Position sense assisting band
The position sense assistance band with alternating elasticity regions addresses the challenges of application difficulty and complex manufacturing in existing technologies, enhancing body motion range by improving position sense recognition.
Patent Information
- Application Number
- JP2024074665
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-05-02
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2044-05-02
AI Technical Summary
Existing body motion enhancement technologies, such as taping tapes and garments with arch-shaped stitching, are difficult to apply, cause skin irritation, and require complex manufacturing processes.
A position sense assistance band made of elastic material with alternating regions of varying elasticity, featuring a band main body and reduced elasticity sections, where the extension force required to stretch the reduced elasticity section is more than twice that of the band main body, facilitating easy application and wear.
Enhances body motion range by improving position sense recognition, making it easier to recognize the position of the worn area, thereby increasing the range of motion.
Smart Images

Figure 2025169694000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a band that is worn on the body to aid in positional awareness. [Background technology]
[0002] Various efforts have been made to increase the range of motion of the body. For example, Patent Document 1 discloses a specially shaped taping tape that is applied directly to joints to improve joint movement. Patent Document 2 also discloses clothing that has arched stitching around the joints to allow smooth movement of the skin surface and increase the range of motion. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-18247 [Patent Document 2] International Publication No. 2012 / 140754 Summary of the Invention [Problem to be solved by the invention]
[0004] However, the taping tape in Patent Document 1 requires that the tape be applied to each joint, which can be difficult to do by oneself depending on the location of the joint. In addition, the tape is applied to the skin using an adhesive, which can cause skin irritation.
[0005] Furthermore, the garment of Patent Document 2 requires arch-shaped stitching at each location where an increased range of motion is desired, which results in complex processing and time-consuming manufacturing.
[0006] Therefore, the present invention has been made in consideration of the above-mentioned problems, and aims to provide a position sense assistance band as a body motion range extension device that can be easily manufactured without much effort, is easy to wear, and can increase the body's range of motion. [Means for solving the problem]
[0007] In order to solve the above problems, the position sense assistance band of the present invention is a position sense assistance band made of an elastic material and worn on the human body to assist position sense, and is characterized in that it comprises a band main body which is an area where elasticity is maintained and a reduced elasticity section which is an area where elasticity is reduced, and the extension force required to stretch the reduced elasticity section is more than twice the extension force required to stretch the band main body.
[0008] Here, it is preferable that the band main body and the reduced elasticity portion are constructed by bonding two layers of elastic fabric together, and that the application area ratio of the adhesive that bonds the fabrics together is higher in the reduced elasticity portion than in the band main body.
[0009] The reduced elasticity portion may be configured by overlaying a material having less elasticity than the band main body on the band main body.
[0010] Furthermore, the reduced elasticity portion may be configured with a knitting structure different from that of the band body, thereby adjusting the elongation force in the reduced elasticity portion.
[0011] Furthermore, it is preferable to provide an identifier that indicates that the portion has reduced elasticity.
[0012] In addition, the band body and the reduced elasticity portions may each be provided in multiple pieces, the band body and the reduced elasticity portions may be arranged alternately, and a pair of reduced elasticity portions may be arranged in opposing positions when formed into a ring shape.
[0013] Furthermore, among the multiple reduced elasticity sections, a second reduced elasticity section may be provided which is an area with further reduced elasticity, and when formed into a ring shape, a pair of second reduced elasticity sections may be positioned opposite each other. [Effects of the Invention]
[0014] The position sense assist band according to the present invention makes it easier to recognize the position of the place where it is worn, thereby increasing the range of motion of the body. [Brief explanation of the drawings]
[0015] [Figure 1] 1A and 1B are diagrams illustrating a configuration of a position sense assistance band according to the present embodiment. [Figure 2] 10A and 10B are diagrams illustrating another example of the configuration of the position sense assistance band. [Figure 3] FIG. 10 is a diagram showing the state in which the position sense assistance band is worn. [Figure 4] 1 is a graph showing test results of a finger-to-nose test. [Figure 5] 10 is a graph showing test results of cervical rotation angle. [Figure 6] 10 is a graph showing test results of standing forward bending. [Figure 7] FIG. 10 is a diagram showing test results of standing forward bending. [Figure 8] FIG. 1 is a diagram showing the test contents of shoulder external rotation range of motion. [Figure 9] 10 is a graph showing test results of shoulder external rotation range of motion. [Figure 10] 10 is a graph showing the test results of hip flexion strength. DETAILED DESCRIPTION OF THE INVENTION
[0016] The position sense assist band according to the present invention will be described in detail below.
[0017] The position sense assistance band according to the embodiment of the present invention is a stretchy, circular band that is worn on the head or on the upper arms or thighs, which are parts of the limbs that are closer to the torso. By wearing this position sense assistance band, the range of motion of the body can be easily expanded.
[0018] The position sense assistance band is characterized by being stretchable, but by providing a region of reduced stretchability in part of the annular band and attaching it to the head, upper arm, thigh, chest, etc., the range of motion of the body can be further expanded compared to bands with uniform stretchability.
[0019] Wearing a circular band makes it easier to recognize the position of the area where it is worn, which in turn allows for a wider range of motion. Also, wearing a circular band with a reduced elasticity area makes it even easier to recognize the position of the area where it is worn, which in turn allows for a wider range of motion.
[0020] Humans have position sense (body sensation or body awareness), which is the sense that allows us to recognize where our bodies are and what posture our bodies are in. Position sense allows us to recognize where our bodies are and what posture our bodies are in based on information from muscles, tendons, joint capsules, skin, etc. This position sense provides the brain with the bodily information necessary for movement, and is an essential sense for movement. For example, people with brain diseases, such as stroke patients, have impaired position sense, which makes it difficult for them to move well.
[0021] The position sense assistance band is an elastic, circular band that is worn on the head or a part of the body, such as the upper arm or thigh, which is a part of the limb closest to the torso.By applying some kind of stimulation (in this case, an uncomfortable feeling caused by pressure) to the area where the band is worn, it assists position sense and allows the brain to recognize the position and orientation of the part of the body where the band is worn.
[0022] Furthermore, by providing a portion of the annular band with reduced elasticity that makes it difficult to stretch, and by wearing a band that is characterized by being stretchable, some kind of stimulation is given to a portion of the area where it is worn, making it possible to clearly recognize positional sense in a narrower area.
[0023] FIG. 1 is a diagram showing the configuration of a position sense assistance band according to this embodiment.
[0024] The position sense assistance band 1 is an annular band made entirely of an elastic material, and is composed of a band main body 11 and a reduced elasticity portion 12. The band main body 11 is an area made of an elastic material, that is, an area made while maintaining elasticity, and the reduced elasticity portion 12 is an area made to be less elastic than the band main body 11. The position sense assistance band 1 is arranged so that the band main body 11 and the reduced elasticity portion 12 appear alternately in multiple locations. Figure 1 shows an example of an annular position sense assistance band 1 in which a pair of band main bodies 11 are arranged facing each other, and a pair of reduced elasticity portions 12 are arranged facing each other.
[0025] The stretchable material that makes up band body 11 is, for example, a stretchable fabric, and may be a stretchable tape or a band-shaped rubber. The stretchable material has extensibility (ease of stretching the material) in both the length and width directions. For example, a fabric with a test piece width of 2.5 cm that has a lengthwise stretchability of 150% and a widthwise stretchability of 110% under a load of 1.5 kg can be used. Note that 150% here means that the stretched portion is 150% of its original length, which is 2.5 times the overall length of band body 11.
[0026] The elasticity of the reduced elasticity portion 12 is reduced by reducing the extensibility of the reduced elasticity portion 12 compared to the band body 11. Here, the extensibility of the reduced elasticity portion 12 is reduced so that the extension force of the reduced elasticity portion 12 (the force required to extend the reduced elasticity portion 12) is at least twice the extension force of the band body 11 (the force required to extend the band body 11). There are several possible methods for reducing the extensibility of the reduced elasticity portion 12, that is, for making the reduced elasticity portion 12 less likely to stretch than the band body 11.
[0027] For example, if the position sense assistance band 1 is constructed by bonding two pieces of fabric together, the proportion of adhesive applied to bond the fabrics together (adhesive application area ratio) is made low in the area that constitutes the band main body 11 and high in the area that constitutes the reduced elasticity portion 12. In other words, the density of the bonded areas between the fabrics in the band main body 11 is reduced to ensure stretchability without inhibiting the stretch of the fabric, and the density of the bonded areas in the reduced elasticity portion 12 is increased to restrict the stretch of the fabric and make it less likely to stretch. In this way, the band main body 11 and the reduced elasticity portion 12 can be constructed by changing the density of the bonded areas.
[0028] In addition, the stretchability and stretching force of the less elastic portion 12 can be adjusted by differentiating the knitting structure of the band body 11 from the knitting structure of the less elastic portion 12. In other words, the band body 11 and the less elastic portion 12 may be configured to be less stretchable by changing the knitting structures of each.
[0029] Alternatively, the reduced elasticity portion 12 may be formed by overlapping more layers of fabric than the band body 11, such as by forming the reduced elasticity portion 12 with a double or triple layer of fabric. When using double or triple layers of fabric, the fabrics may be overlapped by bonding or sewing, and the overlapping fabrics may be the same or different fabrics.
[0030] The material to be attached to the area where reduced elasticity portion 12 is to be formed to reduce the extensibility can be a fabric with the same elasticity as band body 11, or a tape, strip-shaped rubber, or film with the same degree of elasticity. Also, a material with less elasticity than band body 11 or a non-elastic material can be used.
[0031] The size of the region of the reduced elasticity portion 12 in the position sense auxiliary band 1 preferably varies depending on the part of the body where the position sense auxiliary band 1 is worn, but it is preferable that the length be approximately 10 to 20% of the circumference of the position sense auxiliary band 1. For example, if the circumference of the position sense auxiliary band 1 is 40 cm, the region should preferably be approximately 3 to 7 cm long. Furthermore, in the width direction, the width should preferably be approximately 30 to 100% of the width of the position sense auxiliary band 1. For example, if the width of the position sense auxiliary band 1 is 3 cm, the width should preferably be approximately 1 to 3 cm. Of course, the circumference and width of the position sense auxiliary band 1 vary depending on the part of the body where the band is worn and the body shape of the wearer. For example, a position sense auxiliary band 1 used on the upper arm should be 2.5 cm wide, and a position sense auxiliary band used on the chest should be 5 cm wide.
[0032] Furthermore, the resistance to stretch of the less elastic part 12 may be adjusted by adjusting the size (perimeter or width) of the area of the less elastic part 12 in the position sense assist band 1.
[0033] FIG. 2 is a diagram showing another example of the configuration of the position sense assistance band.
[0034] The position sense assistance band 2 includes a reduced elasticity portion 22 and a second reduced elasticity portion 23 as portions that are less stretchable than the band main body 21. The reduced elasticity portion 22 and the second reduced elasticity portion 23 have a difference in stretchability, for example, the second reduced elasticity portion 23 is less stretchable than the reduced elasticity portion 22. Methods for making the second reduced elasticity portion 23 less stretchable than the reduced elasticity portion 22 include changing the density of the bonding points or the knitting structure, increasing the number of overlapping fabric layers, and adjusting the size of the area of the reduced elasticity portion 23, as described above. Note that, considering the manufacturing effort and cost, it is preferable to create a difference in stretchability between the reduced elasticity portion 22 and the second reduced elasticity portion 23 by adjusting the area of the reduced elasticity portion 23 by making the perimeter or width of the reduced elasticity portion 23 larger than that of the reduced elasticity portion 22.
[0035] The position sense assistance band 1 configured in this manner is used by being worn on the head, for example, as a head band. FIG. 3 is a diagram showing the position sense assistance band worn on the head. As shown in FIG. 3, when the position sense assistance band 1 is worn on the head, the reduced elasticity portions 12, which are areas where stretchability has been reduced by lowering the extensibility, are positioned on the front and back sides of the head. This allows the wearer of the position sense assistance band 1 to more easily recognize their position sense and increase the range of motion of their body. In this case, it is preferable to attach an identifier indicating that the reduced elasticity portion 12 is the reduced elasticity portion 12 so that the wearer can recognize the position of the reduced elasticity portion 12 on the position sense assistance band 1. The identifier may be a mark of some kind, or the color of the fabric in that portion may be changed, for example.
[0036] Examples will be described below.
[0037] The accuracy of position sense can be checked with a test called the finger-nose test. The finger-nose test checks whether a person can accurately touch their nose with their index finger while keeping their eyes closed and their arms horizontal with their elbows extended. Being able to touch accurately indicates that they have an accurate grasp of their own body. This is done from three directions: right, front, and left, and accuracy is indicated by the number of times they can accurately touch the tip of their nose. Closing their eyes measures their ability to recognize where their body is in space without relying on vision, in other words, their position sense.
[0038] This finger-nose test was carried out for the following Examples 1, 2 and Comparative Example 1, and the position sense was evaluated in each case.
[0039] In Example 1, a position sense support band for head wear was created by adhesively bonding two pieces of two-way fabric with a lengthwise stretch of 150% and a widthwise stretch of 110% under a 1.5 kg load. The adhesive was applied in dots with a diameter of approximately 2 mm. The adhesive was applied to a 58% area in the area where stretch was reduced (reduced stretch area), while the adhesive was applied to the remaining area (main body of the band) at a 14% area in the center and a 40% area at the edge of the fabric to prevent peeling. The circumference of the band was 40 cm, and the length of the reduced stretch area was 5 cm. The width of the band was 3 cm. Two reduced stretch areas were created on the position sense support band, facing each other. The force (stretching force) required to stretch the reduced stretch area by 50% was 3447 gf, while the stretching force of the other area was 995 gf, making the stretching force of the reduced stretch area approximately 3.5 times that of the other areas. In Example 1, the stretching force required to stretch the area with reduced elasticity (reduced elasticity section) is approximately 3.5 times the stretching force required to stretch the other part (band body), but in experiments the effect was confirmed even when the difference was two times.
[0040] The created head position sense assistance band was worn so that the reduced elasticity parts were positioned in front and behind the head, and a finger-to-nose test was performed.
[0041] Example 2 is similar to Example 1 in most respects, except that the position sense assistance band is divided into four equal parts, and reduced elasticity portions are created in four locations on the front, back, left and right sides.
[0042] The created head position sense assistance band was worn so that the reduced elasticity parts were positioned at the front, back, left and right of the head, and a finger-to-nose test was performed.
[0043] As Comparative Example 1, a finger-to-nose test was carried out without wearing anything on the head.
[0044] The results of the finger-nose test are shown in Figure 4 and Table 1.
[0045] [Table 1]
[0046] The finger-to-nose test was conducted on 16 subjects. As shown in Figure 4, when the head position sense assistance band was worn, the number of correct answers was significantly higher in both Example 1 and Example 2 than in Comparative Example 1, where nothing was worn on the head. In other words, it was shown that wearing the head position sense assistance band with a low-elasticity area makes it easier to recognize the position sense of the head.
[0047] Looking at the results for each subject shown in Table 1, subjects D, L, M, and N scored 0 or 1 when nothing was worn on their heads, indicating very poor position sense. However, they commented that wearing the head position sense assistance bands of Examples 1 and 2 made it easier to understand the position of their heads and made it easier to imagine the position of the tip of their nose. This also demonstrates the effect of wearing the head position sense assistance bands.
[0048] Wearing a head position sense support band will improve head position sense, and the second test will show how this affects movement.
[0049] The second test was a cervical rotation angle test, in which the range of motion of the head rotating to the right (turning the face to the right: kinematically, this is called right cervical rotation) was measured with the subject in a seated position with the trunk fixed. In the cervical rotation angle test, the position facing forward is defined as 0 degrees, and the position facing straight to the side is defined as 90 degrees.
[0050] In addition to Example 1 and Comparative Example 1 in the finger-nose test described above, as Comparative Example 2, a commercially available sweatband with the same strength around the entire circumference was worn.
[0051] The test was carried out in the order of Comparative Example 1, Example 1, Comparative Example 2, and Comparative Example 1.
[0052] To demonstrate that there is no influence of bias in the trial order, one last test is conducted on Comparative Example 1. The last Comparative Example 1 is referred to as Comparative Example 1 (second time).
[0053] FIG. 5 is a graph showing the test results of the cervical rotation angle.
[0054] There were nine subjects. In both Example 1 and Comparative Example 2, the cervical rotation angle increased significantly compared to Comparative Example 1, where nothing was worn. In other words, it was proven that wearing a band-like device on the head makes the sense of position easier to understand and makes exercise easier. In other words, it has been shown that being able to recognize the position of the head when exercising allows the body to move with peace of mind. Since movement is performed while constantly receiving sensory feedback, it is thought that stimulation of the head widened the range of head movement. However, the statistical value (the degree of difference between Comparative Example 1 "without wearing" and Examples 1 and 2) was 5.72 for Example 1 and 3.99 for Comparative Example 2, which was significantly larger for Example 1, indicating that Example 1 was more effective. In other words, it can be said that sensory stimulation that stimulates position sense is more easily and effectively stimulated by varying the intensity than by a constant stimulation.
[0055] Furthermore, taking into consideration the bias of the measurement order, Example 1 showed a significantly higher value when compared with the results of Comparative Example 1 "not worn" (second measurement). The commercially available head sweatband of Comparative Example 2 tended to be higher than "not worn" (second measurement), but the difference was not significant. This also shows that Example 1 of the present invention is effective when worn, and is more effective than commercially available products.
[0056] Next, a third test was conducted to demonstrate the effect of wearing the head position sense support band on whole-body movements that include the head, rather than just the movement of the head itself. The motor task in the third test was forward bending in a standing position. Forward bending in a standing position involves the head facing forward and then moving toward the feet, which causes a large change in head position. For this reason, it is thought that head position sense has a large effect on the movement.
[0057] The test was carried out in the order of Comparative Example 1, Example 1, Comparative Example 2, and Comparative Example 1.
[0058] To demonstrate that there is no influence of bias in the trial order, one last test is conducted on Comparative Example 1. The last Comparative Example 1 is referred to as Comparative Example 1 (second time).
[0059] FIG. 6 is a graph showing the test results of standing forward bending.
[0060] The position of the sole of the foot was set to 0, and the direction below the sole of the foot was set to positive.
[0061] In both Example 1 and Comparative Example 2, the amount of forward bending was significantly increased compared to Comparative Example 1, which was not worn. In exercise in which the head moves significantly like this, awareness of head position becomes more important. It is thought that the amount of exercise increased because it became easier to recognize the position of the head. However, the statistical value (the degree of difference between Comparative Example 1, "not worn," and Examples 1 and 2) was 5.93 for Example 1 and 3.56 for Comparative Example 2, indicating that Example 1 had a much greater effect.
[0062] Furthermore, compared with the results of the second measurement of Comparative Example 1, Example 1 showed significantly higher values. Comparative Example 2 tended to show higher values than the second measurement of Comparative Example 1, but the difference was not significant. From this, it can be said that Example 1 of the present invention is effective when worn, and is more effective than Comparative Example 2, which has uniform elongation.
[0063] Tests conducted so far have proven that position sense assistance bands with two or four areas of reduced elasticity are more effective in assisting position sense and increasing the range of motion of the body than bands with no areas of reduced elasticity at all, but tests involving forward bending in a standing position have shown that a similar effect can be achieved even when there is only one area of reduced elasticity.
[0064] FIG. 7 shows the test results of forward bending in a standing position. Example 3 is generally similar to Examples 1 and 2, and the position sense support band had only one reduced elasticity section, and the test was conducted by wearing it on the head so that the reduced elasticity section was located on the forehead.
[0065] Example 4 has the same configuration as Example 3, and the test was carried out by wearing it on the head so that the reduced elasticity portion was located at the back of the head.
[0066] As shown in Figure 7, the body bends better in Examples 3, 4, and 2 than in Comparative Example 1. The value for Comparative Example 1 in Figure 6 is 5 cm. Expressed numerically in accordance with Figure 6, the results for Example 3 in Figure 7 are 10.9 cm, Example 4 is 8.1 cm, and Example 2 is 8.8 cm. Example 3 shows better results than Example 2, but Example 4 shows slightly worse results than Example 2. Our testing results show that there are more appropriate locations for the reduced-elasticity areas depending on the direction of body movement. To sharpen position sense, it is preferable to wear the position sense support band so that the reduced-elasticity areas are positioned to compress the appropriate areas. However, in actual exercise situations, since the body moves in various directions, it is preferable to wear a band with two or four reduced-elasticity areas, as in Examples 1 and 2. However, for training, the effect is maximized when using a band with a single reduced-elasticity area, as in Examples 3 and 4.
[0067] Tests were also conducted on the position sense assistance band when worn on different parts of the body.
[0068] FIG. 8 shows the test contents for the range of motion of the shoulder external rotation.
[0069] In the test for the range of motion of the shoulder external rotation, the position sense assist band of Example 5 was attached to the vicinity of the upper arm, the arm was bent 90 degrees, and the forearm was rotated upward from a state where the forearm and upper arm were parallel to the ground, and the maximum rotation angle was measured. Note that Example 5 is generally the same as Example 2, except that the length of the band was 22 cm.
[0070] Figure 9 is a graph showing the test results for the range of motion of the shoulder external rotation. As shown in Figure 9, when no band was worn, the range of motion was 119.3 degrees, and when the position sense assist band of Example 5 was worn near the upper arm, the range of motion was 123.8 degrees.
[0071] By wearing the position sense assistance band of Example 5 near the upper arm, partial pressure is generated in the upper arm, making it easier to be aware of the pressure, and it is thought that this allows the range of motion of the arm to be used to the fullest.
[0072] As Example 6, a position sense assistance band was created with the same configuration as Example 2, except that the band width was 5 cm. It was attached to the proximal thigh and a test was conducted to measure hip flexion muscle strength. FIG. 10 is a graph showing the test results of hip flexion strength.
[0073] The hip flexion strength when no band was worn was 202.3 N·m, and when the position sense support band of Example 6 was worn, the hip flexion strength was 222.8 N·m, indicating that the thighs could be moved better.
[0074] The position sense assistance band according to the present invention has been described above based on an embodiment, but the present invention is not limited to this. Various design modifications are possible as long as the object of the present invention can be achieved and the gist of the invention is not deviated from, and all of these are included within the scope of the present invention.
[0075] For example, in the above embodiment, the position sense assistance band was described as a circular band, but it does not have to be circular. For example, it may be a linear tape with hook-and-loop fasteners attached to both ends, and the hook-and-loop fasteners may be bonded together to form a circular shape when worn. In this case, the bonded portion of the hook-and-loop fastener may function as the elasticity-reducing portion. [Industrial Applicability]
[0076] The position sense assistance band according to the present invention is suitable as a body motion range extension device for increasing the range of body motion. [Explanation of symbols]
[0077] 1,2 Position sense support band 11,21 Band body 12,22 Reduced elasticity 23 2nd elasticity reduction part
Claims
1. A position sense assistance band made of an elastic material and worn on a human body to assist position sense, A band body that is an area in which elasticity is maintained; A reduced elasticity portion which is a region where elasticity is reduced, The stretching force required to stretch the reduced elasticity portion is at least twice as large as the stretching force required to stretch the band body. A position sense assistance band characterized by:
2. The band body and the reduced elasticity portion are configured by bonding two layers of elastic fabric together, The adhesive that bonds the fabrics together has a higher application area ratio in the reduced elasticity portion than in the band body.
2. The position sense assistance band according to claim 1.
3. The reduced elasticity portion is formed by layering a material having less elasticity than the band body onto the band body.
2. The position sense assistance band according to claim 1.
4. The reduced elasticity portion is formed with a knitting structure different from that of the band body, thereby adjusting the elongation force in the reduced elasticity portion.
2. The position sense assistance band according to claim 1.
5. Further, an identifier indicating that the elasticity is reduced is provided.
2. The position sense assistance band according to claim 1.
6. A plurality of the band bodies and the reduced elasticity sections are provided, the band bodies and the reduced elasticity sections are alternately arranged, and a pair of the reduced elasticity sections are arranged at positions facing each other when the band body is formed into a ring shape.
2. The position sense assistance band according to claim 1.
7. Among the plurality of reduced elasticity sections provided, a second reduced elasticity section is provided which is a region in which elasticity is further reduced, When formed into a ring shape, a pair of second reduced elasticity sections are arranged at opposing positions.
7. The position sense assistance band according to claim 6.
Citation Information
Patent Citations
Taping tape and tape member
JP2017018247A
Garment
WO2012140754A1