Prosthetic arm
The prosthetic hand design addresses the size and wear issues of existing prosthetics by employing bevel gears and a connecting mechanism for efficient and adjustable finger movements, enhancing usability and durability for diverse amputation cases.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-07
- Publication Date
- 2026-03-25
AI Technical Summary
Existing prosthetic hands, such as those described in Patent Document 1, are often too large for small hands and suffer from friction-related wear and stiffness issues due to their sliding mechanisms, limiting their effectiveness and applicability to infants and individuals with severe amputations or congenital defects.
A prosthetic hand design utilizing bevel gears and a connecting mechanism that allows for flexible and efficient movement of prosthetic fingers via an asymmetric four-bar linkage, reducing friction and wear while accommodating various amputation scenarios through modular design and actuator assistance.
The prosthetic hand provides a small, efficient, and durable solution that allows for precise and adjustable grasping motions, suitable for infants and individuals with varying amputation levels, with reduced wear and tear and improved safety through the use of bevel gears and a modular design.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a prosthetic hand.
Background Art
[0002] For example, when a part of the upper limb is lost due to an accident or a disease, a prosthetic hand is worn to compensate for it. Prosthetic hands are classified into decorative prosthetic hands aimed only at restoring appearance, working prosthetic hands specialized for specific work, active prosthetic hands that enable arbitrary movements by using other parts of the body via a harness, etc. Among these, decorative prosthetic hands cannot perform any operation, and when functional restoration is desired, working prosthetic hands or active prosthetic hands are used.
[0003] In an active prosthetic hand, making the most of the degrees of freedom of movement of the remaining joints is the most basic approach for improving the convenience of the user.
[0004] By the way, in upper limb amputations, the most common are amputations or defects of the fingers or palm. In such amputations or defects of the palm part, the movement function and sensory function of the joints are often left, and there are various possibilities for functional reconstruction. Many cases of attempts to utilize the remaining functions of the fingers have been reported mainly by the Hand Surgery Society and the Microsurgery Society. However, the progress of surgical treatment in recent years has been remarkable. In particular, in cases of amputation by a sharp cutting tool or the like, a high survival rate has been achieved in the recovery surgery of joining the amputated piece.
[0005] On the other hand, in the case of a severe amputation state such as abrasion damage, the way of reconstruction is still far off. Functional restoration by a prosthetic hand should be an effective option in such cases, but the technology of active prosthetic hands is lagging behind, and at present, it can hardly cope with various cases. Also, in the case of congenital finger defects, functional improvement using a prosthetic hand is desired.
[0006] To address these issues, Patent Document 1 discloses a prosthetic hand having a pinching mechanism that includes a slider mechanism consisting of a slider axis and a slider, and that can perform a pinching motion by driving the thumb-side link and the fourth-finger-side link by abduction, adduction, and flexion / extension of the thumb CM joint. [Prior art documents] [Patent Documents]
[0007] [Patent Document 1] Japanese Patent Publication No. 2015-146839 [Overview of the project] [Problems that the invention aims to solve]
[0008] According to the prosthetic hand with a pinching mechanism disclosed in Patent Document 1, a pinching action can be performed by rotating and flexing the thumb CM joint toward the fourth finger, according to the intention of the person wearing the prosthetic hand, thereby driving the four fingers toward the thumb. However, because the pinching mechanism in Patent Document 1 is relatively large, it may be difficult to accommodate small hands, such as those of infants. Furthermore, since the pinching mechanism in Patent Document 1 is a sliding pair in which the slider shaft slides against the elongated hole of the slider, there is a risk of stiffness or wear due to friction, and countermeasures are necessary.
[0009] This invention has been made in view of the problems of the prior art, and aims to provide a small, highly efficient prosthetic hand. [Means for solving the problem]
[0010] To solve the above problems, one representative prosthetic hand of the present invention is a prosthetic hand that is attached to a hand with missing fingers, The first bevel gear, A first artificial finger extending radially with respect to the first bevel gear and rotating together with the first bevel gear, A second bevel gear that meshes with the first bevel gear, A second artificial finger extending radially with respect to the second bevel gear and rotating together with the second bevel gear, A shaft support portion that rotatably supports the first bevel gear and the second bevel gear, The device has a connecting mechanism that connects the second prosthetic finger to the remaining finger, The flexion and extension movements of the finger are transmitted to the second prosthetic finger via the aforementioned connecting mechanism. . [Effects of the Invention]
[0011] According to the present invention, it is possible to provide a small, highly efficient prosthetic hand. Other issues, configurations, and effects not mentioned above will be clarified by the following description of the embodiments. [Brief explanation of the drawing]
[0012] [Figure 1] Figure 1 shows the prosthetic hand according to the first embodiment in a state where it is attached to the hand. [Figure 2] Figure 2 is a diagram illustrating a model of a prosthetic arm according to the first embodiment. [Figure 3] Figure 3 is a diagram illustrating the movement of the prosthetic arm, showing it from a side view. [Figure 4] Figure 4 is a diagram illustrating the movement of the prosthetic arm, showing it from a frontal view. [Figure 5] Figure 5 is a diagram similar to Figure 1, showing a prosthetic hand of the second embodiment. [Modes for carrying out the invention]
[0013] (First embodiment) The first embodiment of the present invention will be described in detail below. Figure 1 shows the prosthetic hand 10 according to the first embodiment, attached to the hand HD. Note that the hand HD is assumed to have only the ring finger F4 and little finger F5 remaining. Both the ring finger F4 and little finger F5 are capable of flexion, extension, and abduction / adduction movements.
[0014] In FIG. 1, the prosthetic hand 10 includes a socket 20, a drive device 30, a first prosthetic finger 41 corresponding to the thumb, a second prosthetic finger 42 corresponding to the index finger, a third prosthetic finger 43 corresponding to the middle finger, and a connecting mechanism 50. The second prosthetic finger 42 and the third prosthetic finger 43 that are parallel to each other are connected at their bases and can move integrally. Also, as shown by the dotted line, a decorative cover member 60 made of silicon is provided so as to cover the first prosthetic finger 41, the second prosthetic finger 42, and the third prosthetic finger 43.
[0015] The socket 20 is, for example, in the form of a belt wound around the palm of the hand HD and serves as a support portion for the drive device 30.
[0016] The drive device 30 includes a single copper wire 31, a first bevel gear 32, and a second bevel gear 33.
[0017] The wire 31 is bent into a substantially U shape, and both ends are fixed to the socket 20 on the palm of the hand HD. Also, the wire 31 has a cylindrical first shaft support portion 31a that extends straight toward the space between the first prosthetic finger 41 and the second prosthetic finger 42, and a cylindrical second shaft support portion 31b that extends straight in parallel with the bases of the second prosthetic finger 42 and the third prosthetic finger 43. By bending the wire 31 so as to form an acute angle, the first shaft support portion 31a and the second shaft support portion 31b are formed so as to sandwich the acute angle. By using the wire 31, the drive device 30 can be formed at a low cost and simply.
[0018] The first bevel gear 32 is formed by coaxially connecting a bevel gear portion 32a and a cylindrical support portion 32b, and has a through hole 32c that penetrates in the axial direction. The through hole 32c is rotatably fitted to the first shaft support portion 31a of the wire 31. Also, in the first shaft support portion 31a, an annular first locking portion 31c is attached in the vicinity of the support portion 32b to prevent the axial movement of the first bevel gear 32.
[0019] The support portion 32b is connected via the first connector 41a to the base of the first artificial finger 41 which extends radially from the first bevel gear 32, thereby enabling the support portion 32b and the first artificial finger 41 to rotate integrally.
[0020] The second bevel gear 33 consists of a bevel gear portion 33a and a cylindrical support portion 33b, which are coaxially connected, and has a through hole 33c that penetrates them in the axial direction. The through hole 33c is rotatably fitted into the second shaft support portion 31b of the wire 31. In addition, an annular second locking portion 31d is attached to the second shaft support portion 31b near the support portion 33b, preventing the axial movement of the second bevel gear 33.
[0021] The support portion 33b is connected via the second connector 42a to the base of the second prosthetic finger 42 which extends radially from the second bevel gear 33, thereby enabling the support portion 33b, the second prosthetic finger 42, and the third prosthetic finger 43 to rotate integrally.
[0022] The bevel gear portion 32a of the first bevel gear 32 and the bevel gear portion 33a of the second bevel gear 33 are meshed in a way that enables power transmission. The axis X1 of the first bevel gear 32 and the axis X2 of the second bevel gear 33 intersect at an intersection angle θ. The intersection angle θ is less than 90 degrees, and preferably 60 to 80 degrees.
[0023] The connecting mechanism 50 includes a ring member 51 attached to the second joint of the ring finger F4, and a connecting member 52 that connects the outer circumference of the ring member 51 to the base of the third prosthetic finger 43.
[0024] Figure 2 is a diagram illustrating a model of the prosthetic hand 10 according to the first embodiment. As shown in Figure 2, the hand HD and the connecting mechanism 50 constitute an asymmetric four-bar linkage mechanism LK. The asymmetric four-bar linkage mechanism LK consists of the following four links. (1) Link LK1: Connects the intersection (joint) J1 between the center of the ring finger F4 and the ring member 51, and the intersection (joint) J2 between the ring member 51 and the connecting member 52. (2) Link LK2: Connects joint J2 to the intersection (joint) J3 between the second prosthetic finger 42 and the second connector 42a. (3) Link LK3: Connects joint J3 and MP joint J4 of ring finger F4. (4) Link LK4: Connects joint J4 and joint J1.
[0025] Joints J1 to J4 each pivotally connect two links. Link LK3 consists of a part of the prosthetic hand 10 and the hand HD, and link LK4 consists of the ring finger F4.
[0026] Figures 3 and 4 are diagrams illustrating the movement of the prosthetic hand 10. First, when a person wearing the prosthetic hand 10 bends the ring finger F4 from the extended position shown in Figure 1, the force is transmitted to the third prosthetic finger 43 and the second prosthetic finger 42 via the ring member 51 and the connecting member 52, and the third prosthetic finger 43 and the second prosthetic finger 42 also flex toward the palm side of the hand HD in conjunction with the ring finger F4.
[0027] When the third prosthetic finger 43 and the second prosthetic finger 42 flex, the second bevel gear 33 rotates around the second shaft support 31b via the second connector 42a. As the second bevel gear 33 rotates, the first bevel gear 32 that meshes with it rotates in the opposite direction around the first shaft support 31a. As a result, the first prosthetic finger 41 flexes toward the palm side of the hand HD via the first connector 41a. This operation is shown in Figure 3(a).
[0028] This flexion movement brings the tips of the second prosthetic finger 42 and the third prosthetic finger 43 closer to those of the first prosthetic finger 41, allowing objects to be grasped using these prosthetic fingers.
[0029] Conversely, when a person wearing the prosthetic hand 10 returns the ring finger F4 from a bent position to the extended position shown in Figure 1, force is transmitted in the opposite direction to that described above, causing the third prosthetic finger 43, the second prosthetic finger 42, and the first prosthetic finger 41 to extend so that their tips move apart from each other, allowing the person to release the object they are holding. This action is shown in Figure 3(b).
[0030] When pinching an object with the thumb and index finger, simply bringing the thumb and index finger together in a two-dimensional manner along the same plane may not be sufficient to grasp the object effectively. In contrast, according to this embodiment, by using a first bevel gear 32 and a second bevel gear 33 that mesh with each other, the first prosthetic finger 41, the second prosthetic finger 43, and the third prosthetic finger 43 can be made to move toward and apart from the object not in a straight line, but along intersecting planes. Such a mechanism is called an opposing rotation mechanism. By providing an opposing rotation mechanism in the prosthetic hand 10, the action of pinching an object can be easily achieved.
[0031] Furthermore, according to this embodiment, the flexion and extension movements of the remaining ring finger F4 allow the first prosthetic finger 41, the second prosthetic finger 42, and the third prosthetic finger 43 to be flexed and extended simultaneously. Therefore, even though the assistance of an actuator is not required, the wearer of the prosthetic hand 10 can perform a pinching motion arbitrarily according to their intentions. Clearly, if only the thumb and index finger are missing, the flexion and extension of the middle finger can be used to drive the first prosthetic finger 41 and the second prosthetic finger 42.
[0032] Furthermore, according to this embodiment, since power is transmitted using a rolling coupler consisting of a first bevel gear 32 and a second bevel gear 33, friction loss is reduced compared to a sliding coupler, enabling highly efficient operation and suppressing wear and tear on parts. In addition, because the drive unit 30 has fewer parts, a small and lightweight prosthetic arm 10 can be realized, making it particularly suitable for use by infants and the like. Moreover, by manufacturing the metal parts of the prosthetic arm 10 using materials such as stainless steel, the risk of corrosion can be suppressed, ensuring safety for the human body and contributing to environmental protection.
[0033] Furthermore, by modularizing the prosthetic hand 10 of this embodiment, it is possible to replace the movement of all missing fingers, not just the thumb. For example, by changing the shape of the second connector 42a, it can also accommodate cases where the ring finger or little finger is missing.
[0034] By the way, in the prosthetic hand 10 of this embodiment, in a simple flexion and extension movement of the ring finger F4, the first prosthetic finger 41, the second prosthetic finger 42, and the third prosthetic finger 43 move along the same trajectory, so the position of the second prosthetic finger 42 that the first prosthetic finger 41 contacts is always the same. For this reason, depending on the object being grasped, it may not be possible to grasp it properly. Therefore, in the prosthetic hand 10 of this embodiment, the position of contact of the first prosthetic finger 41 is made variable by utilizing the lateral movement of the ring finger F4.
[0035] Referring to Figure 2, the prosthetic hand 10 has an asymmetric four-bar linkage mechanism LK as described above. For example, when the ring finger F4, which constitutes link LK4, is brought closer to the third prosthetic finger 43 in Figure 2, link LK4 rotates clockwise (in the direction of arrow A) around joint J4, and as a result joint J1 pushes link LK1 to the right, link LK2, which is connected via joint J2, rotates to the right. As a result, the second prosthetic finger 42 and the third prosthetic finger 43, which are connected to the connecting member 52, rotate clockwise (in the direction of arrow B) around joint J3. In other words, the lateral movement of the ring finger F4 is converted into rotational movement of the second prosthetic finger 42 and the third prosthetic finger 43.
[0036] When the ring finger F4 is bent while keeping it close to the third prosthetic finger 43, the first prosthetic finger 41 moves closer to the second prosthetic finger 42. This allows the first prosthetic finger 41 and the second prosthetic finger 42 to grasp an object. This action is shown in Figure 4(a).
[0037] In contrast, if the ring finger F4 is moved away from the third prosthetic finger 43 in Figure 2, the link LK4 rotates counterclockwise around the joint J4, and the second prosthetic finger 42 and the third prosthetic finger 43, which are connected to the connecting member 52, rotate counterclockwise around the joint J3.
[0038] Therefore, when the ring finger F4 is bent while keeping it away from the third prosthetic finger 43, the first prosthetic finger 41 moves closer to the third prosthetic finger 43. This allows the first prosthetic finger 41 and the third prosthetic finger 43 (or the three prosthetic fingers including the second prosthetic finger 42) to grasp an object. This action is shown in Figure 4(b).
[0039] The wearer of the prosthetic hand 10 can arbitrarily move the ring finger F4 and the third prosthetic finger 43 closer or further apart, thereby allowing the first prosthetic finger 41 to be brought closer to any position between the second prosthetic finger 42 and the third prosthetic finger 43, enabling a grasping motion in accordance with the wearer's will. Furthermore, by adjusting, for example, the length and position of the connecting member 52, the amount of rotational movement of the second prosthetic finger 42 and the third prosthetic finger 43 in relation to the lateral movement of the ring finger F4 can be finely adjusted.
[0040] (Second embodiment) Figure 5 is a diagram similar to Figure 1, showing a prosthetic hand 10' of a second embodiment. The prosthetic hand 10' of this embodiment can be used when the ring finger F4 cannot be flexed or extended, or when the ring finger and little finger are also missing.
[0041] In this embodiment, the prosthetic arm 10' has an actuator 70 that rotates the first bevel gear 32 instead of a coupling mechanism 50. Furthermore, in order to connect the actuator 70 to the first bevel gear 32, the first shaft support portion 31a of the wire 31 terminates within the first bevel gear 32. The other configurations are the same as in the first embodiment, so redundant explanations are omitted.
[0042] According to this embodiment, by rotating the first bevel gear 32 in one direction via the actuator 70 in response to power supply from a power source (not shown), the first prosthetic finger 41 can be brought closer together with the second prosthetic finger 42 and the third prosthetic finger 43. Conversely, by rotating the first bevel gear 32 in the other direction, the first prosthetic finger 41 can be brought further apart with the second prosthetic finger 42 and the third prosthetic finger 43. The actuator 70 may be configured to rotate the second bevel gear 33 instead of the first bevel gear 32. [Explanation of symbols]
[0043] 10,10': Prosthetic arm, 20: Socket, 30: Drive mechanism, 31: Wire, 32: First bevel gear, 33: Second bevel gear, 41: First prosthetic finger, 42: Second prosthetic finger, 43: Third prosthetic finger, 50: Connecting mechanism, 51: Ring member, 52: Connecting member, 60: Cover member, 70: Actuator, F4: Ring finger, F5: Little finger HD Hand
Claims
1. A prosthetic hand that is attached to a hand with missing fingers, The first bevel gear, A first artificial finger extending radially with respect to the first bevel gear and rotating together with the first bevel gear, A second bevel gear that meshes with the first bevel gear, A second artificial finger extending radially with respect to the second bevel gear and rotating together with the second bevel gear, A shaft support portion that rotatably supports the first bevel gear and the second bevel gear, The device has a connecting mechanism that connects the second prosthetic finger to the remaining finger, The flexion and extension movements of the finger are transmitted to the second prosthetic finger via the aforementioned connecting mechanism. A prosthetic arm characterized by the following features.
2. The link mechanism includes the aforementioned connecting mechanism and the aforementioned fingers, The lateral movement of the finger is converted into rotational movement of the second prosthetic finger via the link mechanism. The prosthetic hand according to feature 1.
Citation Information
Patent Citations
Mechanical-transmission-type prosthetic arm
CN108784892A
Self-contained multifunctional hand prosthesis
EP2653137A1
artificial hand
JP2009519797A
Knob mechanism using palm residual function
JP2015146839A