CN111110419A - Intelligent orthopedic device and processing method thereof - Google Patents
Intelligent orthopedic device and processing method thereof Download PDFInfo
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- CN111110419A CN111110419A CN202010140499.1A CN202010140499A CN111110419A CN 111110419 A CN111110419 A CN 111110419A CN 202010140499 A CN202010140499 A CN 202010140499A CN 111110419 A CN111110419 A CN 111110419A
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F5/00—Orthopaedic methods or devices for non-surgical treatment of bones or joints; Nursing devices ; Anti-rape devices
- A61F5/01—Orthopaedic devices, e.g. long-term immobilising or pressure directing devices for treating broken or deformed bones such as splints, casts or braces
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B33—ADDITIVE MANUFACTURING TECHNOLOGY
- B33Y—ADDITIVE MANUFACTURING, i.e. MANUFACTURING OF THREE-DIMENSIONAL [3D] OBJECTS BY ADDITIVE DEPOSITION, ADDITIVE AGGLOMERATION OR ADDITIVE LAYERING, e.g. BY 3D PRINTING, STEREOLITHOGRAPHY OR SELECTIVE LASER SINTERING
- B33Y10/00—Processes of additive manufacturing
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B33—ADDITIVE MANUFACTURING TECHNOLOGY
- B33Y—ADDITIVE MANUFACTURING, i.e. MANUFACTURING OF THREE-DIMENSIONAL [3D] OBJECTS BY ADDITIVE DEPOSITION, ADDITIVE AGGLOMERATION OR ADDITIVE LAYERING, e.g. BY 3D PRINTING, STEREOLITHOGRAPHY OR SELECTIVE LASER SINTERING
- B33Y50/00—Data acquisition or data processing for additive manufacturing
- B33Y50/02—Data acquisition or data processing for additive manufacturing for controlling or regulating additive manufacturing processes
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B33—ADDITIVE MANUFACTURING TECHNOLOGY
- B33Y—ADDITIVE MANUFACTURING, i.e. MANUFACTURING OF THREE-DIMENSIONAL [3D] OBJECTS BY ADDITIVE DEPOSITION, ADDITIVE AGGLOMERATION OR ADDITIVE LAYERING, e.g. BY 3D PRINTING, STEREOLITHOGRAPHY OR SELECTIVE LASER SINTERING
- B33Y80/00—Products made by additive manufacturing
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- Health & Medical Sciences (AREA)
- Biomedical Technology (AREA)
- Vascular Medicine (AREA)
- Life Sciences & Earth Sciences (AREA)
- Animal Behavior & Ethology (AREA)
- General Health & Medical Sciences (AREA)
- Public Health (AREA)
- Veterinary Medicine (AREA)
- Heart & Thoracic Surgery (AREA)
- Orthopedic Medicine & Surgery (AREA)
- Nursing (AREA)
- Prostheses (AREA)
Abstract
The invention provides an intelligent orthopedic device and a processing method thereof, wherein the intelligent orthopedic device comprises: the orthopedic device comprises a device body, an adjusting structure is arranged on the device body to adjust the orthopedic size of the device body, and at least one stress area is arranged on the device body; the pressure sensing component comprises pressure sensors, and each stressed area is provided with at least one pressure sensor; the control component is arranged on the device main body and is electrically connected with the pressure sensing component, wherein the control component comprises a processor and a communication component, and the communication component transmits the data information collected by the pressure sensing component to a terminal. The technical scheme of the invention solves the problem that the orthopedic device in the prior art can not be adaptively adjusted according to the height and weight change and the bone state change of a user.
Description
Technical Field
The invention relates to the technical field of medical auxiliary treatment appliances, in particular to an intelligent orthopedic device and a processing method thereof.
Background
After an injured fracture, auxiliary healing and correction of the bone by an orthopedic device is required. The orthopedic device is used for correcting the fracture part of a user and ensuring that the healed skeleton does not deform.
In the prior art, bone orthopedic devices are currently of purely mechanical design, and are manufactured and installed at one time by hospital orthotics according to the user's situation. And then worn by the user either constantly or intermittently.
However, the user may wear the orthopedic device (especially teenagers) as required in the actual use process of the orthopedic device, or the orthopedic device cannot achieve a good orthopedic effect due to the change of the user state, such as the change of the height and the weight of the user and the change of the bone state, and the device is manufactured at one time, so that the user cannot perform corresponding adjustment.
Disclosure of Invention
The invention mainly aims to provide an intelligent orthopedic device and a processing method thereof, and aims to solve the problem that the orthopedic device in the prior art cannot be adaptively adjusted according to height and weight changes and skeletal state changes of a user.
In order to achieve the above object, according to one aspect of the present invention, there is provided an intelligent orthotic device, comprising:
the orthopedic device comprises a device body, an adjusting structure is arranged on the device body to adjust the orthopedic size of the device body, and at least one stress area is arranged on the device body;
the pressure sensing component comprises pressure sensors, and each stressed area is provided with at least one pressure sensor;
the control component is arranged on the device main body and is electrically connected with the pressure sensing component, wherein the control component comprises a processor and a communication component, and the communication component transmits the data information collected by the pressure sensing component to a terminal.
Further, the device body comprises a support structure, the support structure is used for supporting a position to be orthopedic and is matched with the shape of the position to be orthopedic, and at least one stress area is arranged on the inner side surface of the support structure;
the adjusting structure is arranged on the supporting structure, and the supporting structure is provided with a yielding gap or a staggered part matched with the adjusting structure.
Further, the control component further comprises a housing and a control main board, the housing is mounted on the device main body, and the control main board and the communication assembly are both arranged in the housing;
the processor and the communication assembly are arranged on the control main board, and the pressure sensing component is connected with the control main board.
The control main board is electrically connected with the communication component.
Further, the control component also comprises at least one control signal lamp, and the control signal lamp is arranged on the control main board.
Further, a cushion structure is arranged on one side, away from the device main body, of the pressure sensor.
Further, the force receiving area is provided with a pressure pad, and the pressure sensor is arranged between the pressure pad device main bodies.
Furthermore, the control part is connected with the pressure sensor through a connecting wire, a mounting groove matched with the connecting wire is formed in the device main body, and the connecting wire is embedded in the mounting groove;
the inner side of the mounting groove is filled with a sealing structure, and the connecting wire is fixed in the mounting groove by the sealing structure.
According to another aspect of the present invention, there is provided a method of manufacturing an intelligent orthotic device, the method comprising:
measuring the size of the position to be reshaped to obtain a preset machining size of the supporting structure matched with the position to be reshaped;
determining a force-bearing area of the device body according to the orthopedic area of the position to be orthopedic;
determining the number and the arrangement mode of the pressure sensors according to the stress area, and determining a reserved space of the pressure sensors;
determining the forming size of the supporting structure according to the preset machining size and the reserved space;
machining the support structure according to the molding size;
and an adjusting structure, a pressure sensing part and a control part are arranged on the supporting structure.
Further, the support structure is subjected to injection molding after a carving mold is processed according to the molding size; or,
the supporting structure is formed by 3D printing according to the forming size.
Further, after the step of determining the number and arrangement of the pressure sensors according to the force-bearing area, the method further includes:
reserve the mounting groove that is used for the wiring according to arranging of connecting wire, wherein under the supporting structure passes through injection moulding's the condition, the mounting groove is through processing shaping behind the sculpture model setting EVA foam strip, perhaps the sculpture model setting easily dismantle and not with the material that supporting structure takes place the reaction carries out processing shaping.
By applying the technical scheme of the invention, the pressure of the stressed area can be detected by the arrangement of the pressure sensing part, and particularly, the pressure of different positions of the stressed area is detected by at least one pressure sensor. The control component is arranged for receiving pressure detection data of the pressure sensor and transmitting the data to the data processing terminal through the communication assembly, so that the optimal orthopedic size can be obtained according to the pressure detection data and the current situation of the user, and then the orthopedic size of the device main body is adjusted through the adjusting structure to adapt to the current situation of the user, so that the rehabilitation speed and the rehabilitation effect of the user are improved. The current situation of the user comprises height and weight change, skeleton state change and the like. The technical scheme of the invention solves the problem that the orthopedic device in the prior art can not be adaptively adjusted according to the height and weight change and the bone state change of a user.
Drawings
The accompanying drawings, which are incorporated in and constitute a part of this application, illustrate embodiments of the invention and, together with the description, serve to explain the invention and not to limit the invention. In the drawings:
fig. 1 shows a schematic structural diagram of an embodiment of an intelligent orthotic device according to the present invention; and
fig. 2 shows a flow chart of a method of manufacturing the intelligent orthotic device according to the present invention.
Wherein the figures include the following reference numerals:
10. a device main body; 11. a support structure; 12. an adjustment structure; 13. a cushion structure; 14. mounting grooves; 15. a sealing structure; 20. a pressure sensor; 30. a control component; 31. a housing; 32. a control main board; 33. a communication component; 34. a power supply component; 35. controlling a signal lamp; 36. and connecting the wires.
Detailed Description
It should be noted that the embodiments and features of the embodiments in the present application may be combined with each other without conflict. The present invention will be described in detail below with reference to the embodiments with reference to the attached drawings.
Referring to fig. 1, the technical solution of the present embodiment provides an intelligent orthopedic device, including:
the orthopedic size adjusting device comprises a device body 10, wherein an adjusting structure 12 is arranged on the device body 10 to adjust the orthopedic size of the device body 10, and at least one stress area is arranged on the device body 10;
the pressure sensing part comprises pressure sensors 20, and each force-bearing area is provided with at least one pressure sensor 20;
a control component 30, wherein the control component 30 is arranged on the device main body 10, the control component 30 is electrically connected with the pressure sensing component, the control component 30 comprises a processor and a communication component 33, and the communication component 33 transmits the data information collected by the pressure sensing component to a terminal.
By applying the technical scheme of the embodiment, the pressure sensing component is arranged, so that the pressure of the stressed area can be detected, and specifically, the pressure of different positions of the stressed area is detected by at least one pressure sensor 20. The control unit 30 is configured to receive the pressure detection data of the pressure sensor 20, transmit the data to the data processing terminal through the communication component 33, and further obtain an optimal orthopedic size according to the pressure detection data and the current situation of the user, and then adjust the orthopedic size of the device main body 10 through the adjusting structure 12 to adapt to the current situation of the user, so as to improve the rehabilitation speed and rehabilitation effect of the user. The current situation of the user comprises height and weight change, skeleton state change and the like. The technical scheme of this embodiment has solved the problem that orthopedic device among the prior art can't carry out the adaptability according to user's height weight change, skeleton state change and adjust.
It should be noted that the above-mentioned terminal may be a mobile terminal, a fixed terminal, or a virtual terminal, and of course, the communication module 33 may be connected to a plurality of or multiple terminals at the same time. The processor is used for receiving and processing the pressure signal received by the pressure sensing part, and can also convert the pressure signal into a digital signal convenient to view. The at least one pressure sensor 20 is arranged to receive pressure signals from portions of the force-receiving area.
Optionally, in the solution of the present embodiment, the device body 10 includes a support structure 11, the support structure 11 is used for supporting the position to be orthopedic and is adapted to the shape of the position to be orthopedic, and at least one of the force bearing areas is located on the inner side surface of the support structure 11;
the adjusting structure 12 is arranged on the supporting structure 11, and the supporting structure 11 is provided with an abdicating gap or a staggered part matched with the adjusting structure 12.
By applying the technical scheme of the embodiment, the supporting structure 11 in the above structure is used for supporting and limiting the position to be straightened, so that the position to be straightened can reach the preset straightening size after being corrected, and the preset straightening size can be changed according to the change of the physical condition of the user. The adjustment structure 12 is arranged to adjust the orthopaedic size of the support structure 11 to the optimal size for the user's current physical condition.
Optionally, in the technical solution of this embodiment, the adjusting structure 12 is a buckle structure with an adjustable clamping position, and the buckle structure includes a snap ring and at least one hook adapted to the snap ring; or,
the adjusting structure 12 is a fastening structure with an adjustable fastening position, and the fastening structure comprises a connecting buckle and a flexible fastening belt with an adjustable fastening length.
By applying the technical scheme of the embodiment, the two setting modes capable of adjusting the size of the supporting structure 11 are introduced in the structure, and can be selected according to needs, and other setting modes can be adopted, such as a structure similar to a waistband buckle. Referring to fig. 1, this embodiment shows a fastening structure, a corresponding yielding gap is provided on the supporting structure 11, and at least one connecting buckle, here a connecting ring structure, is provided on two sides of the yielding gap, and the adjustment of the supporting structure 11 is realized by matching with a flexible fastening belt. The flexible fastening tape, which is not shown in the drawings, may be a band-shaped structure that can be flexibly bonded and whose bonding position is adjustable. Of course, the fastening structure in the present embodiment is not limited to the structure shown in fig. 1.
Optionally, in the technical solution of the present embodiment, the control component 30 further includes a housing 31 and a control main board 32, the housing 31 is mounted on the device main body 10, and the control main board 32 and the communication module 33 are both disposed in the housing 31;
wherein the processor and the communication assembly (33) are both arranged on the control main board (32), and the pressure sensing component is connected with the control main board (32).
By applying the technical solution of the present embodiment, the casing 31 is configured to protect other components of the control component 30, such as the control motherboard 32 and the communication component 33, and the safety and reliability of the control motherboard 32 and the communication component 33 can be ensured. The communication component 33 may include modules such as bluetooth and WIFI for wireless data transmission; structures such as a USB interface and a connecting contact can also be arranged to carry out wired data transmission.
Optionally, in the technical solution of this embodiment, the control component 30 further includes a power supply component 34, and the power supply component 34 is electrically connected to the pressure sensing component and the control component 30;
the power supply unit 34 is mounted on the device body 10, or the power supply unit 34 is mounted in the housing 31.
With the present embodiment, the power supply assembly 34 is configured to provide power to other components of the control unit 30. The power supply unit 34 may be connected to a power socket by a wire, or may be configured as an independent battery structure, and when the power supply unit is configured as a battery structure, a detachable battery may be used, or a rechargeable battery that can be repeatedly charged and discharged may be used, and when the rechargeable battery is used, the control unit 30 further includes a charging interface.
Optionally, in the technical solution of this embodiment, the control component 30 further includes at least one control signal lamp 35, and the control signal lamp 35 is disposed on the control main board 32.
By applying the technical solution of the present embodiment, the setting of the control signal lamp 35 is used to display the current working state of the intelligent orthotic device. The control signal lights 35 indicate the current status of the intelligent orthotic device according to different display statuses, for example, at least one of the control signal lights 35 includes a power indicator light, which indicates the current status of the power according to different colors, flashing or not, flashing frequency, and the like. The need for charging, or charging, may be prompted by a red color, a green color indicating a sufficient charge or charging completion, etc. At least one of the control signal lights 35 includes a pressure indicator light that indicates the status of the pressure sensing component based on the status of different colors, flashing or not, flashing frequency, etc., to adjust the user's posture or the orthopedic size of the support structure as desired.
Further, a voice alarm can be arranged to alarm when the electric quantity is insufficient or the pressure of the pressure sensor 20 is too small or too large, and different voices can be broadcasted according to different conditions. Too low a pressure will reduce the correction effect, too high a pressure may cause a poor blood circulation, and the support effect of the support structure 11 may be optimized as much as possible by means of the voice alarm.
Optionally, in the solution of the present embodiment, a side of the pressure sensor 20 facing away from the device main body 10 is provided with a cushion structure 13.
By adopting the technical scheme of the embodiment, the arrangement of the cushion structure 13 can make the user feel more comfortable in the correction process, has better use experience, and can reduce the occurrence of unsmooth blood circulation.
Optionally, in the technical solution of this embodiment, the force-receiving area is provided with a pressure pad, and the pressure sensor 20 is disposed between the pressure pad device main bodies 10.
Use the technical scheme of this embodiment, the setting of pressure pad is used for adjusting pressure sensor 20, can set up different pressure pads as required, and simultaneously, the pressure pad can guarantee that pressure sensor 20's detection data is more accurate. The force-receiving area of the pressure sensor 20 can be increased.
It should be noted that the pressure sensor 20 in this embodiment may be an ultra-thin pressure sensor 20, and has higher detection accuracy when being matched with a pressure pad.
Optionally, in the technical solution of this embodiment, the housing 31 is fixed on the device main body 10 by a fixing member, and the fixing member is configured as a fixing bolt or a fixing bolt; or the housing 31 is bonded to the apparatus body 10; or the shell 31 is embedded in the device body 10 and fixed in a clamping manner.
Optionally, in the technical solution of this embodiment, the control unit 30 is connected to the pressure sensor 20 through a connection line 36, the device main body 10 is provided with an installation groove 14 adapted to the connection line 36, and the connection line 36 is embedded in the installation groove 14.
By applying the technical scheme of the embodiment, the connecting wire 36 is arranged for connecting the control component 30 and the pressure sensor 20 together, and the mounting groove 14 is arranged for accommodating the connecting wire 36, so that the connecting wire 36 is prevented from protruding out of the supporting structure 11, and the flatness of the inner surface of the supporting structure 11 is ensured.
Optionally, in the technical solution of this embodiment, the inside of the mounting groove 14 is filled with a sealing structure 15, and the sealing structure 15 fixes the connecting line 36 in the mounting groove 14.
By applying the technical solution of this embodiment, the sealing structure 15 is configured to seal the connection line 36, and fix the connection line 36 in the installation slot 14, and the sealing structure 15 may be configured as a hot melt adhesive, a sealant or a sealing rubber strip.
Optionally, in the technical solution of this embodiment, the outside of the connecting line 36 is wrapped with a heat shrink tube.
By applying the technical solution of this embodiment, the arrangement of the heat shrink tube can make the connection lines 36 more stable, and at least one connection line 36 can share one heat shrink tube. The heat shrink tubing also protects the connector 36.
Optionally, in the solution of the present embodiment, the control component 30 is disposed on a side of the device main body 10 facing away from the force-bearing area.
By applying the technical scheme of the embodiment, the structure can avoid the interference of the arrangement of the control component 30 on the orthopedic action of the stressed area.
Referring to fig. 2, the technical solution of the present embodiment provides a method for processing an intelligent orthopedic device, which is characterized in that the method includes:
step S41: measuring the size of the position to be reshaped to obtain a preset machining size of the supporting structure 11 matched with the position to be reshaped;
step S42: determining a force-bearing area of the device body 10 according to the orthopedic area of the position to be orthopedic;
step S43: determining the number and the arrangement mode of the pressure sensors 20 according to the stressed area, and determining the reserved space of the pressure sensors 20;
step S44: determining the forming size of the supporting structure 11 according to the preset machining size and the reserved space;
step S45: machining the support structure 11 according to the forming dimensions;
step S46: an adjusting structure 12, a pressure sensing part and a control part 30 are arranged on the supporting structure 11.
By applying the technical solution of the present embodiment, the supporting structure 11 meeting the requirements of the user can be obtained through the above steps, and after the adjusting structure 12, the pressure sensing component and the control component 30 are mounted on the supporting structure 11, the intelligent orthopedic device in the present embodiment can be obtained.
Optionally, in the technical solution of the present embodiment, the supporting structure 11 is injection molded after processing the engraving mold according to the molding size; or,
the support structure 11 is 3D printed according to the forming dimension.
By applying the technical scheme of the embodiment, the required supporting structure 11 can be processed in the above steps in an injection molding manner or a 3D printing manner. Among them, 3D printing (3 DP), which is one of the rapid prototyping technologies, is also called additive manufacturing, which is a technology for constructing an object by using an adhesive material such as powdered metal or plastic and the like and by printing layer by layer on the basis of a digital model file.
Optionally, in the technical solution of this embodiment, after the step of determining the number and the arrangement of the pressure sensors 20 according to the stressed area, the method further includes:
a mounting groove 14 for wiring is reserved according to the arrangement of the connection line 36, wherein, in the case that the support structure 11 is formed by injection molding, the mounting groove 14 is formed by processing after the engraving model is provided with the EVA foam strip, or the engraving model is provided with a material which is easy to detach and does not react with the support structure 11. Wherein, EVA refers to 'ethylene-vinyl acetate copolymer' and rubber plastic foaming material made of the same.
Use the technical scheme of this embodiment, above-mentioned structure can set up the mounting groove 14 of reserving as required in 11 course of working of bearing structure to avoid the secondary operation to bearing structure 11, guarantee that bearing structure 11 can integrated into one piece, improve bearing structure 11's stability.
It should be noted that, the adjusting structure 12 needs to be provided with a mounting hole on the supporting structure 11, and a corresponding mounting hole can be reserved during injection molding, so as to ensure that the supporting structure 11 can be formed at one time.
From the above description, it can be seen that the above-described embodiments of the present invention achieve the following technical effects: by applying the technical scheme of the invention, the pressure of the stressed area can be detected by the arrangement of the pressure sensing parts, and particularly, the pressure of different positions of the stressed area is detected by at least one pressure sensor 20. The control unit 30 is configured to receive the pressure detection data of the pressure sensor 20, transmit the data to the data processing terminal through the communication component 33, and further obtain an optimal orthopedic size according to the pressure detection data and the current situation of the user, and then adjust the orthopedic size of the device main body 10 through the adjusting structure 12 to adapt to the current situation of the user, so as to improve the rehabilitation speed and rehabilitation effect of the user. The current situation of the user comprises height and weight change, skeleton state change and the like. The technical scheme of the invention solves the problem that the orthopedic device in the prior art can not be adaptively adjusted according to the height and weight change and the bone state change of a user.
The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention, and various modifications and changes may be made by those skilled in the art. Any modification, equivalent replacement, or improvement made within the spirit and principle of the present invention should be included in the protection scope of the present invention.
Claims (10)
1. An intelligent orthotic device, comprising:
the orthopedic size adjusting device comprises a device body (10), wherein an adjusting structure (12) is arranged on the device body (10) to adjust the orthopedic size of the device body (10), and the device body (10) is provided with at least one stress area;
the pressure sensing part comprises pressure sensors (20), and each force-bearing area is provided with at least one pressure sensor (20);
the control component (30), the control component (30) sets up on the device main part (10), control component (30) with the pressure sensing part is connected, wherein, control component (30) includes treater and communication subassembly (33), data information that communication subassembly (33) was gathered to the pressure sensing part is transmitted to the terminal station.
2. The intelligent orthotic device according to claim 1, wherein the device body (10) comprises a support structure (11), the support structure (11) being adapted to support and conform to the shape of the site to be orthotic, at least one of the force-bearing areas being on an inside surface of the support structure (11);
adjust structure (12) and set up on bearing structure (11), bearing structure (11) are last be provided with adjust structure (12) complex clearance of stepping down or crisscross portion.
3. The intelligent orthotic device according to claim 1, wherein the control component (30) further comprises a housing (31) and a control main plate (32), the housing (31) being mounted on the device body (10), the control main plate (32) and the communication assembly (33) both being disposed within the housing (31);
wherein the processor and the communication assembly (33) are both arranged on the control main board (32), and the pressure sensing component is connected with the control main board (32).
4. The intelligent orthotic device according to claim 3, wherein the control component (30) further comprises at least one control signal light (35), the control signal light (35) being provided on the control main board (32).
5. The intelligent orthotic device according to claim 1, wherein a side of the pressure sensor (20) facing away from the device body (10) is provided with a cushion structure (13).
6. The intelligent orthotic device according to claim 1, wherein the force-receiving area is provided with pressure pads, the pressure sensors (20) being disposed between the pressure pad device bodies (10).
7. The intelligent orthopedic device according to claim 1, characterized in that the control component (30) is connected with the pressure sensor (20) through a connecting wire (36), the device body (10) is provided with a mounting groove (14) matched with the connecting wire (36), and the connecting wire (36) is embedded in the mounting groove (14);
the inner side of the mounting groove (14) is filled with a sealing structure (15), and the connecting wire (36) is fixed in the mounting groove (14) by the sealing structure (15).
8. A method of manufacturing an intelligent orthotic device, the method comprising:
measuring the size of the position to be reshaped to obtain a preset machining size of a supporting structure (11) matched with the position to be reshaped;
determining a force-bearing area of the device body (10) according to the orthopedic area of the position to be orthopedic;
determining the number and the arrangement mode of the pressure sensors (20) according to the stress area, and determining the reserved space of the pressure sensors (20);
determining the forming size of the supporting structure (11) according to the preset machining size and the reserved space;
-machining said support structure (11) according to said forming dimensions;
an adjusting structure (12), a pressure sensing part and a control part (30) are arranged on the supporting structure (11).
9. The machining method of the intelligent orthotic device according to claim 8, wherein the support structure (11) is injection molded after machining an engraving mold according to the molding size; or,
the support structure (11) is 3D printed according to the forming size.
10. The method for manufacturing an intelligent orthotic device according to claim 9, further comprising, after the step of determining the number and arrangement of the pressure sensors (20) according to the force-bearing area:
a mounting groove (14) for wiring is reserved according to the arrangement of the connecting wires (36), wherein, under the condition that the supporting structure (11) is formed by injection molding, the mounting groove (14) is formed by processing after the carving model is provided with an EVA foam strip, or the carving model is provided with a material which is easy to detach and does not react with the supporting structure (11).
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| CN202010140499.1A CN111110419A (en) | 2020-03-03 | 2020-03-03 | Intelligent orthopedic device and processing method thereof |
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| CN202010140499.1A CN111110419A (en) | 2020-03-03 | 2020-03-03 | Intelligent orthopedic device and processing method thereof |
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Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN113558841A (en) * | 2021-07-28 | 2021-10-29 | 国家康复辅具研究中心 | Intelligent control system for orthopedic helmet |
| CN119015030A (en) * | 2024-08-15 | 2024-11-26 | 青岛维思顿生物医疗有限公司 | A method, medium and system for controlling the corrective force of a scoliosis orthosis with an airbag |
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