Grip Strength Intensifier, Grip Strength Intensifier Method, and Program

The EMS-based grip strength device addresses the bulkiness and mobility issues of exoskeleton gloves by using EMS to contract upper arm and shoulder muscles, enhancing grip strength without restricting hand or finger motion.

JP7726285B2Active Publication Date: 2025-08-20NIPPON TELEGRAPH & TELEPHONE CORP
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Patent Information

Application Number
JP2023552608
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-06
Publication Date
2025-08-20
Estimated Expiration
2041-10-06

AI Technical Summary

Technical Problem

Exoskeleton gloves for enhancing grip strength are bulky and restrict hand and finger motion, imposing a significant burden on the wearer.

Method used

A grip strength increasing device that uses electrical muscle stimulation (EMS) to contract the muscles of the upper arm and shoulder in coordination with forearm muscles, detected through electromyography, without the need for bulky exoskeletons.

Benefits of technology

The EMS-based system enhances grip strength with minimal burden and no restriction to hand or finger motion, achieving increased grip strength with reduced wear and improved mobility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The grip reinforcing device according to one aspect of the present invention comprises: a grip motion detection unit that detects grip motion of a user; and an electrical muscle stimulation (EMS) control unit that controls an EMS presentation unit for presenting an EMS to muscle of at least one of an upper arm and shoulder of the user. The EMS control unit drives the EMS presentation unit to present the EMS to the muscle of at least one of an upper arm and shoulder of the user in response to detection of the grip motion of the user.
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Description

[Technical Field]

[0001] The present invention relates to a technique for assisting a person's gripping motion. [Background technology]

[0002] A method using an exoskeleton glove is known as a method for enhancing a person's grip strength. For example, Non-Patent Document 1 discloses an exoskeleton glove that detects and assists a user's gripping motion. [Prior art documents] [Non-patent literature]

[0003] [Non-Patent Document 1] Pilwon Heo and Jung Kim, “Power-assistive finger exoskeleton with a palmar opening at the fingerpad”, IEEE Transactions on Biomedical Engineering 61.11 (2014): 2688-2697. Summary of the Invention [Problem to be solved by the invention]

[0004] Exoskeleton gloves are bulky and require a lot of effort to wear, and they also restrict the range of motion of the hands and fingers.

[0005] The present invention aims to provide a grip strength enhancing technology that imposes a low burden on the wearer and does not restrict the range of motion of the hand or fingers. [Means for solving the problem]

[0006] A grip strength increasing device according to one embodiment of the present invention includes a grip strength detection unit that detects a user's grip strength motion, and an EMS control unit that controls an EMS presentation unit that presents EMS (Electrical Muscle Stimulation) to at least one of the muscles in the user's upper arm and shoulder, and the EMS control unit drives the EMS presentation unit to present the EMS to at least one of the muscles in the user's upper arm and shoulder in response to the detection of the user's grip strength motion. [Effects of the Invention]

[0007] According to the present invention, a grip strength enhancing technique is provided that imposes a low burden on the wearer and does not restrict the range of motion of the hand or fingers. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a functional block diagram showing a grip strength strengthening device according to an embodiment. [Figure 2] FIG. 2 is a block diagram showing the hardware configuration of the grip strength increasing device according to the embodiment. [Figure 3] FIG. 3 is a diagram showing how the electrodes shown in FIG. 2 are attached to a user. [Figure 4] FIG. 4 is a flowchart illustrating a grip strength strengthening method according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, an embodiment of the present invention will be described with reference to the drawings.

[0010] The embodiments relate to a technology for assisting a user in gripping. Specifically, the embodiments relate to a technology for increasing a user's grip strength by coordinating the contraction of multiple muscles of the user. The embodiments use electrical muscle stimulation (EMS) that applies electrical stimulation to muscles to cause involuntary contraction of the muscles. The technology according to the embodiments applies EMS to at least one of the muscles of the user's upper arm and shoulder, causing the involuntary contraction of at least one of the muscles of the user's upper arm and shoulder in coordination with the voluntary contraction of the muscles of the user's forearm. The at least one of the muscles of the user's upper arm and shoulder includes at least one of the user's biceps, triceps, and deltoid. In the exemplary embodiment described below, EMS is applied to both the muscles of the user's upper arm and shoulder. EMS application can be achieved by attaching electrodes to the parts of the user where EMS is applied. This reduces the burden on the user when wearing the device and does not inhibit the range of motion of the hand or fingers.

[0011] [composition] 1 is a schematic diagram of a grip strength increasing device 10 according to one embodiment of the present invention. As shown in FIG. 1, the grip strength increasing device 10 includes an electromyographic measuring unit 11, a control unit 12, and an EMS display unit 13.

[0012] The myoelectric measurement unit 11 measures the myoelectric potential of the muscles of the user's forearm (for example, the flexor digitorum superficialis muscle) and generates a myoelectric signal indicative of the myoelectric potential of the muscles of the user's forearm.

[0013] The control unit 12 controls the EMS presentation unit 13 based on the myoelectric signal obtained by the myoelectric measurement unit 11. The control unit 12 includes a myoelectric signal input unit 121, a myoelectric signal analysis unit 122, an EMS control unit 123, and a drive signal output unit .

[0014] The myoelectric signal input unit 121 receives the myoelectric signal from the myoelectric measurement unit 11 and sends the received myoelectric signal to the myoelectric signal analysis unit 122 .

[0015] The myoelectric signal analysis unit 122 corresponds to a gripping motion detection unit that detects the user's gripping motion. The myoelectric signal analysis unit 122 analyzes the myoelectric signal to detect the user's gripping motion. Specifically, the myoelectric signal analysis unit 122 calculates the root mean square (RMS) of the myoelectric signal over a predetermined time period and performs a detection process at predetermined time intervals to determine whether the user's gripping motion has occurred based on a comparison between the calculated RMS and a predetermined threshold. The myoelectric signal analysis unit 122 determines that the user's gripping motion has occurred when the calculated RMS exceeds a threshold (e.g., 100 μV). When the myoelectric signal analysis unit 122 detects the user's gripping motion, it notifies the EMS control unit 123 that the user's gripping motion has been detected.

[0016] The EMS control unit 123 controls the EMS to be presented to the user. The EMS control unit 123 sets parameters related to the EMS. For example, the EMS control unit 123 may receive setting information including parameters related to the EMS from a human operator and apply the setting information to the EMS presentation unit 13. The parameters related to the EMS include time length, frequency, current, voltage, and pulse width. The time length is a parameter indicating the duration for which the EMS is presented, and the frequency, current, voltage, and pulse width are parameters for adjusting the intensity of the EMS. For example, the current is set to 10 mA, the frequency is set to 200 Hz, and the pulse width is set to 200 μs.

[0017] Furthermore, in response to the detection of the user's gripping action by the myoelectric signal analysis unit 122, the EMS control unit 123 drives the EMS presentation unit 13 to present the EMS to the user. The EMS control unit 123 generates a drive signal for driving the EMS presentation unit 13.

[0018] The drive signal output unit 124 outputs the drive signal generated by the EMS control unit 123 to the EMS presentation unit 13. The EMS control unit 123 drives the EMS presentation unit 13 for a set time length. Specifically, the EMS control unit 123 applies the drive signal to the EMS presentation unit 13 via the drive signal output unit 124 for a period from the timing when the user's gripping motion is detected until the time corresponding to the set time length has elapsed.

[0019] The EMS presentation unit 13 presents an EMS to the muscles of the user's upper arm and shoulder to contract the muscles of the user's upper arm and shoulder under the control of the control unit 12. The EMS presentation unit 13 is driven by a drive signal from the control unit 12. While receiving the drive signal from the control unit 12, the EMS presentation unit 13 generates an EMS according to parameters set by the EMS control unit 123, and presents the EMS to the muscles of the user's upper arm and shoulder.

[0020] Here, the myoelectric measurement unit 11, the control unit 12, and the EMS presentation unit 13 are collectively referred to as a grip strength increaser. As will be described later with reference to Figure 2, the myoelectric measurement unit 11, the control unit 12, and the EMS presentation unit 13 can be implemented as multiple separate hardware devices. The entire system may be referred to as a grip strength increaser system, and the control unit 12 alone may be referred to as a grip strength increaser.

[0021] Fig. 2 shows a schematic diagram of an example of the hardware configuration of grip strength enhancement device 10. As shown in Fig. 2, grip strength enhancement device 10 includes, as hardware components, an electromyographic sensor 21, a computer 22, an electrical stimulation device 23, and a wearable member 24. The electromyographic sensor 21 implements the electromyographic measurement unit 11 shown in Fig. 1, the computer 22 implements the control unit 12 shown in Fig. 1, and the electrical stimulation device 23 implements the EMS presentation unit 13 shown in Fig. 1.

[0022] The myoelectric sensor 21 is configured to measure the myoelectric potential of a specific muscle of the user and generate a myoelectric signal. As an example, the myoelectric sensor 21 includes a pair of electrodes 211 and 212 and a subtraction circuit 213 connected to the electrodes 211 and 212. The electrodes 211 and 212 may be provided on separate electrode pads. Alternatively, the electrodes 211 and 212 may be provided on a single electrode pad so as to be spaced a predetermined distance apart. As shown in FIG. 3 , the electrodes 211 and 212 are attached to the user's forearm to measure the myoelectric potential of the user's forearm muscles. Specifically, the electrodes 211 and 212 are attached to a region of the user's forearm opposite the flexor digitorum superficialis muscle to measure the myoelectric potential of the user's flexor digitorum superficialis muscle. Referring back to FIG. 2 , the subtraction circuit 213 outputs a potential difference signal indicating the potential difference between the electrodes 211 and 212 as the myoelectric signal.

[0023] The electrical stimulator 23 is configured to apply electrical stimulation to specific muscles of the user. As an example, the electrical stimulator 23 includes at least one pair of electrodes 231, 232 and an electrical circuit 233 connected to the electrodes 231, 232. The electrodes 231, 232 may be provided on separate electrode pads. Alternatively, the electrodes 231, 232 may be provided on a single electrode pad so as to be spaced apart from each other by a predetermined distance. The electrical circuit 233 generates electrical stimulation (e.g., a pulsed current signal) and applies the electrical stimulation to the user via the electrodes 231, 232. In the example shown in FIG. 3 , the electrical stimulator 23 includes three pairs of electrodes 231, 232, which are attached to the user's upper arm and shoulder to apply electrical stimulation to the muscles of the user's upper arm and shoulder. Specifically, one pair of electrodes 231, 232 are attached to the area of the user's upper arm opposite the biceps to apply electrical stimulation to the user's biceps, another pair of electrodes 231, 232 are attached to the area of the user's upper arm opposite the triceps to apply electrical stimulation to the user's triceps, and a remaining pair of electrodes 231, 232 are attached to the area of the user's shoulder opposite the deltoid to apply electrical stimulation to the user's deltoid.

[0024] 2, the computer 22 may be, but is not limited to, a microcontroller, and includes a processor 221, a memory 222, and an input / output interface 223. The processor 221 is connected to the memory 222 and the input / output interface 223, and exchanges signals with the memory 222 and the input / output interface 223.

[0025] The processor 221 is an example of a processing circuit and includes a general-purpose circuit such as a CPU (Central Processing Unit).

[0026] The memory 222 stores various data and programs executed by the processor 221, such as a grip strength enhancement program. Each program includes a plurality of computer-executable instructions. The processor 221 executes the programs stored in the memory 222. When executed by the processor 221, the grip strength enhancement program causes the processor 221 to perform the series of processes described with respect to the control unit 12. In other words, the processor 221 functions as the myoelectric signal input unit 121, the myoelectric signal analysis unit 122, the EMS control unit 123, and the drive signal output unit 124 in accordance with the grip strength enhancement program.

[0027] The program may be provided to the computer 22 in a state where it is stored on a computer-readable recording medium. In this case, the computer 22 is equipped with a drive for reading data from the recording medium and acquires the program from the recording medium. Examples of recording media include magnetic disks, optical disks (CD-ROM, CD-R, DVD-ROM, DVD-R, etc.), magneto-optical disks (MO, etc.), and semiconductor memories. The program may also be distributed over a network. Specifically, the program may be stored on a server on the network, and the computer 22 may download the program from the server.

[0028] The input / output interface 223 is an interface for connecting to the electromyography sensor 21 and the electrical stimulation device 23. The processor 221 receives an electromyography signal from the electromyography sensor 21 via the input / output interface 223. The processor 221 transmits a drive signal to the electrical stimulation device 23 via the input / output interface 223.

[0029] The attachment member 24 is a member for attaching the grip strength enhancement device 10 to a user. For example, the attachment member 24 may be a band attached to the user's upper arm. The subtraction circuit 213 of the electromyography sensor 21, the computer 22, and the electrical circuit 233 of the electrical stimulation device 23 may be provided on the attachment member 24.

[0030] It should be noted that the grip strength enhancement device 10 is not limited to a wearable device. Some of the hardware components (e.g., the subtraction circuit 213 of the electromyography sensor 21, the computer 22, and the electrical circuit 233 of the electrical stimulation device 23) may be provided on fixed members.

[0031] [Operation] FIG. 4 shows a schematic diagram of a grip strengthening method performed by the grip strengthening device 10.

[0032] 4, the myoelectric measurement unit 11 measures the myoelectric potential of the muscles in the user's forearm, thereby obtaining time-series data relating to the myoelectric potential of the muscles in the user's forearm as a myoelectric signal.

[0033] In step S42, the myoelectric signal analysis unit 122 applies a band-pass filter having a predetermined pass band (for example, 20 to 450 Hz) to the myoelectric signal output from the myoelectric measurement unit 11 in order to remove noise.

[0034] In step S43, the myoelectric signal analysis unit 122 calculates the RMS of the myoelectric signal over a predetermined time period. For example, the myoelectric signal analysis unit 122 calculates the RMS of the myoelectric signal from a time a predetermined time ago to the current time.

[0035] In step S44, the myoelectric signal analysis unit 122 determines whether the RMS calculated in step S43 exceeds a predetermined threshold value. If the RMS does not exceed the threshold value (step S44; No), the process returns to step S41, and the processes shown in steps S41 to S44 are repeated.

[0036] If the RMS exceeds the threshold value (step S44; Yes), the myoelectric signal analysis unit 122 determines that the user's gripping motion has occurred, and the process proceeds to step S45.

[0037] In step S45, the grip strength increasing device 10 presents an EMS to the muscles of the user's upper arm and shoulder. For example, the EMS control unit 123 generates a drive signal for driving the EMS presentation unit 13, and the drive signal output unit 124 outputs this drive signal to the EMS presentation unit 13. The EMS presentation unit 13 operates in response to the drive signal to present an EMS to the muscles of the user's upper arm and shoulder.

[0038] [effect] As described above, the electromyographic measurement unit 11 measures the electromyographic activity of the user's upper arm muscles, the electromyographic signal analysis unit 122 performs a detection process to detect the user's gripping motion based on the electromyographic signal output from the electromyographic measurement unit 11, and the EMS control unit 123 drives the EMS presentation unit 13 in response to the detection of the user's gripping motion to present an EMS to the user's upper arm and shoulder muscles. This allows the user's upper arm and shoulder muscles to contract involuntarily in coordination with the voluntary contraction of the user's forearm muscles. As a result, the user's grip strength can be increased. The gripping motion detection can be achieved by attaching electrodes to the user's forearm, and the EMS presentation can be achieved by attaching electrodes to the user's upper arm and shoulder. Therefore, the grip strength enhancement device 10 is small, lightweight, and requires little wear. Furthermore, the range of motion of the user's hands and fingers is not restricted.

[0039] By performing a detection process based on the measurement results of the electromyogram of the muscles in the user's upper arm, it is possible to detect the user's gripping force with a low processing load. The detection process may also include applying a band-pass filter to the electromyogram signal. This reduces noise contained in the electromyogram signal and improves detection accuracy.

[0040] Next, we will explain an experiment that verified that a user's grip strength can be increased by presenting EMS to the muscles of the user's upper arm and shoulder. The experiment was conducted on one subject. In the experiment, an electrode pair for measuring electromyography was attached to the area corresponding to the subject's superficial flexor digitorum muscles, and three electrode pairs for presenting EMS were attached to the areas corresponding to the biceps brachii, triceps brachii, and deltoid muscles. When the subject exerted grip strength, EMS with a current of 10 mA, a frequency of 200 Hz, and a pulse width of 200 μs was presented to each area. The experiment was conducted using the following procedure. 1. The subject holds the grip strength meter for three seconds and the maximum grip strength is measured. EMS is presented while the subject holds the grip strength meter. 2. The subject rests for three minutes. 3. The subject holds the grip strength meter for three seconds without EMS presentation, and the maximum grip strength value is measured. 4. The subject rests for three minutes.

[0041] The above procedure was repeated five times, and the grip strength with and without EMS presentation was recorded. Grip strength (kgf) with EMS: 47, 46, 44, 42, 44 Grip strength (kgf) without EMS: 37, 44, 40, 43, 45 The average grip strength when EMS was presented was 44.6 kgf, and the average grip strength when EMS was not presented was 41.8 kgf.

[0042] The above experimental results show that grip strength can be increased by using EMS to contract the upper arm and shoulder muscles in coordination with the forearm muscles. It should be noted that applying EMS to at least one of the biceps, triceps, and deltoid muscles can also have the effect of increasing grip strength. Applying EMS to all of the biceps, triceps, and deltoid muscles, as in the above experiment, can further increase grip strength.

[0043] [Variations] The method of detecting the user's gripping action is not limited to the method using the electromyographic sensor 21. For example, a camera device that obtains moving images or a pressure sensor that measures pressure may also be used. In an example using a camera device, the camera device is set up to capture an image of the user's hand or an object that the user is gripping, and the gripping action detection unit detects the user's gripping action based on the moving images output from the camera device. In an example using a pressure sensor, the pressure sensor is built into the object that the user is gripping, and the gripping action detection unit detects the user's gripping action based on the measurement signal output from the pressure sensor. Using a camera device or a pressure sensor further reduces the burden of wearing the device.

[0044] In the above-described embodiment, the duration for presenting the EMS is set in advance. Alternatively, the EMS may be presented throughout the user's gripping motion. For example, the EMG signal analysis unit 122 calculates the RMS at predetermined time intervals after detecting the user's gripping motion. The EMG signal analysis unit 122 determines the start of the gripping motion when the RMS exceeds a first threshold and the end of the gripping motion when the RMS falls below a second threshold. The EMS control unit 123 then drives the EMS presentation unit 13 from the start of the gripping motion to the end of the gripping motion. The second threshold may be the same as or smaller than the first threshold. By presenting the EMS throughout the user's gripping motion, assistance more tailored to the user's gripping motion can be achieved.

[0045] The present invention is not limited to the above-described embodiments, and various modifications can be made in the implementation stage without departing from the spirit of the invention. Furthermore, the embodiments may be implemented in appropriate combinations, in which case the combined effects can be obtained. Furthermore, the above-described embodiments include various inventions, and various inventions can be extracted by combining selected components from the disclosed components. For example, if the problem can be solved and the effects can be obtained even if some components are removed from all the components shown in the embodiments, the configuration from which these components are removed can be extracted as an invention. [Explanation of symbols]

[0046] 10...Grip strength enhancer 11...Electromyography unit 12...Control unit 13...EMS presentation section 21...Electromyography sensor 22...Computer 23...Electrostimulator 24...Mounting member 121...Electromyographic signal input unit 122...Electromyographic signal analysis unit 123...EMS control unit 124...Drive signal output section 211,212...electrode 213...Subtraction circuit 221...Processor 222...Memory 223...input / output interface 231,232...electrode 233...Electrical Circuit

Claims

1. a gripping motion detection unit that detects a user's gripping motion; an EMS control unit that controls an EMS presentation unit that presents EMS (Electrical Muscle Stimulation) to muscles of at least one of the upper arm and shoulder of the user; Equipped with The EMS control unit drives the EMS presentation unit to present the EMS to muscles of at least one of the upper arm and shoulder of the user in response to the detection of the gripping motion of the user. Grip strength enhancer.

2. 2. The grip strength enhancing device of claim 1, wherein the muscles of the user's upper arm and / or shoulder include at least one of the user's biceps, the user's triceps, and the user's deltoid.

3. 3. The grip strength increasing device according to claim 1, wherein the grip strength detection unit detects the grip strength of the user based on a measurement signal output from an electromyography measurement unit that measures electromyography of muscles in the user's forearm.

4. 4. The grip strength enhancing device of claim 3, wherein the grip strength detection unit calculates a root mean square of the measurement signal over a predetermined time period and determines whether the user's grip strength action has occurred based on a comparison of the calculated root mean square with a predetermined threshold.

5. 5. The grip strength enhancing device of claim 3 or 4, wherein the muscles of the user's forearm include the user's flexor digitorum superficialis.

6. 3. The grip strength increasing device according to claim 1, wherein the grip strength detection unit detects the grip strength of the user based on a moving image output from a camera device that captures an image of the user's hand or an object being gripped by the user, or a measurement signal output from a pressure sensor built into the object being gripped by the user.

7. A computer-implemented method for increasing grip strength, comprising controlling an electrical stimulation device that provides EMS (Electrical Muscle Stimulation), Detecting a user's gripping force action; activating the electrical stimulation device to present the EMS to muscles of at least one of an upper arm and a shoulder of the user in response to the detection of the gripping motion of the user; A grip strength strengthening method comprising:

8. A program for causing a computer to function as each unit of the grip strength increasing device according to any one of claims 1 to 6.

Citation Information

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