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Patent · US10431730B2 · B2 · US

Dielectric elastomer driving mechanism

(11) Publication number
US10431730B2
(21) Application number
15/362,461
(22) Filing date
2016-11-28
(30) Priority date
2015-11-30
(43) Publication date
2019-10-01
(45) Date of grant
2019-10-01
(51) IPC
B25J 15/00; H02N 2/04; H10N 30/20; H10N 30/80; H10N 30/87
(52) CPC
  • H01L Semiconductor devices; electric solid state devices not otherwise provided for: 41/09, 41/047, 41/0986
  • B25J Manipulators; chambers provided with manipulation devices: 15/0009
  • H02N Electric machines not otherwise provided for: 2/046
  • H10N Electric solid-state devices not otherwise provided for: 30/20, 30/206, 30/87
(72) Inventors
Seiki Chiba; Mikio WAKI; Yoshinori Tanaka; Kuniyoshi Okamoto; Kazuya Nagase; Naoaki Tsurumi
(54) Title
Dielectric elastomer driving mechanism
(57) Abstract

A dielectric elastomer driving mechanism includes a driver, a follower, and a power transmitter. The driver includes a dielectric elastomer driving element made up of a dielectric elastomer layer and two electrode layers sandwiching the dielectric elastomer layer. The driver also includes a tension maintaining element maintaining, in a no-voltage state, the dielectric elastomer driving element in a state in which tension occurs, and includes an output portion capable of moving along with the expanding or contracting of the dielectric elastomer driving element. The follower includes a following element actuating in accordance with a driving force inputted. The power transmitter is connected to the output portion of the driver for transmitting a driving force of the driver to the follower.

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Claims (10)

  1. A dielectric elastomer driving mechanism comprising: a driver that includes a dielectric elastomer driving element having a dielectric elastomer layer and a pair of electrode layers sandwiching the dielectric elastomer layer, a tension maintaining element maintaining, in a potential-free state in which no voltage is applied to the pair of electrode layers, the dielectric elastomer driving element in a state in which tension occurs, and an output portion moving along with expanding or contracting of the dielectric elastomer driving element; a follower that includes a following element actuating in accordance with a driving force inputted; and a power transmitter that is connected to the output portion of the driver and transmits a driving force of the driver to the follower, wherein the power transmitter includes a wire that causes the follower to actuate in a first specific direction, and the follower includes an auxiliary elastic portion exerting an auxiliary elastic force that causes the following element to actuate in a second specific direction that is different from the first specific direction.
  2. The dielectric elastomer driving mechanism according to claim 1, wherein the driver comprises a pair of the dielectric elastomer driving elements, and the pair of dielectric elastomer driving elements are connected in series so as to pull each other in the potential-free state.
  3. The dielectric elastomer driving mechanism according to claim 2, wherein the pair of dielectric elastomer driving elements each have a conical frustum shape having a small opening and a large opening that are spaced apart from each other in an axial direction.
  4. The dielectric elastomer driving mechanism according to claim 3, wherein the pair of dielectric elastomer driving elements are disposed such that the axial directions of the respective elements coincide and the small openings of the respective elements face each other, the tension maintaining element relatively fixes positions in the axial directions of the large openings of the pair of dielectric elastomer driving elements, and the output portion is fixed to the small openings of the pair of dielectric elastomer driving elements.
  5. The dielectric elastomer driving mechanism according to claim 1, wherein the tension maintaining element exhibits an elastic force causing tension to occur in the dielectric elastomer driving element, and the output portion is fixed to one end of the tension maintaining element.
  6. The dielectric elastomer driving mechanism according to claim 1, wherein the dielectric elastomer driving element expands more to actuate the following element in the second specific direction with increasing of voltage applied to the pair of electrode layers.
  7. The dielectric elastomer driving mechanism according to claim 1, wherein the driver includes a plurality of output portions and a plurality of groups of dielectric elastomer driving elements that are connected to the plurality of output portions, and the driving mechanism comprises: a plurality of power transmitters that are connected to the plurality of output portions, respectively; and a plurality of followers to which driving force is transmitted via the plurality of power transmitters, respectively.
  8. The dielectric elastomer driving mechanism according to claim 7, wherein the dielectric elastomer driving elements of the groups each have a conical frustum shape having a small opening and a large opening that are spaced apart from each other in an axial direction, and in each group, a pair of dielectric elastomer driving elements have axial directions that coincide and small openings that face each other, and the plurality of output portions are each fixed to the small openings of the pair of dielectric elastomer driving elements.
  9. The dielectric elastomer driving mechanism according to claim 8, wherein the groups of dielectric elastomer driving elements are disposed in series so that the axial directions of the elements are parallel with each other.
  10. The dielectric elastomer driving mechanism according to claim 9, wherein the groups of dielectric elastomer driving elements are eccentric to each other as viewed in the axial direction.

Description

1. Field of the Invention

The present invention relates to a dielectric elastomer driving mechanism.

2. Description of Related Art

In certain applications, dielectric elastomer driving mechanisms are used for actuating following elements (“followers”) by the driving force of a driving source. Examples of such driving mechanisms include robot arms of robots utilized in the field of industrial manufacturing, electric artificial arms, and the like. An electric motor is a typical example of the driving source used widely. JP-A-2015-37713 discloses a conventional electric artificial arm in which an electric motor is used as the driving source.

Specifically, the conventional artificial arm disclosed in JP-A-2015-37713 includes a plurality of following elements (having an articulated structure for actuating similarly to the fingers of a human body) and a plurality of electric motors for moving the following elements. In addition, the conventional arm includes a mechanical device such as a link mechanism to convert the rotational driving forces of the electric motors to e.g. reciprocatory movement for actuating the following elements. By controlling the rotation of each individual electric motor, the following elements can be actuated independently so as to simulate the movement of real fingers.

However, the above-mentioned mechanical device for rotation-to-reciprocation conversion is made up of various components, thereby having a complicate structure. Also, if the electric motors are disposed close to the following elements simulating fingers, the weight of a portion corresponding to the human hand will increase.

Citations (4)

  • US20070200468A1
  • US20110040408A1
  • US20150342818A1
  • JP2015037713A
Record as JSON
{
  "publication_number": "US10431730B2",
  "country": "US",
  "kind": "B2",
  "title": "Dielectric elastomer driving mechanism",
  "abstract": "A dielectric elastomer driving mechanism includes a driver, a follower, and a power transmitter. The driver includes a dielectric elastomer driving element made up of a dielectric elastomer layer and two electrode layers sandwiching the dielectric elastomer layer. The driver also includes a tension maintaining element maintaining, in a no-voltage state, the dielectric elastomer driving element in a state in which tension occurs, and includes an output portion capable of moving along with the expanding or contracting of the dielectric elastomer driving element. The follower includes a following element actuating in accordance with a driving force inputted. The power transmitter is connected to the output portion of the driver for transmitting a driving force of the driver to the follower.",
  "claims": [
    "1. A dielectric elastomer driving mechanism comprising: a driver that includes a dielectric elastomer driving element having a dielectric elastomer layer and a pair of electrode layers sandwiching the dielectric elastomer layer, a tension maintaining element maintaining, in a potential-free state in which no voltage is applied to the pair of electrode layers, the dielectric elastomer driving element in a state in which tension occurs, and an output portion moving along with expanding or contracting of the dielectric elastomer driving element; a follower that includes a following element actuating in accordance with a driving force inputted; and a power transmitter that is connected to the output portion of the driver and transmits a driving force of the driver to the follower, wherein the power transmitter includes a wire that causes the follower to actuate in a first specific direction, and the follower includes an auxiliary elastic portion exerting an auxiliary elastic force that causes the following element to actuate in a second specific direction that is different from the first specific direction.",
    "2. The dielectric elastomer driving mechanism according to claim 1, wherein the driver comprises a pair of the dielectric elastomer driving elements, and the pair of dielectric elastomer driving elements are connected in series so as to pull each other in the potential-free state.",
    "3. The dielectric elastomer driving mechanism according to claim 2, wherein the pair of dielectric elastomer driving elements each have a conical frustum shape having a small opening and a large opening that are spaced apart from each other in an axial direction.",
    "4. The dielectric elastomer driving mechanism according to claim 3, wherein the pair of dielectric elastomer driving elements are disposed such that the axial directions of the respective elements coincide and the small openings of the respective elements face each other, the tension maintaining element relatively fixes positions in the axial directions of the large openings of the pair of dielectric elastomer driving elements, and the output portion is fixed to the small openings of the pair of dielectric elastomer driving elements.",
    "5. The dielectric elastomer driving mechanism according to claim 1, wherein the tension maintaining element exhibits an elastic force causing tension to occur in the dielectric elastomer driving element, and the output portion is fixed to one end of the tension maintaining element.",
    "6. The dielectric elastomer driving mechanism according to claim 1, wherein the dielectric elastomer driving element expands more to actuate the following element in the second specific direction with increasing of voltage applied to the pair of electrode layers.",
    "7. The dielectric elastomer driving mechanism according to claim 1, wherein the driver includes a plurality of output portions and a plurality of groups of dielectric elastomer driving elements that are connected to the plurality of output portions, and the driving mechanism comprises: a plurality of power transmitters that are connected to the plurality of output portions, respectively; and a plurality of followers to which driving force is transmitted via the plurality of power transmitters, respectively.",
    "8. The dielectric elastomer driving mechanism according to claim 7, wherein the dielectric elastomer driving elements of the groups each have a conical frustum shape having a small opening and a large opening that are spaced apart from each other in an axial direction, and in each group, a pair of dielectric elastomer driving elements have axial directions that coincide and small openings that face each other, and the plurality of output portions are each fixed to the small openings of the pair of dielectric elastomer driving elements.",
    "9. The dielectric elastomer driving mechanism according to claim 8, wherein the groups of dielectric elastomer driving elements are disposed in series so that the axial directions of the elements are parallel with each other.",
    "10. The dielectric elastomer driving mechanism according to claim 9, wherein the groups of dielectric elastomer driving elements are eccentric to each other as viewed in the axial direction."
  ],
  "description_excerpt": "1. Field of the Invention\n\nThe present invention relates to a dielectric elastomer driving mechanism.\n\n2. Description of Related Art\n\nIn certain applications, dielectric elastomer driving mechanisms are used for actuating following elements (“followers”) by the driving force of a driving source. Examples of such driving mechanisms include robot arms of robots utilized in the field of industrial manufacturing, electric artificial arms, and the like. An electric motor is a typical example of the driving source used widely. JP-A-2015-37713 discloses a conventional electric artificial arm in which an electric motor is used as the driving source.\n\nSpecifically, the conventional artificial arm disclosed in JP-A-2015-37713 includes a plurality of following elements (having an articulated structure for actuating similarly to the fingers of a human body) and a plurality of electric motors for moving the following elements. In addition, the conventional arm includes a mechanical device such as a link mechanism to convert the rotational driving forces of the electric motors to e.g. reciprocatory movement for actuating the following elements. By controlling the rotation of each individual electric motor, the following elements can be actuated independently so as to simulate the movement of real fingers.\n\nHowever, the above-mentioned mechanical device for rotation-to-reciprocation conversion is made up of various components, thereby having a complicate structure. Also, if the electric motors are disposed close to the following elements simulating fingers, the weight of a portion corresponding to the human hand will increase.",
  "cpc": [
    "H01L 41/09",
    "B25J 15/0009",
    "H01L 41/047",
    "H01L 41/0986",
    "H02N 2/046",
    "H10N 30/20",
    "H10N 30/206",
    "H10N 30/87"
  ],
  "ipc": [
    "B25J 15/00",
    "H02N 2/04",
    "H10N 30/20",
    "H10N 30/80",
    "H10N 30/87"
  ],
  "inventors": [
    "Seiki Chiba",
    "Mikio WAKI",
    "Yoshinori Tanaka",
    "Kuniyoshi Okamoto",
    "Kazuya Nagase",
    "Naoaki Tsurumi"
  ],
  "filing_date": "2016-11-28",
  "publication_date": "2019-10-01",
  "grant_date": "2019-10-01",
  "priority_date": "2015-11-30",
  "application_number": "US-201615362461-A",
  "family_id": "58777385",
  "cited_by_count": 1,
  "citations": [
    "US20070200468A1",
    "US20110040408A1",
    "US20150342818A1",
    "JP2015037713A"
  ]
}

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