camera body, making the structure of this device more stable.
[0016] Furthermore, both the first clamping surface and the second clamping surface are provided with clamping surface recesses.
[0017] The beneficial effect of adopting the above solution is that by providing a recessed clamping surface, a position for placing fingers is provided when clamping and fixing the device, which helps to improve operational stability.
[0018] Furthermore, the clamping protrusion has an inwardly recessed portion on the side facing the phone body, and the clamping protrusion is fixedly connected to the phone body by structural adhesive.
[0019] The advantages of the above solution are: the clamping protrusion is fixedly set on the connecting collar, and the protrusion recess is formed inward on the side facing the mobile phone body, which can reduce the weight of the device; and the clamping protrusion is then bonded to the mobile phone body with structural adhesive, which can improve the structural integrity and stability of the device.
[0020] Furthermore, the mobile phone body is also provided with a motor and a binocular camera assembly. The binocular camera assembly is provided with two camera bodies. The motor is connected to the mobile phone body and provides driving force for the drill bit. The motor is located below the bearing plane portion. The binocular camera assembly is fixedly mounted on the bearing plane portion. The lower end face of the binocular camera assembly is provided with a first angle adjustment protrusion and a second angle adjustment protrusion, the first angle adjustment protrusion and the second angle adjustment protrusion being respectively disposed at the front end and the rear end of the lower end face of the binocular camera assembly; The upper end surface of the bearing plane portion is provided with a first cross-shaped recess and a second cross-shaped recess, which are respectively located at the front end and the rear end of the upper end surface of the bearing plane portion. A first stainless steel insert is provided in the first cross recess, and a second stainless steel insert is provided in the second cross recess. The first stainless steel insert is provided with a plurality of first angle adjustment recesses, and the second stainless steel insert is provided with a plurality of second angle adjustment recesses. The mobile phone body and the binocular camera assembly adjust their angles through the nested cooperation of the first angle adjustment protrusion and the first angle adjustment recess, and the second angle adjustment protrusion and the second angle adjustment recess.
[0021] The advantages of adopting the above solution are: the motor and the binocular camera assembly are respectively positioned below and above the bearing plane, making the center of gravity distribution of the device more reasonable. The inclusion of a first angle adjustment protrusion and a second angle adjustment protrusion, along with the first and second stainless steel inserts on the first and second cross recesses, ensures a more secure connection between the binocular camera assembly and the mobile phone body while maintaining the angle adjustment function.
[0022] Furthermore, the connecting collar, the clamping protrusion, and the bearing plane are integrally formed aluminum alloy structures.
[0023] The beneficial effect of adopting the above scheme is that it reduces the overall weight of the device while ensuring structural strength.
[0024] Furthermore, the mobile phone body is provided with multiple body recesses.
[0025] The advantage of adopting the above solution is that it is easier for operators to hold. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the integrated planting mobile phone of the present invention.
[0027] Figure 2 This is an exploded view of the integrated planting mobile phone of the present invention.
[0028] Figure 3 This is a schematic diagram of the overall protective casing in the integrated planting mobile phone of the present invention.
[0029] Figure 4 This is an exploded view of the protective casing in the integrated planting mobile phone of the present invention.
[0030] Figure 5 This is a first schematic diagram of the annular support portion in the integrated planting mobile phone of the present invention.
[0031] Figure 6 This is a second schematic diagram of the annular support portion in the integrated planting mobile phone of the present invention.
[0032] Figure 7 This is a schematic diagram of the bearing plane portion in the integrated planting mobile phone of the present invention.
[0033] Figure 8 This is a schematic diagram showing the combination of the protective shell and the protective cover in the integrated planting mobile phone of the present invention.
[0034] The components represented by each number in the diagram are listed below: 1. Phone body; 2. Connecting collar; 3. Clamping protrusion; 4. Supporting flat part; 5. Camera body; Drill bit 101, body recess 102; First clamping surface 301, second clamping surface 302; First cross recess 401, second cross recess 402, first stainless steel insert 403, second stainless steel insert 404.
[0035] 501 ring-shaped support, 502 protective housing, 503 light-emitting window, 504 ring-shaped PCB board, 505 LED lamp beads, 506 light-transmitting glass plate, 507 inner ring platform for fixing glass, 508 outer ring platform for sealing glass, 509 light-emitting through hole, 510 light-shielding sleeve, 511 support ring, 512 connecting sleeve. Side shell 5021, top annular plate 5022, gasket fixing groove 5023, sealing gasket 5024, protective cover 5025. Detailed Implementation
[0036] To make the objectives, technical solutions, and advantages of this invention clearer and more explicit, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the invention and are not intended to limit the invention.
[0037] In the description of this invention, it should be understood that the terms "center," "upper," "lower," "front," "rear," "left," and "right," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0038] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. When a component is referred to as being "fixed to" or "set on" another element, it can be directly on the other component or there may be an intervening component. When a component is considered to be "connected" to another element, it can be directly connected to the other element or there may be an intervening component. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0039] Dental implant technology is continuously evolving towards digitalization and precision, placing higher demands on the minimally invasive nature and success rate of implant surgeries in clinical practice. Traditional implant surgery heavily relies on the surgeon's personal experience and tactile sense. However, in areas with complex jawbone structures and adjacent to important nerves and blood vessels, even experienced surgeons struggle to guarantee absolute precision in the implantation angle. Therefore, the introduction of navigation technology has become crucial in solving this problem. However, while the widely used independent optical positioning and navigation schemes theoretically offer high positioning accuracy, they present numerous inconveniences in actual clinical operation.
[0040] Specifically, traditional navigation systems typically consist of a separate binocular navigator, a tracker, and accompanying software. Preoperatively, surgeons need to perform a series of tedious preparations, including fitting and securing a specific positioning bracket inside the patient's mouth, and attaching the tracker to the implant handpiece handle. This process not only prolongs surgical preparation time and increases patient discomfort but also requires operators to possess specialized equipment adjustment skills. More importantly, throughout the entire surgical procedure, the binocular navigator must maintain unobstructed tracking of the implant handpiece and the patient's oral tracker. If the surgeon's hands, the patient's head, or surrounding equipment obstruct the infrared light's propagation path, the navigation image will be lost, leading to surgical interruption. Furthermore, traditional navigation devices are bulky and space-consuming, often requiring a dedicated implantology lab, limiting their flexible application in various treatment scenarios.
[0041] To overcome these shortcomings, the industry has begun exploring integrated designs that highly integrate image sensing components with implant handpieces. This integrated handpiece, by miniaturizing the optical sensor and integrating it into the handpiece head, theoretically enables direct "eye-hand" positioning, avoiding the visual obstruction issues of external navigation devices and eliminating the need for cumbersome preoperative equipment calibration. However, this integrated design also brings new technical challenges. The primary issue lies in the increased difficulty of operation and control: due to the integration of image acquisition and potential lighting modules, the overall weight, volume, and center of gravity distribution of the implant handpiece change, leading to decreased flexibility and stability for the surgeon during handheld operation. Prolonged surgeries can easily cause fatigue, thus affecting drilling accuracy. Secondly, the oral cavity, as a deep, narrow environment with limited visibility, presents a core challenge in posterior tooth implantation: ensuring that the built-in light source provides uniform, shadowless, and appropriately bright illumination to avoid image blurring and loss of feature points due to shadows or insufficient exposure, thereby guaranteeing the stable operation of the navigation algorithm. This has become a key obstacle to the clinical practicality of integrated implant handpieces.
[0042] Therefore, the urgent technical problem to be solved is: how to optimize the integrated image acquisition and lighting system while ensuring the lightweight and operational flexibility of the integrated implant handpiece, so as to overcome the limitations of lighting and field of vision caused by the small oral cavity space, and ensure that clear and stable intraoral image data can be acquired in real time in various tooth positions, thereby achieving high-precision intraoperative real-time navigation.
[0043] like Figure 1 and Figure 2 As shown, in order to solve the above problems, the present invention provides an integrated planting mobile phone, including a mobile phone body 1, a connecting collar 2, a clamping protrusion 3, a bearing plane part 4, and a camera body 5, wherein the mobile phone body 1 is the first part, the connecting collar 2, the clamping protrusion 3, and the bearing plane part 4 are the second part, and the camera body 5 is the third part.
[0044] In the first part, the mobile phone body 1 is a circular cylindrical structure, and a drill bit 101 is provided at the front end of the mobile phone body 1. The mobile phone body 1 in the first part is the basic component for realizing the drilling operation of dental implants.
[0045] In the second part: the connecting collar 2 is a circular structure, and the connecting collar 2 is sleeved and fixed to the mobile phone body 1; the clamping protrusion 3 is a long strip structure, and the clamping protrusion 3 is fixedly disposed on the connecting collar 2, the clamping protrusion 3 extends towards the front of the mobile phone body 1, and a first clamping surface 301 and a second clamping surface 302 are formed on the clamping protrusion 3. The first clamping surface 301 and the second clamping surface 302 are arranged opposite to each other, and an arc-shaped transition ridge is formed between the first clamping surface 301 and the second clamping surface 302; the bearing plane part 4 is fixedly disposed on the connecting collar 2, and the bearing plane part 4 extends towards the rear of the mobile phone body 1. In the second part, the connecting collar 2 serves as a transition connection. Both the clamping protrusion 3 and the bearing plane part 4 are disposed on the mobile phone body 1 through the connecting collar 2. The clamping protrusion 3 is used to provide a clamping point to improve operational stability, and the bearing plane part 4 is used to fix the camera body 5.
[0046] In the third part, the camera body 5 is fixedly mounted on the supporting plane 4. An annular supporting part 501 is arranged around the camera body 5. A protective shell 502 is fixedly mounted on the outside of the camera body 5. A light-emitting window 503 is opened on the protective shell 502. An annular PCB board 504 is arranged on the annular supporting part 501. A supplementary light ring is arranged on the annular PCB board 504. The supplementary light ring includes multiple LED beads 505. The photosensitive component on the camera body 5 and the LED beads 505 are both facing the light-emitting window 503.
[0047] On one hand, this technical solution incorporates a camera body 5 on the mobile phone body 1. Because the mobile phone body 1 and the camera body 5 always face the same direction, unobstructed tracking can be perfectly achieved. During the drilling of the implantation hole, the camera body 5 captures the real-time relative position between the implantation mobile phone and the patient's oral cavity for real-time navigation. This technical solution also creatively incorporates a supplementary lighting ring composed of multiple LED beads 505 outside the camera body 5. The LED beads 505 face the same direction as the camera body 5, facilitating improved ambient lighting conditions during operation. Compared with existing technologies, this solution eliminates the need for additional binocular navigation equipment and supplementary lighting equipment, significantly enhancing operational convenience through its scientific structural design.
[0048] On the other hand, in order to overcome the operation problems caused by uneven weight distribution of the planting mobile phone, a clamping protrusion 3 is provided on the mobile phone body 1 to provide a first clamping surface 301 and a second clamping surface 302 for bearing force. Even if the center of gravity of the device tilts left and right, the operator only needs to use his / her fingers to press against the first clamping surface 301 and the second clamping surface 302 to fix the device. This can overcome the operation problems caused by uneven weight distribution and make it easy to control stably.
[0049] Preferably, a light-transmitting glass plate 506 is provided on the light-emitting window 503, and an annular light-shielding band is formed on the light-transmitting glass plate 506. The annular light-shielding band is a black annular area formed on the light-transmitting glass plate 506. The supplementary light ring and the annular light-shielding band are arranged concentrically, and the radius of the supplementary light ring is larger than the radius of the annular light-shielding band.
[0050] In this technical solution, multiple LED beads 505 are disposed around the camera body 5. More specifically, the LED beads 505 are arranged around the camera body 5. The camera body 5 acquires image and video data based on light passing through the light-transmitting glass plate 506, and the light emitted by the LED beads 505 must exit through the light-transmitting glass plate 506. This technical solution creatively forms an annular light-shielding strip on the light-transmitting glass plate 506, and makes the radius of the supplementary light ring larger than the radius of the annular light-shielding strip. That is, with the camera body 5 as the center, the supplementary light ring is further outward than the annular light-shielding strip. Part of the light emitted by the LED beads 505 towards the camera body 5 can be absorbed by the annular light-shielding strip: the light emitted by the LED beads 505 at an angle towards the camera body 5 will hit the annular light-shielding strip and be absorbed by the annular light-shielding strip without being reflected again, thereby preventing this part of the light from affecting data acquisition.
[0051] Based on the above structure, the light-transmitting glass plate 506 can provide basic protection, and together with the protective housing 502, it can effectively prevent external damage to the internal camera body 5 and other fragile components. In addition, an annular light-shielding strip is formed on the light-transmitting glass plate 506, and the annular light-shielding strip is closer to the center of the camera body 5 than the supplementary light. This can prevent light rays emitted at excessively large angles from entering the camera body 5 after multiple refractions, thus avoiding image data distortion and effectively ensuring image quality.
[0052] like Figure 3 and Figure 4 As shown, the protective housing 502 is provided with a glass fixing inner ring platform 507 and a glass sealing outer ring platform 508. The glass fixing inner ring platform 507 and the glass sealing outer ring platform 508 are formed circumferentially outside the light-emitting window 503. The glass fixing inner ring platform 507 and the glass sealing outer ring platform 508 are concentrically arranged, and the radius of the glass fixing inner ring platform 507 is smaller than the radius of the glass sealing outer ring platform 508.
[0053] The light-transmitting glass plate 506 is bonded and fixed to the inner glass fixing ring platform 507 by structural adhesive. An outer sealing ring is also formed between the protective shell 502, the light-transmitting glass plate 506 and the outer glass sealing ring platform 508, and the outer sealing ring is filled with sealant.
[0054] Based on the above structure, the light-transmitting glass plate 506 is sealed and fixed by the inner glass fixing ring 507 and the outer glass sealing ring 508. On the one hand, the light-transmitting glass plate 506 is bonded and fixed to the inner glass fixing ring 507 by structural adhesive. On the other hand, sealant is injected into the outer sealing ring formed between the protective shell 502, the light-transmitting glass plate 506 and the outer glass sealing ring 508, thereby effectively ensuring the sealing performance.
[0055] like Figure 8 As shown, in another embodiment, the protective housing 502 includes a side housing 5021 and a top annular plate 5022. A gasket fixing groove 5023 is provided on the top annular plate, and a sealing gasket 5024 is provided in the gasket fixing groove. A protective cover 5025 is provided on the protective housing. The protective cover and the protective housing are connected to each other by a threaded connection. One side of the light-transmitting glass plate is abutted and fixed to the top annular plate and pressed against the sealing gasket. The other side of the light-transmitting glass plate 506 is abutted and fixed to the protective cover.
[0056] Based on the above structure, the sealing gasket is pressed against the light-transmitting glass plate by the threaded fit between the protective cover and the protective shell, thereby sealing the device. It has the advantages of simple structure and convenient assembly.
[0057] like Figure 3 and Figure 4 As shown, the inner ring platform 507 of the glass fixing is provided with a plurality of light emission through holes 509, and the LED beads 505 are respectively arranged below the light emission through holes 509.
[0058] Based on the above structure, multiple light emission holes 509 are provided on the inner ring platform 507 of the glass fixing. During assembly, through structural cooperation, the LED beads 505 are arranged one by one below the light emission holes 509. The light emission holes 509 block the outer light and only retain the middle light, making the light emission direction of the LED beads 505 stronger. When the emission angle of the beam is greater than a certain angle, it will be blocked by the light emission holes 509, preventing the light emitted by the LED beads 505 from entering the camera body 5 and thus affecting the acquisition of image and video data.
[0059] like Figure 5 and Figure 6As shown, the annular support portion 501 includes a light-shielding sleeve 510, a support ring 511, and a connecting sleeve 512, wherein the light-shielding sleeve 510, the support ring 511, and the connecting sleeve 512 are arranged concentrically with each other.
[0060] The radius of the light-shielding sleeve 510 is smaller than the radius of the connecting sleeve 512. The light-shielding sleeve 510 is vertically disposed on the inner edge of one side of the bearing ring 511, and the connecting sleeve 512 is vertically disposed on the outer edge of the other side of the bearing ring 511.
[0061] The annular support portion 501 is sleeved onto the camera body 5 via the connecting sleeve 512; the camera body 5 abuts against the support ring 511 on the side near the connecting sleeve 512, and the camera body 5 and the support ring 511 are fixed together by adhesive; the annular PCB board 504 is disposed on the support ring 511 on the side near the light-shielding sleeve 510, and heat-dissipating silicone is disposed between the annular PCB board 504 and the support ring 511.
[0062] During installation, the annular support portion 501 is fitted onto the camera body 5 via the connecting sleeve 512; the camera body 5 abuts against the side of the support ring 511 closest to the connecting sleeve 512, and the camera body 5 and the support ring 511 are fixed together with adhesive, thereby fixing the camera body 5 and the annular support portion 501 together. The annular support portion 501, formed by the light-shielding sleeve 510, the support ring 511, and the connecting sleeve 512, and then fixed onto the camera body 5 with adhesive, allows the annular PCB board 504 to be fixedly mounted on the existing camera body 5, making this structure more adaptable.
[0063] In addition, the annular PCB board 504 is disposed on the side of the supporting ring 511 near the light-shielding sleeve 510. A heat-dissipating silicone is disposed between the annular PCB board 504 and the supporting ring 511. The LED beads 505 emit heat during operation, and the heat is transferred outward through the heat-dissipating silicone, thereby effectively preventing heat accumulation.
[0064] The height of the light-shielding sleeve 510 is greater than the height of the LED bead 505; the light-shielding sleeve 510 is located between the LED bead 505 and the camera body 5. This size design allows the light-shielding sleeve 510 to block the LED bead 505, preventing the light from the LED bead 505 from shining on the camera body 5 and thus affecting the data acquisition of the camera body 5.
[0065] Preferably, both the first clamping surface 301 and the second clamping surface 302 are provided with clamping surface recesses. Based on the above structure, by providing clamping surface recesses, a position for placing fingers is provided when clamping and fixing the device, which helps to improve operational stability.
[0066] Preferably, the clamping protrusion 3 has an inwardly recessed portion on the side facing the mobile phone body 1, and the clamping protrusion 3 is fixedly connected to the mobile phone body 1 by structural adhesive.
[0067] Based on the above structure, the clamping protrusion 3 is fixedly set on the connecting collar 2, and the protrusion recess is formed inward on the side facing the mobile phone body 1, which can reduce the weight of the device; then, the clamping protrusion 3 is bonded to the mobile phone body 1 with structural adhesive, which can improve the structural integrity and stability of the device.
[0068] like Figure 7 As shown, preferably, the mobile phone body 1 is also provided with a motor and a binocular camera assembly. The binocular camera assembly is provided with two camera bodies 5. The motor is connected to the mobile phone body 1 and provides driving force for the drill bit 101. The motor is located below the bearing plane part 4. The binocular camera assembly is fixedly mounted on the bearing plane part 4.
[0069] The lower end face of the binocular camera assembly is provided with a first angle adjustment protrusion and a second angle adjustment protrusion, which are respectively located at the front end and the rear end of the lower end face of the binocular camera assembly.
[0070] The upper end surface of the bearing plane portion 4 is provided with a first cross-shaped recess 401 and a second cross-shaped recess 402, which are respectively located at the front end and the rear end of the upper end surface of the bearing plane portion 4.
[0071] A first stainless steel insert 403 is provided in the first cross recess 401, and a second stainless steel insert 404 is provided in the second cross recess 402. The first stainless steel insert 403 is provided with a plurality of first angle adjustment recesses, and the second stainless steel insert 404 is provided with a plurality of second angle adjustment recesses.
[0072] The mobile phone body 1 and the binocular camera assembly adjust their angles through the nested cooperation of the first angle adjustment protrusion and the first angle adjustment recess, and the second angle adjustment protrusion and the second angle adjustment recess.
[0073] When it is necessary to adjust the relative angle between the binocular camera assembly and the drill bit 101, the angle can be adjusted by inserting the first angle adjustment protrusion into the corresponding first angle adjustment recess and the second angle adjustment protrusion into the corresponding second angle adjustment recess. After the angle adjustment is completed, the binocular camera assembly can be fixedly mounted on the bearing plane 4.
[0074] Based on the above structure, the connection between the binocular camera component and the mobile phone body 1 is made more robust while ensuring the angle adjustment function.
[0075] Specifically, the connecting collar 2, the clamping protrusion 3, and the bearing plane 4 are integrally formed aluminum alloy structures. This reduces the overall weight of the device while ensuring structural strength. The phone body 1 has multiple recessed sections 102 for easier gripping by the operator.
[0076] It should be understood that the application of the present invention is not limited to the examples above. Those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.
Claims
1. An integrated planting mobile phone, characterized in that, include: The mobile phone body is a circular cylindrical structure, and a drill bit is provided at the front end of the mobile phone body; A connecting collar, which is a circular ring structure, is sleeved and fixed onto the mobile phone body; A clamping protrusion strip is a long strip structure. The clamping protrusion strip is fixedly disposed on the connecting collar. The clamping protrusion strip extends towards the front of the mobile phone body. A first clamping surface and a second clamping surface are formed on the clamping protrusion strip. The first clamping surface and the second clamping surface are disposed opposite to each other. An arc-shaped transition ridge is formed between the first clamping surface and the second clamping surface. A bearing plane portion is fixedly disposed on the connecting collar, and the bearing plane portion extends toward the rear of the mobile phone body; The camera body is fixedly mounted on the supporting plane. An annular support portion is arranged around the camera body. A protective shell is fixedly mounted on the camera body, and a light-emitting window is opened on the protective shell. An annular PCB board is arranged on the annular support portion, and a supplementary light ring is arranged on the annular PCB board. The supplementary light ring includes multiple LED beads. The photosensitive component on the camera body and the LED beads are all facing the light-emitting window.
2. The integrated planting mobile phone according to claim 1, characterized in that, A light-transmitting glass plate is provided on the light-emitting window, and an annular light-shielding band is formed on the light-transmitting glass plate. The annular light-shielding band is a black annular area formed on the light-transmitting glass plate. The supplementary light ring and the annular light-shielding band are arranged concentrically, and the radius of the supplementary light ring is larger than the radius of the annular light-shielding band.
3. The integrated planting mobile phone according to claim 2, characterized in that, The protective housing is provided with a glass fixing inner ring platform and a glass sealing outer ring platform. The glass fixing inner ring platform and the glass sealing outer ring platform are formed circumferentially outside the light-emitting window. The glass fixing inner ring platform and the glass sealing outer ring platform are concentrically arranged and the radius of the glass fixing inner ring platform is smaller than the radius of the glass sealing outer ring platform. The light-transmitting glass panel is bonded and fixed to the inner glass fixing ring platform with structural adhesive. An outer sealing ring is also formed between the protective shell, the light-transmitting glass panel, and the outer glass sealing ring platform. The outer sealing ring is filled with sealant, or: The protective housing includes a side shell and a top annular plate. A gasket fixing groove is provided on the top annular plate, and a sealing gasket is provided in the gasket fixing groove. A protective cover is provided on the protective housing. The protective cover and the protective housing are connected to each other by a threaded connection. One side of the light-transmitting glass plate is abutted and fixed to the top annular plate and pressed against the sealing gasket, while the other side of the light-transmitting glass plate is abutted and fixed to the protective cover.
4. The integrated planting mobile phone according to claim 3, characterized in that, The inner ring platform of the glass fixing has multiple light emission holes, and the LED beads are arranged one by one below the light emission holes.
5. The integrated planting mobile phone according to claim 1, characterized in that, The annular support portion includes a light-shielding sleeve, a support ring, and a connecting sleeve, wherein the light-shielding sleeve, the support ring, and the connecting sleeve are concentrically arranged. The radius of the light-shielding sleeve is smaller than the radius of the connecting sleeve. The light-shielding sleeve is perpendicularly disposed on the inner edge of one side of the supporting ring, and the connecting sleeve is perpendicularly disposed on the outer edge of the other side of the supporting ring. The height of the light-shielding sleeve is greater than the height of the LED lamp bead. The annular support portion is sleeved onto the camera body via the connecting sleeve; the camera body abuts against the support ring on the side near the connecting sleeve, and the camera body and the support ring are fixed together by adhesive; the annular PCB board is disposed on the support ring on the side near the light-shielding sleeve, and heat-dissipating silicone is disposed between the annular PCB board and the support ring.
6. The integrated planting mobile phone according to claim 1, characterized in that, Both the first clamping surface and the second clamping surface are provided with clamping surface recesses.
7. The integrated planting mobile phone according to claim 1, characterized in that, The clamping protrusion has an inward recess on the side facing the phone body, and the clamping protrusion is fixedly connected to the phone body by structural adhesive.
8. The integrated planting mobile phone according to claim 1, characterized in that, The mobile phone body is also provided with a motor and a binocular camera assembly. The binocular camera assembly is provided with two camera bodies. The motor is connected to the mobile phone body and provides driving force for the drill bit. The motor is located below the bearing plane portion. The binocular camera assembly is fixedly mounted on the bearing plane portion. The lower end face of the binocular camera assembly is provided with a first angle adjustment protrusion and a second angle adjustment protrusion, the first angle adjustment protrusion and the second angle adjustment protrusion being respectively disposed at the front end and the rear end of the lower end face of the binocular camera assembly; The upper end surface of the bearing plane portion is provided with a first cross-shaped recess and a second cross-shaped recess, which are respectively located at the front end and the rear end of the upper end surface of the bearing plane portion. A first stainless steel insert is provided in the first cross recess, and a second stainless steel insert is provided in the second cross recess. The first stainless steel insert is provided with a plurality of first angle adjustment recesses, and the second stainless steel insert is provided with a plurality of second angle adjustment recesses. The mobile phone body and the binocular camera assembly adjust their angles through the nested cooperation of the first angle adjustment protrusion and the first angle adjustment recess, and the second angle adjustment protrusion and the second angle adjustment recess.
9. A one-piece planting mobile phone according to any one of claims 1-8, characterized in that, The connecting collar, the clamping protrusion, and the bearing plane are integrally formed aluminum alloy structures.
10. A one-piece planting mobile phone according to any one of claims 1-8, characterized in that, The mobile phone body has multiple recessed parts.