Medical-home dual-purpose multi-sensory stimulation device
By integrating multiple sensory stimulation modules into a small multisensory stimulation device, the problems of poor portability and lack of personalization in existing technologies are solved, enabling convenient use in hospitals and homes and improving user experience and adaptability.
Patent Information
- Application Number
- CN202422973709.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-03
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2034-12-03
AI Technical Summary
Existing multisensory stimulation devices require multiple devices, resulting in poor portability and inconvenience in use, which limits their application in different environments. Furthermore, they lack personalization and adjustability, failing to meet the needs of different patients.
This device integrates stimulation modules for cold, heat, vision, hearing, vibration, pain, and touch into a single multi-sensory stimulation device. It achieves multiple sensory stimulations through a single device, which is smaller than a certain threshold size and supports use by medical staff and patients in hospitals and homes.
It improves user experience, enhances portability and ease of use, expands application scenarios, and meets the needs of different environments and patients.
Smart Images

Figure CN223887227U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of sensory stimulation technology, specifically to a multi-sensory stimulation device that can be used for both medical and household purposes. Background Technology
[0002] Multisensory stimulation is an important technology in the field of rehabilitation therapy. It provides comprehensive rehabilitation treatment by combining visual, auditory, and tactile stimulation. According to a report by the World Health Organization, the demand for rehabilitation therapy is increasing annually worldwide, particularly among the elderly and people with disabilities. Among these rehabilitation services, multisensory stimulation therapy is gaining increasing attention due to its ability to improve patients' perceptual abilities and cognitive functions.
[0003] When performing multisensory stimulation using existing sensory stimulation devices, multiple devices are usually required. Furthermore, the large number of devices required makes them inconvenient to carry, limiting their use in different environments. Consequently, this restricts the ease of use of sensory stimulation devices and reduces the user experience for medical staff or patients. Utility Model Content
[0004] This invention provides a multi-sensory stimulation device suitable for both medical and home use. By integrating multiple sensory stimulation instruments into a single device, it can stimulate a patient's cold, heat, vision, hearing, vibration, pain, and touch sensations, thus improving the user experience. The integration of multiple sensory stimulation instruments into a single device, with the resulting device being smaller than a second threshold, enhances its portability and expands its application scenarios. Users can carry the device with them, allowing it to be used by medical staff in hospitals or taken home by patients for personal use, further improving its ease of use.
[0005] This utility model embodiment provides a multi-sensory stimulation device that can be used both in medical and clinical settings, the device comprising:
[0006] The main body has an installation cavity;
[0007] The control module includes a control board and multiple physical buttons. The control board is electrically connected to each physical button and is located within the mounting cavity.
[0008] A cold stimulation module for providing cold stimulation to a user is located within the mounting cavity. The cold stimulation module is electrically connected to the control board and corresponds to the first physical button among the plurality of physical buttons, so that the cold stimulation module can be controlled by the first physical button.
[0009] A thermal stimulation module for providing thermal stimulation to a user is located outside the mounting cavity. The thermal stimulation module is electrically connected to the control board and corresponds to the second physical button among the plurality of physical buttons, so as to control the thermal stimulation module through the second physical button.
[0010] A visual stimulation module for providing visual stimulation to a user, the visual stimulation module being electrically connected to the control board and corresponding to the third and fourth physical buttons among the plurality of physical buttons, so as to control the visual stimulation module through the third and fourth physical buttons;
[0011] An auditory stimulation module for providing auditory stimulation to a user is located within the mounting cavity. The auditory stimulation module is electrically connected to the control board and corresponds to the fifth physical button among the plurality of physical buttons, so that the auditory stimulation module can be controlled by the fifth physical button.
[0012] A vibration stimulation module for providing vibration stimulation to a user, the vibration stimulation module is located in the mounting cavity, the vibration stimulation module is electrically connected to the control board, and corresponds to the sixth physical button among the plurality of physical buttons, so as to control the vibration stimulation module through the sixth physical button;
[0013] A pain stimulation module for providing pain stimulation to a user, the pain stimulation module being located within the mounting cavity;
[0014] A tactile stimulation module for providing tactile stimulation to a user, wherein the tactile stimulation module is located within the mounting cavity.
[0015] Implementing the embodiments of this utility model has the following beneficial effects:
[0016] As can be seen, in this embodiment of the invention, the control module, cold stimulation module, heat stimulation module, visual stimulation module, auditory stimulation module, vibration stimulation module, pain stimulation module, and tactile soft-hard-dense stimulation module are all integrated into a multi-sensory stimulation device. This allows for the stimulation of the patient's cold, heat, vision, hearing, vibration, pain, and touch sensations through a single device, thereby improving the user experience of using the multi-sensory stimulation device.
[0017] Furthermore, by integrating multiple sensory stimulation instruments into a single multisensory stimulation device, and ensuring that the size of the integrated device is smaller than the second threshold, the portability of the multisensory stimulation device is enhanced, and its application scenarios are broadened. This means that users can carry the device with them, allowing it to be used by medical staff in hospitals for patients, or taken home by patients for personal use, thus improving the ease of use of the multisensory stimulation device. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 A schematic diagram of the structure of a multi-sensory stimulation device for both medical and home use provided in an embodiment of this utility model;
[0020] Figure 2 A schematic diagram of the structure of a control module provided in an embodiment of this utility model;
[0021] Figure 3 A schematic diagram of the structure of a cold stimulation module provided in an embodiment of this utility model;
[0022] Figure 4 A schematic diagram of the structure of a thermal stimulation module provided in an embodiment of this utility model;
[0023] Figure 5 A schematic diagram of the structure of a visual stimulation module provided in an embodiment of this utility model;
[0024] Figure 6 A schematic diagram of the structure of a pain stimulation module provided in an embodiment of this utility model;
[0025] Figure 7 This is a schematic diagram of the internal structure of an installation cavity provided in an embodiment of the present utility model;
[0026] Figure 8 This is a schematic diagram of the structure of a power display module provided in an embodiment of the present utility model.
[0027] It should be noted that the accompanying drawings are not necessarily drawn to scale, but are shown only in a schematic manner without affecting the reader's understanding.
[0028] Explanation of reference numerals in the attached figures:
[0029] 100 - Main body, 101 - Mounting cavity, 1011 - Upper left part of the mounting cavity, 1012 - Below the ball bearing bottle in the mounting cavity, 1013 - Lower area of the mounting cavity, 102 - Front of the main body, 1021 - Second through hole, 103 - Back of the main body, 1031 - Third through hole, 104 - Upper side of the main body, 105 - Left side of the main body, 106 - Right side of the main body, 107 - First cover, 1071 - First connector, 1072 - First through hole, 108 - Connecting shaft, 109 - Air inlet, 110 - Air outlet, 111 - Second cover, 1111 - Second connector, 1112 - Fourth through hole, 1113 - Fifth through hole, 112 - Boss 113 - Groove, 114 - At least one heat dissipation vent, 115 - Light outlet, 116 - Pinhole, 117 - Pin outlet, 118 - Paddle, 1181 - Sixth through hole, 119 - Third cover, 1013 - Lower area in the mounting cavity, 200 - Multiple physical buttons, 201 - First physical button, 202 - Second physical button, 203 - Third physical button, 204 - Fourth physical button, 205 - Fifth physical button, 206 - Sixth physical button, 207 - Seventh physical button, 208 - Control board, 300 - Ball bearing bottle, 301 - Fan, 400 - Heating element, 500 - Display screen, 600 - Blunt pin, 601 - Spring element, 700 - Power display module. Detailed Implementation
[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present utility model.
[0031] The terms "first," "second," "third," and "fourth," etc., used in the specification, claims, and drawings of this utility model are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, apparatus, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, apparatus, products, or devices.
[0032] In this document, the term "embodiment" means that a particular feature, result, or characteristic described in connection with an embodiment may be included in at least one embodiment of the present invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0033] First, the prior art of this utility model will be described. Multisensory stimulation is an important technology in the field of rehabilitation therapy. It provides patients with comprehensive rehabilitation treatment by combining multiple sensory stimuli such as vision, hearing, and touch. Globally, the demand for rehabilitation therapy is increasing year by year, especially among the elderly and disabled populations, who have a high demand for rehabilitation services. Among these rehabilitation services, multisensory stimulation therapy is gradually gaining attention because it can improve patients' perceptual abilities and cognitive functions.
[0034] Multisensory stimulation using existing sensory stimulation devices typically requires multiple devices. Therefore, existing multisensory stimulation devices have some design and functional limitations. For example, many devices are numerous, making them inconvenient to carry and use in different environments. Furthermore, some devices lack personalization and adjustability in providing sensory stimulation, failing to meet the needs of different patients.
[0035] While multisensory stimulators play an important role in rehabilitation therapy, existing technologies have some significant drawbacks. First, the poor portability of the devices limits their application in home and community settings. Second, the lack of modularity and customizability in sensory stimulation restricts therapeutic effectiveness.
[0036] like Figure 1 As shown, the multi-sensory stimulation device for both medical and home use (hereinafter referred to as "multi-sensory stimulation device") includes a main body 100 and an installation cavity 101. The main body can be understood as the other parts of the multi-sensory stimulation device excluding the control module, cold stimulation module, heat stimulation module, visual stimulation module, auditory stimulation module, vibration stimulation module, pain stimulation module and tactile soft-hard-dense stimulation module. The main body includes the front 102, the back 103, the upper side 104, the left side 105 and the right side 106 of the main body.
[0037] like Figure 2 As shown, the control module includes multiple physical buttons 200 (such as...). Figure 2The plurality of physical buttons (201, 202, 203, 204, 205, 206, and 207) and control board 208 are provided. The control board is electrically connected to each physical button and is located within the mounting cavity. The plurality of physical buttons are located on the front of the main body. It should be noted that the control board can be a control circuit or a control chip, and this utility model does not limit the specific design.
[0038] A cold stimulation module for providing cold stimulation to a user is located in the mounting cavity 101. The cold stimulation module is electrically connected to the control board 208 and corresponds to the first physical button 201 among the plurality of physical buttons, so as to control the cold stimulation module through the first physical button 201.
[0039] A thermal stimulation module for providing thermal stimulation to a user is located outside the mounting cavity 101. The thermal stimulation module is electrically connected to the control board 208 and corresponds to the second physical button 202 among the plurality of physical buttons, so as to control the thermal stimulation module through the second physical button 202.
[0040] A visual stimulation module for providing visual stimulation to a user, the visual stimulation module is electrically connected to the control board 208 and corresponds to the third physical button 203 and the fourth physical button 204 among the plurality of physical buttons, so as to control the visual stimulation module through the third physical button 203 and the fourth physical button 204.
[0041] An auditory stimulation module for providing auditory stimulation to a user is located within the mounting cavity 101. The auditory stimulation module is electrically connected to the control board 208 and corresponds to the fifth physical button 205 among the plurality of physical buttons, so as to control the auditory stimulation module through the fifth physical button 205.
[0042] A vibration stimulation module for providing vibration stimulation to a user is located in the mounting cavity 101. The vibration stimulation module is electrically connected to the control board 208 and corresponds to the sixth physical button 206 among the plurality of physical buttons, so as to control the vibration stimulation module through the sixth physical button 206.
[0043] A pain stimulation module for providing pain stimulation to a user, the pain stimulation module being located within the mounting cavity 101;
[0044] A tactile stimulation module for providing tactile stimulation to a user, wherein the tactile stimulation module is located within the mounting cavity 101.
[0045] It should be noted that the control module, cold stimulation module, heat stimulation module, visual stimulation module, auditory stimulation module, vibration stimulation module, pain stimulation module, and tactile soft / hard / dense stimulation module are all integrated into a multi-sensory stimulation device, and the volume of the multi-sensory stimulation device is smaller than the second threshold.
[0046] As can be seen, in this embodiment of the invention, the control module, cold stimulation module, heat stimulation module, visual stimulation module, auditory stimulation module, vibration stimulation module, pain stimulation module, and tactile soft-hard-dense stimulation module are all integrated into a multi-sensory stimulation device. This allows for the stimulation of the patient's cold, heat, vision, hearing, vibration, pain, and touch sensations through a single device, thereby improving the user experience of using the multi-sensory stimulation device.
[0047] Furthermore, by integrating multiple sensory stimulation instruments into a single multisensory stimulation device, and ensuring that the size of the integrated device is smaller than the second threshold, the portability of the multisensory stimulation device is enhanced, and its application scenarios are broadened. This means that users can carry the device with them, allowing it to be used by medical staff in hospitals for patients, or taken home by patients for their own use, thus improving the ease of use of the multisensory stimulation device.
[0048] In one embodiment of this utility model, such as Figure 3 As shown, the cold stimulation module includes a rollerball bottle 300 and a fan 301, wherein the rollerball bottle 300 contains liquid; the main body also includes: a first cover 107, a connecting shaft 108, an air inlet 109, an air outlet 110, and a second cover 111.
[0049] The roll-on bottle is located within the mounting cavity of the main body, specifically in the upper left portion 1011 of the mounting cavity. The ball bearing portion of the roll-on bottle is located within the upper left portion 1011 of the mounting cavity, while the other portion of the ball bearing is located outside the mounting cavity. The liquid is located within the roll-on bottle, allowing it to be applied to the user's contact area by the rolling of the ball bearing. The liquid can be a cooling liquid such as alcohol. It should be noted that when the liquid in the roll-on bottle is used up, liquid can be added, or the roll-on bottle can be replaced directly.
[0050] The first cover 107 includes a first connector 1071, and the first connector 1071 includes a first through hole 1072.
[0051] A second through hole 1021 is provided on the upper left side of the front side 102 of the main body, and a third through hole 1031 is provided on the upper left side of the back side 103 of the main body.
[0052] The second cover 111 includes a second connector 1111, which includes a fourth through hole 1112 and a fifth through hole 1113.
[0053] The connecting shaft 108 passes through the first through hole, the second through hole, the third through hole, the fourth through hole, and the fifth through hole to connect the first connecting member and the second connecting member to the main body, so that the first cover is connected to the main body through the first connecting member, and the second cover is connected to the main body through the second connecting member. The connecting shaft can be a bolt structure, etc., and this application does not specifically limit it.
[0054] The first cap rotates via the connecting shaft to cover the roll-on bottle, sealing it to the bottle opening. Alternatively, the first cap can be rotated upwards to allow the roll-on ball to contact the user. Specifically, when the user uses the cooling stimulation module, the first cap can be rotated upwards to expose the roll-on ball, allowing the user to contact it and apply the liquid to the contact area through its rolling motion. Furthermore, when the user does not need to use the cooling stimulation module, the first cap can be rotated downwards to cover the roll-on bottle, sealing it to the bottle opening and preventing leakage.
[0055] The second cover is detachable. When the second cover is in the detached state, the rolling bottle can be removed from the mounting cavity to facilitate replacement of the rolling bottle.
[0056] The air inlet 109 is located on the back of the main body 100, and the air outlet 110 is located on the left side of the main body. Both the air inlet and the air outlet are located below the rolling ball bottle.
[0057] The fan is located inside the mounting cavity, below the ball bearing bottle. Specifically, the fan's outlet faces the outlet 110, and its inlet faces the inlet 109. Therefore, the fan can be located below the ball bearing bottle 1012 in the mounting cavity; the fan draws in air through the inlet and exhausts air through the outlet.
[0058] The fan is controlled by the first physical button to accelerate the evaporation of the liquid applied to the contact area with the user through the air outlet, thereby cooling the contact area and providing the user with a cold sensation.
[0059] Specifically, the control relationship between the first physical button and the fan is pre-configured so that when the user presses the first physical button, the control board of the control module controls the fan to start operating. The fan blows air out of the air outlet to accelerate the evaporation of liquid on the contact area and cool the contact area, thereby providing the user with a cold sensation.
[0060] As can be seen, in this embodiment of the invention, a cooling liquid is applied to the user's contact area via a roller ball, and then a fan directs airflow towards the contact area to accelerate the evaporation of the liquid and cool the area, thus providing a tactile cold stimulation effect that simulates ecological sensation. Traditional methods of cold stimulation using ice packs can cause discomfort to the user due to their extremely low temperature, and ice packs need to be kept frozen to maintain a low temperature. Therefore, the cold stimulation device in this embodiment of the invention, compared to traditional ice packs, can improve the cold stimulation sensation, achieve the cold stimulation function while reducing costs, increasing operational flexibility and efficiency, and avoiding the discomfort caused to patients and the inconvenience to medical staff by traditional ice packs.
[0061] In one embodiment of this utility model, such as Figure 4 As shown, the main body 100 further includes a boss 112, a groove 113, and at least one heat dissipation vent 114. The thermal stimulation module includes a heating element 400. The thermal stimulation module is located outside the mounting cavity and on the back side of the main body.
[0062] The boss, the groove, the at least one heat dissipation port, and the heat-generating element are all located on the back side 103 of the main body, and the distance between each of the at least one heat dissipation ports and the outer edge of the boss corresponding to the heat dissipation port is less than a first threshold.
[0063] The boss is fixedly connected to the back of the main body, and the boss and the groove are also fixedly connected. Specifically, three sides of the groove are fixedly connected to the boss, and the other side is spaced apart from the boss. This allows the heating element's wires to connect to the control board through this space. The heating element is located in the groove so that the user can directly contact it, and the maximum temperature of the heating element is 45 degrees Celsius. The second physical button controls the heating element to operate, so that the heating element provides thermal stimulation to the user by heating up. It should be noted that the control relationship between the second physical button and the heating element is pre-configured so that when the user presses the second physical button, the heating element starts working.
[0064] As can be seen, in this embodiment of the invention, by providing a boss and a groove, the heating element is placed in the groove, allowing the user to directly contact the heating element without being burned, thus improving the user experience. Furthermore, heat dissipation vents are provided around the boss to prevent the temperature rise of the heating element from affecting other functions of the multi-sensory stimulation device.
[0065] In one embodiment of this utility model, such as Figure 5 As shown, the main body also includes a light outlet 115, and the visual stimulation module includes a light-emitting element. The visual stimulation module is located on the front of the main body and is electrically connected to the control board.
[0066] The light outlet is located on the upper side of the main body and is spaced apart from the first cover.
[0067] The light-emitting element is embedded in the light-emitting port.
[0068] The third physical button controls the operation of the light-emitting element, so as to provide visual stimulation to the user through the light source emitted by the light-emitting element.
[0069] It should be noted that the control relationship between the third physical button and the light-emitting element is pre-configured, allowing the light source of the light-emitting element to be adjusted by pressing the third physical button. The light-emitting element has multiple preset modes, each with different light intensity and color temperature. Different modes can be adjusted by pressing the third physical button, thereby providing visual stimulation to the user through light emitted in different modes.
[0070] As can be seen, in this embodiment of the utility model, the light source emitted by the light-emitting element provides visual stimulation to the user, and the third control button can also control the light-emitting element to emit light in different modes, allowing the user to experience the difference of light source in different modes and improving the user experience.
[0071] Furthermore, such as Figure 5 As shown, the visual stimulation module also includes a display screen 500, which is embedded in the front of the main body and located above the plurality of physical buttons. It should be noted that the fourth physical button controls the display screen to show an image for visual stimulation of the user.
[0072] It should be noted that the control relationship between the fourth physical button and the display screen is configured in advance so that images can be displayed on the display screen. Users can switch the images on the display screen by pressing the fourth physical button, or by touching the display screen and sliding it left or right.
[0073] As can be seen, in this embodiment of the utility model, the user is visually stimulated by the image displayed on the screen, and different images can be displayed on the screen by using the fourth physical button or by touching the screen, allowing the user to experience the visual stimulation brought by different images and improving the user experience.
[0074] In one embodiment of this invention, the auditory stimulation module includes a speaker and a recording core. The auditory stimulation module is located within the mounting cavity.
[0075] The speaker and the recording chip are located within the mounting cavity. The fifth physical button controls the speaker to play audio and controls the recording chip to record audio, thereby providing auditory stimulation to the user.
[0076] Specifically, the control relationship between the fifth physical button and the speaker and recording device is pre-configured so that if the user presses the fifth physical button once, the control board controls the speaker to play audio to stimulate the user's hearing. If the user presses the fifth physical button twice consecutively, the control board controls the recording device to start recording. When the user presses the fifth physical button again, the recording is complete. After recording is complete, pressing the fifth physical button again controls the control board to play the recorded audio through the speaker. The recorded audio can be the voice of the patient's family member or other close friends, because in the field of rehabilitation medicine, patients are often more sensitive to the voices of familiar family members or friends.
[0077] As can be seen, in this embodiment of the invention, family members are allowed to record personalized voice messages. This not only enhances the patient's auditory perception but also provides emotional support and encouragement. Adding the auditory stimulation module to the recording core assembly facilitates the recording of sounds more familiar to the patient, thereby improving the auditory stimulation effect of the multi-sensory stimulator.
[0078] In one embodiment of this utility model, the vibration stimulation module is located inside the mounting cavity and below the auditory stimulation module. The sixth physical button controls the operation of the vibration motor so that the vibration of the vibration motor stimulates the user's sense of touch.
[0079] The vibration stimulation module includes at least one vibration motor located within the mounting cavity. Specifically, the at least one vibration motor may be located below the control panel. The control relationship between the vibration motor and the sixth physical button is pre-configured so that the vibration motor can be controlled via the sixth physical button to stimulate the user's tactile sense through vibration.
[0080] Furthermore, the frequency and intensity of the vibration motor can be adjusted. Specifically, the frequency and intensity of the vibration motor are collectively referred to as the operating conditions of the vibration motor. Specifically, when the user presses the sixth physical button, the vibration motor starts operating, and the display screen can show the current frequency and intensity of the vibration motor, as well as display virtual controls of "+" or "-". The user can adjust the frequency and intensity of the vibration motor by clicking on these virtual controls.
[0081] In one embodiment of this utility model, such as Figure 6 As shown, the main body also includes: a needle hole 116, a needle outlet 117, and a paddle 118. The pain stimulation module includes: a blunt needle 600 and a spring 601. The paddle has a sixth through hole 1181, and the needle hole 116 passes through the sixth through hole 1181 and is fixedly connected to the paddle. It should be noted that this utility model does not limit the number of the needle hole 116, needle outlet 117, paddle 118, blunt needle 600, spring 601, and sixth through hole 1181.
[0082] In this embodiment of the utility model, the number of the needle hole 116, needle outlet 117, paddle 118, blunt needle 600, spring 601 and sixth through hole 1181 is one. When the number of the needle hole 116, needle outlet 117, paddle 118, blunt needle 600, spring 601 and sixth through hole 1181 is one, it can be simply referred to as a single needle pain stimulation structure.
[0083] The paddle 118 passes through the back of the main body, partially located inside the mounting cavity and partially located outside the mounting cavity, and the paddle is capable of moving to the left or to the right relative to the main body.
[0084] The pinhole is located within the mounting cavity, with its right side sealed and its left side open. The blunt needle is located within the annular ring of the spring member. Both the blunt needle and the spring member are partially located within the pinhole, and their right sides are fixedly connected to the right side of the pinhole. The original length of the spring member in its initial state is equal to the length of the blunt needle. The needle outlet is located on the right side of the main body, through which the blunt needle extends from the right side of the main body.
[0085] By moving the lever, the blunt needle can be extended or retracted relative to the needle outlet.
[0086] When the lever is moved to the right from the initial position, the lever moves to the right relative to the main body, and the blunt needle extends out relative to the needle outlet. The rightward movement of the lever causes the needle hole to move to the right, which in turn causes the blunt needle to move to the right, allowing it to pass through the needle outlet and extend out of the right side of the main body. This facilitates contact between the blunt needle and the user, providing pain stimulation. When the lever is moved to the right from the initial position, the spring changes from its original state to a compressed state.
[0087] When the paddle stops moving, the paddle moves to the left relative to the main body, the blunt needle retracts relative to the needle outlet, the spring changes from a compressed state to its original state, causing the needle hole to move to the left, and the leftward movement of the needle hole causes the blunt needle to move to the left, so that the blunt needle is flush with the right side of the main body.
[0088] As can be seen, in this embodiment of the present invention, when there is only one needle hole 116, one needle outlet 117, one paddle 118, one blunt needle 600, one spring 601, and one sixth through hole 1181, when the paddle is moved to the right from the initial position, the blunt needle extends relative to the needle outlet. The movement of the paddle to the right causes the needle hole to move to the right, and the movement of the needle hole to the right causes the blunt needle to move to the right, so that the blunt needle passes through the needle outlet and extends out of the right side of the main body, so that the single blunt needle can contact the user to provide pain stimulation, which can be simply referred to as providing single-needle pain stimulation to the user.
[0089] Furthermore, the description will cover the multiple quantities of the needle hole 116, needle outlet 117, lever 118, blunt needle 600, spring 601, and sixth through hole 1181. Specifically, two of these multiple quantities will be used as examples. When the number of the needle hole 116, needle outlet 117, lever 118, blunt needle 600, spring 601, and sixth through hole 1181 is multiple, it can be simply referred to as a multi-needle pain stimulation structure.
[0090] The pinhole 116 may include two pinholes, the needle outlet may include two needle outlets, and the lever 118 includes the lever with only one sixth through hole described in the above embodiment, referred to as the first lever. It may also include a lever with two sixth through holes, referred to as the second lever. The blunt needle 600 may include two blunt needles, and the spring member 601 may include two spring members. The connection relationship between the pinhole 116, needle outlet 117, lever 118, blunt needle 600, spring member 601, and sixth through hole 1181 when there are multiple connections is similar to the connection relationship when there is only one connection between the pinhole 116, needle outlet 117, lever 118, blunt needle 600, spring member 601, and sixth through hole 1181. This utility model will not be illustrated further here.
[0091] The second paddle has two sixth through holes, through which the two pinholes are respectively fixedly connected. The paddle passes through the back of the main body, partially located inside the mounting cavity and partially located outside the mounting cavity, and the paddle can move to the left or to the right relative to the main body.
[0092] Similarly, by moving the second lever, the two blunt needles can be made to extend or retract relative to the needle outlet.
[0093] When the second lever is moved to the right from the initial position, both blunt needles simultaneously extend relative to the needle outlet. The rightward movement of the second lever causes the two needle holes to move to the right, which in turn causes the two blunt needles to move to the right, allowing them to extend through their respective needle outlets onto the right side of the main body. This facilitates contact between the blunt needles and the user, providing pain stimulation. When the second lever is moved to the right from the initial position, the spring changes from its original state to a compressed state.
[0094] When the second lever is stopped, the two blunt needles retract relative to the needle outlet, and the two springs change from a compressed state to their original state, causing the two needle holes to move to the left. The leftward movement of the two needle holes causes the two blunt needles to move to the left, so that the two blunt needles are flush with the right side of the main body.
[0095] As can be seen, in this embodiment of the present invention, when there are multiple needle holes 116, needle outlets 117, blunt needles 600, spring members 601, and sixth through holes 1181, when the second lever is moved to the right from the initial position, the two blunt needles simultaneously extend relative to the needle outlets. The rightward movement of the second lever causes the two needle holes to move to the right, and the rightward movement of the two needle holes causes the two blunt needles to move to the right, so that the two blunt needles respectively pass through the corresponding needle outlets and extend out of the right side of the main body, so that the two blunt needles can contact the user to provide pain stimulation, which can be simply referred to as providing multi-needle pain stimulation to the user.
[0096] Furthermore, the device described in the above embodiments can be used to install both the single-needle pain stimulation structure and the multi-needle pain stimulation structure within the main body. This is because in the field of rehabilitation medicine, it is sometimes necessary to perform both single-needle and multi-needle pain stimulation on the user. Therefore, a multi-sensory stimulation device can integrate both the single-needle and multi-needle pain stimulation structures into a single device. When the user moves the first lever, single-needle pain stimulation is performed; when the user moves the second lever, multi-needle pain stimulation is performed, improving user convenience.
[0097] In one embodiment of this utility model, such as Figure 7 As shown, the main body also includes a third cover 119; the tactile soft-hard-density stimulation module is located within the mounting cavity 101. Specifically, the tactile soft-hard-density stimulation module located within the mounting cavity is below the vibration stimulation module, that is, located in the lower region 1013 of the mounting cavity 101. The tactile soft-hard-density stimulation module includes: a first brush having a first hardness and a first density, and a second brush having a second hardness and a second density; wherein the second hardness is greater than the first hardness, and the second density is greater than the first density; the first brush and the second brush are spaced apart; the third cover covers the first brush and the second brush.
[0098] As can be seen, in this embodiment of the invention, first and second brushes with different hardness and density are concentrated in the multi-sensory stimulation device, so that users can perform tactile stimulation of softness, hardness and density by touching different brushes, so as to meet the different tactile stimulation needs of different users and improve the convenience of users using the device.
[0099] In one embodiment of this utility model, the plurality of physical buttons includes a seventh physical button 207. The control module turns the device on or off via the seventh physical button and the control panel. Specifically, the control relationship between the seventh physical button and the device is pre-configured so that the user can press the seventh physical button to turn on the multi-sensory stimulation device. If the device is already on, and the user presses the seventh physical button again to turn on the multi-sensory stimulation device, the control module turns the device off via the control panel.
[0100] In one embodiment of this utility model, the device further includes a battery, which is located within the mounting cavity. For example... Figure 8 As shown, the device also includes a power display module 700, which is electrically connected to the battery. The power display module includes multiple indicator lights to display the battery's power level through the operating status of these lights. The indicator lights can be in an on state or an off state. The power display module is located on the right side of the main body. It visually displays the current battery power status to the user. This improvement allows users to more intuitively understand the device's battery usage, enabling them to charge the battery in a timely manner and avoid interruptions due to insufficient power during treatment.
[0101] In one embodiment of this invention, the multi-sensory stimulation device further includes a data recording module, which is electrically connected to the control board. When each stimulation module is operating, its operating status parameters can be recorded.
[0102] For example, the data recording module can record the vibration duration and frequency of each vibration from the vibration stimulation module. The data recording module can send the recorded parameters to the control board for processing. After processing, the control board can display the user's rehabilitation treatment history on the display screen. Specifically, the history can be represented by a graph, with time on the horizontal axis and the vibration motor's operating condition on the vertical axis. Displaying this graph allows patients or medical staff to visually observe changes in the vibration motor's operating condition over time. If the vibration motor's operating condition consistently decreases over time, it indicates that the user's vibration perception is becoming stronger, suggesting that the rehabilitation effect is becoming increasingly apparent during this period.
[0103] As can be seen, in this embodiment of the invention, by recording the user's historical treatment data and displaying it on a screen, patients or medical staff can more intuitively see the patient's recovery progress. This provides feedback to medical staff, assisting them in developing more effective treatment plans for patients and improving the user experience.
[0104] Furthermore, the control board can analyze the data recorded by the data logging module and automatically adjust the frequency and intensity of the vibration motor based on the user's historical records. Specifically, by analyzing the relationship between the vibration motor's operating conditions and time changes in the user's historical records, the control board predicts the frequency and intensity of the vibration motor for the next use. When the user presses the sixth physical button again, the vibration motor operates at the predicted frequency and intensity, allowing the user to obtain a suitable frequency and intensity without manual adjustment, thus improving the user experience.
[0105] In one embodiment of this invention, the display screen also includes a feedback interface for user feedback, where the user can adjust the stimulation parameters of the relevant stimulation module in real time. For example, when the vibration stimulation module starts working, the feedback interface can display the current frequency and intensity of the vibration motor, and display virtual "+" and "-" controls next to the current frequency and intensity, respectively. The user can click on these virtual controls to adjust the frequency and intensity of the vibration motor in real time, either increasing or decreasing the frequency and intensity.
[0106] As can be seen in this embodiment of the invention, the user can adjust the stimulation parameters in real time on the feedback interface during the treatment process. The user can personalize the setting of their own suitable stimulation parameters to improve the treatment effect.
[0107] It should be noted that, for the sake of simplicity, the foregoing device embodiments are all described as a series of actions. However, those skilled in the art should understand that the present invention is not limited to the described order of actions, because according to the present invention, some steps can be performed in other orders or simultaneously. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are all optional embodiments, and the actions and modules involved are not necessarily essential to the present invention.
[0108] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.
[0109] The embodiments of this utility model have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this utility model. The description of the above embodiments is only for the purpose of helping to understand the structure and core ideas of this utility model. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this utility model. Therefore, the content of this specification should not be construed as a limitation of this utility model.
Claims
1. A multi-sensory stimulation device for both medical and clinical use, characterized in that, The device includes: The main body has an installation cavity; The control module includes a control board and multiple physical buttons. The control board is electrically connected to each physical button and is located within the mounting cavity. A cold stimulation module for providing cold stimulation to a user is located within the mounting cavity. The cold stimulation module is electrically connected to the control board and corresponds to the first physical button among the plurality of physical buttons, so that the cold stimulation module can be controlled by the first physical button. A thermal stimulation module for providing thermal stimulation to a user is located outside the mounting cavity. The thermal stimulation module is electrically connected to the control board and corresponds to the second physical button among the plurality of physical buttons, so as to control the thermal stimulation module through the second physical button. A visual stimulation module for providing visual stimulation to a user, the visual stimulation module being electrically connected to the control board and corresponding to the third and fourth physical buttons among the plurality of physical buttons, so as to control the visual stimulation module through the third and fourth physical buttons; An auditory stimulation module for providing auditory stimulation to a user is located within the mounting cavity. The auditory stimulation module is electrically connected to the control board and corresponds to the fifth physical button among the plurality of physical buttons, so that the auditory stimulation module can be controlled by the fifth physical button. A vibration stimulation module for providing vibration stimulation to a user, the vibration stimulation module is located in the mounting cavity, the vibration stimulation module is electrically connected to the control board, and corresponds to the sixth physical button among the plurality of physical buttons, so as to control the vibration stimulation module through the sixth physical button; A pain stimulation module for providing pain stimulation to a user, the pain stimulation module being located within the mounting cavity; A tactile stimulation module for providing tactile stimulation to a user, wherein the tactile stimulation module is located within the mounting cavity.
2. The apparatus according to claim 1, characterized in that, The cold stimulation module includes a rollerball bottle and a fan, wherein the rollerball bottle contains liquid; the main body also includes: a first cover, a second cover, a connecting shaft, an air inlet and an air outlet of the fan; The bottle body of the roll-on bottle is located inside the mounting cavity of the main body, the ball part of the roll-on bottle is located inside the mounting cavity, and the other part of the ball is located outside the mounting cavity, so that the liquid can be applied to the contact area with the user by the rolling of the ball on the roll-on bottle; The first cover includes a first connector, and the first connector includes a first through hole; A second through hole is provided on the upper left side of the front of the main body, and a third through hole is provided on the upper left side of the back of the main body; The second cover includes a second connector, which includes a fourth through hole and a fifth through hole; The connecting shaft passes through the first through hole, the second through hole, the third through hole, the fourth through hole, and the fifth through hole to connect the first connector and the second connector to the main body, so that the first cover is connected to the main body through the first connector, and the second cover is connected to the main body through the second connector. The first cap is rotated via the connecting shaft to cover the roll-on bottle; or, the first cap is rotated upward so that the roll-on ball of the bottle can come into contact with the user. The second cover is detachable. When the second cover is in the detached state, the roll-on bottle can be removed from the mounting cavity to facilitate replacement of the roll-on bottle. The air inlet is located on the back of the main body, and the air outlet is located on the left side of the main body; The fan is located inside the mounting cavity; The fan is controlled by the first physical button to accelerate the evaporation of the liquid applied to the contact area with the user through the air outlet, thereby cooling the contact area and providing the user with a cold sensation.
3. The apparatus according to claim 1 or 2, characterized in that, The main body also includes: a boss, a groove and at least one heat dissipation port, and the thermal stimulation module includes a heating element; The boss, the groove, the at least one heat dissipation port, and the heat-generating element are all located on the back of the main body, and the distance between each of the at least one heat dissipation ports and the outer edge of the boss corresponding to that heat dissipation port is less than a first threshold. The boss is fixedly connected to the back of the main body, and the boss and the groove are fixedly connected. The heating element is located in the groove so that the user can directly contact the heating element; The second physical button controls the heating element to operate, so that the heating element can provide thermal stimulation to the user by raising the temperature.
4. The apparatus according to any one of claims 1-3, characterized in that, The main body also includes a light outlet, and the visual stimulation module includes a light-emitting element; The light outlet is located on the upper side of the main body and is spaced apart from the first cover. The light-emitting element is embedded in the light-emitting port; The third physical button controls the operation of the light-emitting element, so as to provide visual stimulation to the user through the light source emitted by the light-emitting element.
5. The apparatus according to claim 4, characterized in that, The visual stimulation module also includes a display screen; The display screen is embedded in the front of the main body and is located above the plurality of physical buttons; The fourth physical button controls the display screen to show images in order to provide visual stimulation to the user.
6. The apparatus according to any one of claims 1-5, characterized in that, The auditory stimulation module includes a speaker and a recording core; The speaker and the recording core are located within the mounting cavity; The fifth physical button controls the speaker to play audio and controls the recording chip to record audio, so as to provide auditory stimulation to the user.
7. The apparatus according to any one of claims 1-6, characterized in that, The vibration stimulation module includes at least one vibration motor; The at least one vibration motor is located within the mounting cavity; The sixth physical button controls the operation of the vibration motor, so that the vibration of the motor stimulates the user's sense of touch.
8. The apparatus according to any one of claims 1-7, characterized in that, The main body also includes: a needle hole, a needle outlet, and a paddle; the pain stimulation module includes: a blunt needle and a spring. The paddle has a sixth through hole, and the pin hole passes through the sixth through hole and is fixedly connected to the paddle; The paddle passes through the back of the main body, with a portion of the paddle located inside the mounting cavity and the other portion of the paddle located outside the mounting cavity, and the paddle is capable of moving to the left or to the right relative to the main body; The pinhole is located inside the mounting cavity, with the right side of the pinhole sealed and the left side open; the blunt needle is located inside the annular ring of the spring; both the blunt needle and the spring are partially located inside the pinhole, and the right sides of both the blunt needle and the spring are fixedly connected to the right side of the pinhole. The needle outlet is located on the right side of the main body, and the blunt needle extends out of the right side of the main body through the needle outlet; By moving the lever, the blunt needle can be in an extended state and a retracted state relative to the needle outlet. When the paddle is moved to the right from the initial position, the blunt needle extends out relative to the needle outlet. The movement of the paddle to the right causes the needle hole to move to the right, and the movement of the needle hole to the right causes the blunt needle to move to the right, so that the blunt needle passes through the needle outlet and extends out of the right side of the main body, so that the blunt needle can contact the user to provide pain stimulation. When the paddle is stopped, the blunt needle retracts relative to the needle outlet, the spring changes from a compressed state to its original state, causing the needle hole to move to the left, and the leftward movement of the needle hole causes the blunt needle to move to the left, so that the blunt needle is flush with the right side of the main body.
9. The apparatus according to any one of claims 1-8, characterized in that, The main body also includes a third cover; The tactile soft-hard-dense stimulation module includes: a first brush with a first hardness and a first density, and a second brush with a second hardness and a second density. Wherein, the second hardness is greater than the first hardness, and the second density is greater than the first density; The first brush and the second brush are spaced apart. The third cover covers the first brush and the second brush.
10. The apparatus according to any one of claims 1-9, characterized in that, The plurality of physical buttons includes a seventh physical button, and the control module controls the device to be turned on or off through the seventh physical button and the control board.