EP1594175A2

Vibratory motor and method of making the same

Abstract

A single piezoelectric (22) is excited at a first frequency to cause two vibration modes in a resonator (24) producing a first elliptical motion (100a) in a first direction at a selected contacting portion of the resonator that is placed in frictional engagement with a driven element (42) to move the driven element in a first direction. A second frequency excites the same piezoelectric to cause two vibration modes of the resonator producing a second preferably elliptical motion (100b) in a second direction at the selected contacting portion to move the driven element in a second direction. The piezoelectric is preloaded in compression by the resonator. Walls of the resonator are stressed past their yield point to maintain the preload. Specially shaped ends on the piezoelectric help preloading. The piezoelectric can send or receive vibratory signals through the driven element to or from sensors to determine the position of the driven element relative to the piezoelectric element or resonator. Conversely, the piezoelectric element can receive vibration or electrical signals passed through the driven element to determine the position of the driven element. The resonator is resiliently urged against the driven element, or vice versa. Plural resonators can drive common driven elements.

EP1594175A2, drawing sheet 1
Sheet 1 of 44

Term

Term ended

Projected expiry passed 21 March 2021, 5.5 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

133 claims: 76 independent, 57 dependent

  1. 1
    A vibratory system for moving a driven element, comprising:a vibratory element having a driving element in driving communication with a resonator that has a selected contacting portion located to engage the driven element during use of the system, the driving element and resonator being configured to move the selected contacting portion in a first elliptical motion when the resonator is excited to simultaneously resonate in at least two vibration modes by a first signal at a first frequency provided to the driving element, the resulting motion being of sufficient amplitude to move the driven element when the driven element and selected contacting portion are maintained in sufficient contact to achieve a desired motion of the driven element, the at least two vibration modes being selected so that at least one does not include a pure longitudinal or bending mode of the resonator to produce the first elliptical motion.
  2. 6
    The vibratory system of anyone of Claims 1 - 5, wherein the driving element comprises a piezoelectric element.
  3. 8
    The vibratory system of anyone of Claims 1 - 7, wherein the vibration mode produces a node on the resonator element at the first frequency, and further comprising a resilient mounting connected to the vibratory element at the node and located to resiliently urge the vibratory element against the driven element during operation of the system.
  4. 9
    The vibratory system of anyone of Claims 1 - 7, wherein the vibration mode produces a node on the vibratory element and further comprising a resilient mounting connected to the vibratory element at a location other than the node and located to resiliently urge the vibratory element against the driven element during operation of the system.
  5. 10
    The vibratory system of anyone of Claims 7 - 9, wherein the first elliptical motion has a major and minor axis, and the second elliptical motion has a major and minor axis, with the ratio of the major to minor axes being in the range of about 3:1 to 150:1.
  6. 12
    The vibratory system of anyone of Claims 1 - 11, wherein there are a plurality of vibrating elements each having a selected contacting portion resiliently urged against a common driven element.
  7. 13
    The vibratory system of anyone of Claims 7 - 12, wherein the selected contacting portion is in contact with the driven element and the piezoelectric element generates a vibratory signal detected by a sensor in communication with the driven element, and where the time between the generation and receipt of the signal is representative of the position of the driven element relative to the vibrating element or wherein the selected contacting portion is in contact with the driven element and the piezoelectric element receives a vibratory signal provided by a device in communication with the driven element, and where the time between the generation and receipt of the signal is representative of the position of the driven element relative to the vibrating element.
  8. 14
    The vibratory system of anyone of Claims 7 - 13, wherein the piezoelectric element and resonator are configured to cause a different selected contacting portion to move in a second preferably elliptical motion when excited to simultaneously resonate preferably in at least two vibration modes by a second signal at a second frequency provided to the piezoelectric element.
  9. 15
    The vibratory system of anyone of Claims 7 - 14, wherein the piezoelectric element and resonator are configured to cause a different selected contacting portion to move in a third preferably elliptical motion when excited to simultaneously resonate preferably in at least two vibration modes by a third signal at a third frequency provided to the piezoelectric element.
  10. 16
    The vibratory system of anyone of Claims 1 - 15, wherein the selected contacting portion is in contact with the driven element and moving with a defined motion that causes the driven element to vibrate in a manner that creates a plurality of nodes along a length of the driven element, the vibration causing the driven element to move so as to place the selected contact portion at the nearest node.
  11. 17
    A vibratory system for moving a driven element, the vibratory system excluding the driven element and comprising:a vibratory element having a driving element comprising one of a piezoelectric element and a magnetorestrictive element in driving communication with a resonator that has a selected contacting portion positioned to drivingly engage the driven element during use of the vibratory system;a resilient element having one end connected to a base and an opposing end connected to the vibratory element to resiliently urge the selected contacting portion against the driven element during use of the vibratory system, at least one of the vibratory element and resilient element being configured to cause the selected contacting portion to move in a first elliptical motion when the vibratory element is excited to simultaneously resonate in preferably at least two vibration modes by a first signal at a first frequency provided to the driving element, the elliptical motion occurring without engagement with the driven element, the motion being of sufficient amplitude to move the driven element during operation of the system, first elliptical motion having a major axis inclined at an angle β 1 with respect to a tangent along a direction of motion of a driven element at the selected contacting portion, with the angle β 1 being between about 5-85° when the selected contacting portion is drivingly engaging the driven element during operation of the system.
  12. 22
    The vibratory system of anyone of Claims 18 - 21, wherein the resonator has a plurality of side walls defining a recess in which the piezoelectric element is held in compression, the side walls being stressed past their yield strength.
  13. 25
    A vibratory system for moving an object, comprising:a driven element having an engaging portion thereon and mounted on a support, the driven element being movable in at least a first direction;a vibratory element having a driving element that directly converts electrical energy into physical motion, the driving element being in driving communication with a resonator that has a selected contacting portion positioned to drivingly engage the driven element;a resilient element having one end connected to a base and an opposing end connected to one of the vibratory element or the support for the driven element in order to resiliently maintain the selected contacting portion and the engaging portion of the driven element in sufficient contact during operation of the system to move the driven element in the predetermined manner;wherein at least one of the vibratory element and resilient element is configured to cause the selected contacting portion to move in a first elliptical motion when the vibratory element is excited to simultaneously resonate preferably in at least two vibration modes by a first signal at a first frequency provided to the driving element, the motion being sufficient to move the driven element in the predetermined manner, and wherein at least one of the vibratory element and resilient element is configured to cause the selected contacting portion to move in a second preferably elliptical motion when excited to simultaneously resonate in at least two vibration modes by a second signal at a second frequency differing from the first frequency by at least 1 kHz applied to the driving element so as to cause a different motion of the driven element than occurring with the first frequency.
  14. 28
    The vibratory system of anyone of Claims 25 - 27, wherein the opposing end of the resilient member is connected to the support for the driven element or the opposing end of the resilient member is connected to the vibratory element.
  15. 29
    The vibratory system of anyone of claims Claim 25 - 28, wherein the first elliptical motion has a major and minor axis, and the second preferably elliptical motion has a major and minor axis, with the ratio of the major and minor axes being in the range of about 3:1 to 150:1.
  16. 30
    The vibratory system of Claim anyone of claims Claim 25 - 29, wherein the resilient element is configured to cause the selected contacting portions to move in the second preferably elliptical motion.
  17. 31
    The vibratory system of anyone of claims Claim 25 - 30, wherein the resonator has a plurality of side walls defining a recess in which the piezoelectric element is held in compression, the side walls being stressed past their yield strength.
  18. 33
    The vibratory system of anyone of claims Claim 25 - 32, wherein the resonator comprises an elongated member with the selected contacting portion being located on an edge of a distal end of the member.
  19. 34
    The vibratory system of anyone of claims 25 - 33, wherein there are at least two vibratory elements each having a selected contacting portion resiliently in contact with the driven element.
  20. 35
    A vibratory system having at least one source of vibration drivingly connected to vibrate a resonator to amplify the vibration, the resonator having a selected contacting portion located to be engaged with a driven element to move the driven element in at least a predetermined direction, the vibratory system comprising:a configuration of resonator and driven element that cooperate to cause the selected contacting portion to move in a first elliptical path when excited by a first electrical signal, the elliptical path having a major axis and minor axis, the major axis being inclined at an angle β 1 with respect to a tangent to the driven element at the selected contacting portion in the direction of motion of the driven element, the angle β 1 being between about 5-85°, preferably 15-25°, more preferably 65-75°.
  21. 39
    The vibratory system of anyone of Claims 35 - 38, wherein the source of vibration comprises a single piezoelectric element or a plurality of piezoelectric elements each connected to different portions of the resonator.
  22. 40
    The vibratory system of anyone of Claims 35 - 39, wherein the source of vibration is contained in an opening in the resonator, and wherein the opening is defined by at least two opposing side walls that are curved.
  23. 42
    The vibratory system of anyone of Claims 35 - 41, further comprising a resilient support connected to the vibratory element.
  24. 44
    A vibratory element having a source of vibration vibrating a resonator to amplify the vibration, the resonator having a selected contacting portion located to be engaged with a driven element to move the driven element in a predetermined direction during use of the vibratory element, the selected contacting portion moving in a first elliptical path when the source of vibration is excited by a first electrical signal at a first frequency, the elliptical path having a major and minor axis which are not aligned with a predominant axis of the vibrating element by a defined angle that varies by less than about 10° , preferably less than 5°, when the first frequency varies by about 200 Hz or more on either side of the first frequency.
  25. 47
    The vibratory element of anyone of Claims 44 - 46, wherein the vibratory element is connected to a resilient support located to resiliently urge the selected contacting portion against a driven element during use of the vibratory element.
  26. 49
    The vibratory element of anyone of Claims 44 - 48, wherein the elliptical path has a major axis and minor axis, with one of the major or minor axis being inclined at an angle β with respect to a tangent to the driven element at the selected contacting portion and in the direction of motion of the driven element, the angle β being between about 5-85°.
  27. 50
    The vibratory element of anyone of Claims 44 - 49, further comprising a resilient element supporting the vibratory element and contributing to the elliptical motion of the selected contacting portion.
  28. 51
    A vibratory component for moving a driven element, the vibratory component comprising:a piezoelectric vibration source mounted to a resonator to form a vibrating element;the vibrating element having a selected contacting portion located to engage the driven element during use, the selected contacting portion moving in a first elliptical path having a major axis and minor axis when the vibration source is excited by a first electrical signal that causes at least two vibration modes that are superimposed to create the first elliptical path, the first electrical signal being amplified sufficiently to cause at least one off-resonance vibration mode to produce a motion of the selected contacting portion having sufficient amplitude that the resulting elliptical path can move the driven element during use.
  29. 54
    A vibratory component for moving a driven element in a first direction, the vibratory element comprising:a vibration source mounted to a resonator to form a vibrating element;the vibrating element having a selected contacting portion located to engage the driven element during use, the selected contacting portion moving in a first elliptical path having a major axis and minor axis when the vibration source is excited by a first electrical signal that causes at least two vibration modes that are superimposed to create the first elliptical path, at least one of the vibration modes is other than a pure longitudinal mode and other than a pure bending mode, the elliptical motion having a major axis and minor axis, one of which is aligned with a tangent at the selected contacting portion that is aligned with the first direction.
  30. 57
    A vibratory system for moving a driven element, comprising:a driven element movable in at least a first direction;a vibration source, preferably comprising a piezoelectric element, mounted to a resonator to form a vibrating element;the vibrating element having a selected contacting portion located to engage and move the driven element, the selected contacting portion moving in a first elliptical path, a longitudinal axis of the vibrating element being inclined at an angle α to a tangent to the driven element in the first direction at the selected contacting portion, the angle α being between about 10° and 80° when the selected contacting portion is drivingly engaging the driven element;a signal generator providing a first signal at a first frequency to the vibrating element to cause the elliptical motion;a resilient mount connected to the vibrating element.
  31. 59
    A vibratory system for moving a driven element, comprising:a driven element moving in a first and second direction;a vibratory element, preferably comprising at least one piezoelectric element, in driving communication with a resonator that has a selected contacting portion positioned to drivingly engage the driven element during use of the vibratory system to move the driven element in a first and second direction, the vibratory element moving the selected contacting portion in a first and second preferably elliptical paths each having a major and minor axis, at least one of the major and minor axes not coinciding with the direction of motion resulting from the elliptical path with which the axis is associated, the vibrating element resonating when excited by a first signal having a first frequency to cause the first elliptical path to move the driven element in the first direction, and further resonating when excited by a second signal having a second frequency to cause the second preferably elliptical path to move the driven element in the second direction, each signal being communicated to the vibratory element through the same electrical connection to the vibratory element.
  32. 62
    The vibratory system of anyone of claims Claim 59 - 61, further comprising a resilient element having one end connected to a base and an opposing end connected to the vibratory element to resiliently urge the selected contacting portion against the driven element during use of the vibratory system.
  33. 63
    A method of configuring a vibratory system for moving a driven element that is supported to allow the driven element to move in a predetermined manner, the system having a selected contacting portion of a vibratory element periodically engaging the driven element to move the driven element, the vibratory element being caused to vibrate by a vibration source that converts electrical energy directly into physical motion, the vibratory element comprising the vibration source mounted in a resonator with the selected contacting portion being on the resonator, comprising:resiliently urging one of the selected contacting portion and the driven element against the other to place the selected contacting portion in resilient contact with the driven element;defining a desired elliptical motion of the selected contacting portion to produce a desired movement of the driven element;configuring at least one of the vibratory element and apparatus performing the resilient urging in order to cause the resonator to vibrate in at least two modes of sufficient amplitude and phase that the selected contacting portion moves in an elliptical path when the vibratory source is excited by a first signal at a first frequency provided to the vibration source, the elliptical path being sufficiently close to the desired elliptical motion to achieve an acceptable motion of the driven element, at least one of the at least two vibration modes being selected to not include a pure longitudinal or pure bending mode of the resonator to produce the first elliptical motion;and orienting the vibratory element so that the elliptical path aligns with the driven element by an amount sufficient to achieve the desired motion of the driven element.
  34. 64
    A method of configuring a vibratory system for moving a driven element that is supported to allow the driven element to move in a predetermined manner, the system having a selected contacting portion of a vibratory element periodically engaging the driven element to move the driven element, the vibratory element being caused to vibrate by a vibration source, preferably comprising a piezoelectric element that converts electrical energy directly into physical motion, the vibratory element comprising the vibration source mounted in a resonator with the selected contacting portion being on the resonator, comprising:resiliently urging one of the selected contacting portion and the driven element against the other to place the selected contacting portion in resilient contact with the driven element;defining a desired first elliptical motion of the selected contacting portion to produce a desired movement of the driven element;configuring at least one of the vibratory element and apparatus performing the resilient urging in order to cause the resonator to vibrate in at least two modes of sufficient amplitude and phase that the selected contacting portion moves in a first elliptical path when the vibratory source is excited by a first signal at a first frequency provided to the vibration source, the elliptical path being sufficiently close to the desired first elliptical motion to achieve an acceptable motion of the driven element;orienting the vibratory element so that the first elliptical path aligns with the driven element by an amount sufficient to achieve the desired motion of the driven element;defining a second desired elliptical motion of the selected contacting portion to produce a second desired movement of the driven element;configuring at least one of the vibratory element and the apparatus achieving the resilient urging in order to cause the resonator to vibrate in two modes of sufficient amplitude and phase that the selected contacting portion moves in a second preferably elliptical path when the vibratory source is excited by a second signal at a second frequency provided to the vibration source, the second preferably elliptical path being sufficiently close to the second desired elliptical motion to achieve an acceptable second movement of the driven element;and electrically connecting a signal generator to the vibratory element, the signal generator producing the first and second signal, each signal being communicated to the vibratory element through the same electrical connection to the vibratory element, the selected contacting portion moving the driven element in the first direction when the vibratory element is driven by the first signal, and moving the driven element in the second direction when the vibratory element is driven by the second signal, and further moves in the first direction when a single sinusoidal signal of a first frequency is applied, and can also move in the first direction when the first frequency is dominant and superimposed with plural sinusoidal signals of different frequencies, the second signal either not occurring simultaneously with the first signal or being of substantially different amplitude if it occurs simultaneously with the first signal.
  35. 67
    The method of anyone of Claims 64 - 66, further comprising placing the piezoelectric element in compression by stressing walls of the resonator past their yield point but not past their ultimate strength point.
  36. 68
    The method of anyone of Claims 64 - 67, further comprising interposing the resilient element between a base and the vibratory element to resiliently urge the vibratory element against the driven element during excitation at the first frequency.
  37. 69
    The method of anyone of Claims 64 - 68, wherein the resonator has a longitudinal axis and the driven element has a longitudinal axis, and further comprising placing the two axes at an angle of between about 10° and 80° when the selected contacting portion is drivingly engaging the driven element.
  38. 70
    The method of anyone of Claims 64 - 69, comprising using the piezoelectric element to generate a vibratory signal and detecting that vibratory signal by a sensor placed in communication with the driven element, and using the time between the generation and receipt of the vibratory signal to determine the position of the driven element relative to the vibrating element.
  39. 72
    The method of anyone of Claims 64 - 71, further comprising configuring the driven element to vibrate in a manner that creates a plurality of nodes along a length of the driven element with the vibration causing the driven element to move so as to place the selected contact portion at the nearest node and exciting the piezoelectric element at a frequency that causes the vibration to create the plurality of nodes.
  40. 73
    A method for moving objects using vibratory motors having a vibration source placed in a resonator, comprising;moving a selected contacting portion of a resonator in a first elliptical motion in a first direction by configuring one of the resonator or a resilient support for the resonator in order to simultaneously vibrate in at least two modes to cause the first elliptical motion of the selected contacting portion when a first electrical signal at a first frequency is applied to the vibration source;selecting at least one of the two vibration modes to be off-resonance, the first electrical signal being either selected to have sufficient amplitude and phase, or being amplified sufficiently, to cause the at least one off-resonance vibration mode to produce a predetermined motion of the selected contacting portion having sufficient amplitude that the resulting elliptical path can move the driven element during use;moving the selected contacting portion in a second motion in a second direction different from the first direction by configuring one of the resonator or the resilient support for the resonator in order to simultaneously vibrate in at least two modes to cause the second motion of the selected contacting portion when a second electrical signal at a second frequency is applied to the vibration source;and electrically connecting a signal generator to the vibratory element, the signal generator producing the first and second signals, each signal being communicated to the vibratory element through the same electrical connection to the vibratory element, the selected contacting portion moving the driven element in the first direction when the vibratory element is driven by the first signal, and moving the driven element in the second direction when the vibratory element is driven by the second signal, and further moving in the first direction when a single sinusoidal signal of a first frequency is applied, and can also move in the first direction when the first frequency is dominant and superimposed with plural sinusoidal signals of different frequencies, the second signal either not occurring simultaneously with the first signal or being of substantially different amplitude if it occurs simultaneously with the first signal.
  41. 76
    The method of anyone of Claims 73 - 75, further comprising selecting a piezoelectric element for the vibration source and placing that piezoelectric element in compression by press-fitting it into an opening in the resonator.
  42. 78
    A method for moving a driven element by a vibratory element having a predominant axis and having a selected contacting portion located to be engaged with the driven element to move the driven element along a driven path during use, the selected contacting portion moving in a first elliptical path, comprising:selecting the elliptical path to have a major and minor axis which are not aligned with a predominant axis of the vibrating element by a defined angle that varies by less than about 10° when the first frequency varies by about 200 Hz or more on either side of the first frequency;configuring at least one of the vibratory element and a resilient support for the vibratory element to generate the selected elliptical path;and exciting the source of vibration, preferably a piezoelectric element by a first electrical signal at a first frequency selected to generate the elliptical path.
  43. 81
    The method of anyone of Claims 78 - 80, further comprising providing a vibratory element to have a rod-shape with the selected contacting portion being located at a distal end of the rod-shaped vibrating element.
  44. 82
    A method for moving a driven element by a vibratory element having a source of vibration, comprising a piezoelectric element, that converts electrical energy directly to physical motion, the vibratory element having a predominant axis and having a selected contacting portion located to be engaged with the driven element at an angle α selected to move the driven element along a driven path during use, comprising:exciting the vibratory element with a first electrical signal to vibrate at a first frequency in a first vibration mode having sufficient motion along a first axis that the selected contacting portion moves along a first path to cause an impact drive of the driven element, at least one of a resonator for the vibrating element and a resilient mounting system for the vibrating element being provided and configured to achieve the first path;exciting the vibratory element with a second electrical signal to vibrate at a second frequency in a second vibration mode having sufficient motion along a second axis that the selected contacting portion moves along a second path to move the driven element, at least one of the resonator and resilient mounting system for the vibrating element being provided and configured to achieve the second path and a signal generator electrically connected to the source of vibration, the signal generator producing a first and second signal, each signal being communicated to the vibration source through the same electrical connection to the source of vibration, the selected contacting portion moving the driven element in a first direction when the source of vibration is driven by the first signal, and moving the driven element in a second direction when the source of vibration is driven by the second signal, and further moves in the first direction when a single sinusoidal signal of a first frequency is applied, and can also move in the first direction when the first frequency is dominant and superimposed with plural sinusoidal signals of different frequencies, the second signal either not occurring simultaneously with the first signal or being of substantially different amplitude if it occurs simultaneously with the first signal.
  45. 84
    A vibratory system for moving a driven element, the system having a source of vibration that converts electrical energy directly into physical motion and causing a resonator with a selected contacting portion to drivingly engage a driven element, the selected contacting portion maintaining sufficient contact with the driven element to move the driven element during operation of the system, the system comprising:a signal generator electrically connected to the source of vibration, the signal generator producing a first and second signal, each signal being communicated to the vibration source through the same electrical connection to the source of vibration, the selected contacting portion moving the driven element in a first direction when the source of vibration is driven by the first signal, and moving the driven element in a second direction when the source of vibration is driven by the second signal, and further moves in the first direction when a single sinusoidal signal of a first frequency is applied, and can also move in the first direction when the first frequency is dominant and superimposed with plural sinusoidal signals of different frequencies, the second signal either not occurring simultaneously with the first signal or being of substantially different amplitude if it occurs simultaneously with the first signal.
  46. 87
    A vibratory apparatus for moving a driven element, comprising:a vibration source, preferably at least one piezoelectric element, that converts electrical energy directly into physical motion, and a resonator having an opening defined by at least two opposing side walls which are stressed beyond their elastic limit to hold the vibration element in compression, the vibration source being within that opening so that the vibration element is held in compression by the resonator under a defined preload, the vibration source causing the resonator to vibrate in at least a first mode to cause a selected contacting portion on the resonator to move in a predetermined manner.
  47. 90
    The apparatus of anyone of Claims 87 - 89, wherein the piezoelectric element has at least two opposing edges that are inclined and located to engage edges of the opening to make it easier to press-fit the piezoelectric element into the opening while reducing damage to the piezoelectric element.
  48. 91
    The apparatus of anyone of Claims 87 - 89, wherein the piezoelectric element has at least two opposing edges that have surfaces substantially parallel to the abutting walls defining the opening, and an inclined surface extending therefrom to a contacting surface abutting one of the walls, the contacting surface exerting the preload on the piezoelectric element to place the piezoelectric element in compression.
  49. 92
    The apparatus of anyone of Claims 87 - 91, wherein the opening in the resonator is defined by at least two opposing edges that are inclined and located to make it easier to press-fit the piezoelectric element into the opening.
  50. 93
    The apparatus of anyone of Claims 87 - 92, wherein the first mode is excited by a first electrical signal applied to the piezoelectric element that results in the selected contacting portion moving in an elliptical motion of sufficient amplitude to move a driven element in a first direction when the apparatus is engaged with the driven element during use of the apparatus.
  51. 94
    The apparatus of anyone of Claims 87 - 93, wherein the resonator is exited by a second electrical signal applied to the piezoelectric element that results in the selected contacting portion moving in a second preferably elliptical motion of sufficient amplitude to move a driven element in a second direction when the apparatus is engaged with the driven element during use of the apparatus.
  52. 95
    The apparatus of anyone of Claims 87 - 94, wherein the selected contacting portion is resiliently placed in contact with a driven element that is constrained to move in a predetermined manner and caused to move by the selected containing portion engaging the surface.
  53. 96
    The apparatus of anyone of Claims 87 - 95, further comprising a second resonator having a second opening defined by at least two opposing side walls which are stressed beyond their elastic limit, and a second vibration source that converts electrical energy directly into physical motion, the second vibration source being press-fit within that second opening so the second resonator holds the second vibration source in compression under a defined preload, the vibration source being placed in a position to cause the second resonator to vibrate in at least a first resonant mode to cause a selected contacting portion on the second resonator to move in a predetermined manner, the first and second resonators being arranged so the selected contacting portion of each resonator drivingly engages the same driven element.
  54. 97
    A piezoelectric apparatus for moving a driven element, comprising:a resonator having a longitudinal axis with an opening partially defined by two side walls on opposing sides of the longitudinal axis and two opposing end walls on the longitudinal axis, a piezoelectric element held in compression by the opposing end walls, each of the side walls being stressed beyond its elastic limit to hold the piezoelectric element in compression, the resonator having a selected contacting portion which moves in a first preferably elliptic motion when the piezoelectric element is excited by a first electrical signal.
  55. 101
    A method of placing a piezoelectric element in compression in a resonator, the resonator having end walls and side walls defining an opening sized to receive and place the piezoelectric element in compression, comprising:increasing the distance between opposing end walls enough to allow the piezoelectric element to be forced between the end walls with a force that by itself could not force the piezoelectric element between the end walls in the original state of the opening, and thereby placing the piezoelectric element in compression while also stressing the side walls beyond their elastic limit.
  56. 104
    The method of anyone of Claims 101 - 103, wherein the side walls are curved.
  57. 105
    The method of anyone of Claims 101 - 104, comprising interposing a resilient mount for the piezoelectric element between the piezoelectric element and one of the end walls.
  58. 106
    The method of anyone of Claims 101 - 105, wherein the resonator has a longitudinal axis passing through the opening with the side walls being on opposing sides of that axis and the end walls on the longitudinal axis.
  59. 107
    A piezoelectric element configured to be press-fit into an opening in a resonator, the opening being defined by side walls located on opposing sides of a longitudinal axis through the opening and separated by a first dimension, and opposing end walls located on the longitudinal axis and separated by a second dimension, comprising:a piezoelectric element having a first dimension that is smaller than the first dimension of the opening and having a second dimension larger than the second dimension of the opening and selected to stress the side walls beyond their elastic limit when the piezoelectric element is inserted into the opening, the piezoelectric element having inclined edges corresponding in location to edges of the end walls when the piezoelectric element is aligned to be inserted into the opening.
  60. 109
    A resonator for use with a piezoelectric actuator, the resonator having a continuous walled, externally accessible opening sized to receive a piezoelectric element and hold the element in compression, the opening being defined in part by opposing side walls that are curved.
  61. 112
    The resonator of anyone of Claims 109 - 111, wherein the curved side walls have a rectangular cross section.
  62. 113
    The resonator of anyone of Claims 109 - 112, wherein the opening comprises opposing end walls on a longitudinal axis of the opening, the side walls being on opposing sides of the longitudinal axis.
  63. 114
    The resonator of anyone of Claims 109 - 113, further comprising a piezoelectric element located in the opening, the piezoelectric element being sized relative to the opening to stress the side walls past their elastic limit.
  64. 115
    The resonator of anyone of Claims 109 - 114, further comprising a resilient support element interposed between, and held by compression between, the piezoelectric element and one wall defining the opening.
  65. 116
    A piezoelectric driver apparatus for controlling the operation of a vibrating element having a mechanical resonator, apparatus comprising:a vibrating element having an inherent capacitance;at least one switching element allowing the application of a predetermined signal;at least one electrical resonator driver circuit driving the vibrating element, wherein the driver circuit is electrically coupled to and activated by the switching element;at least one inductive coil electrically coupled to the vibrating element to form an electric resonator together with the capacitance of the vibrating element so the signal excites the driver circuit at a predetermined frequency, the coil being either mounted to the vibratory element or mounted to a common support with the vibratory element.
  66. 119
    The apparatus of anyone of Claims 116 - 118, wherein the same electrical conductor used to form the coil also connects the piezoelectric element to the driver circuit.
  67. 120
    A driver apparatus in combination with a vibrating element having a piezoelectric element vibrating the mechanical resonator with a selected contacting portion located to engage and move a driven element in a first direction during use of the vibrating apparatus, the piezoelectric element having an inherent capacitance, the combination comprising:at least one control element;a piezoelectric resonator driver circuit having a plurality of unidirectional electrical gates to drive the piezoelectric element, the driver circuit being electrically coupled to and controlled by the control element;the piezoelectric element being electrically coupled to and paired with one of the unidirectional gates;and at least one electromagnetic storage element electrically coupled to the piezoelectric element, wherein the electromagnetic storage element forms an electric resonator together with the capacitance of the vibrating element.
  68. 123
    The combination of anyone of Claims 120 - 122, wherein the driver apparatus resonates at a modulated predetermined first resonant frequency selected to cause the vibrating element to cause the selected contacting portion to move in the first elliptical motion with sufficient amplitude to move the driven element in the first direction when the selected contacting portion engages the driven element.
  69. 124
    The combination of anyone of Claims 120 - 123, wherein the driver apparatus resonates at a modulated predetermined second resonance frequency selected to cause the vibrating element to cause the selected contacting portion to move in a second preferably elliptical motion with sufficient amplitude to move a driven element in a second direction when the selected contacting portion engages the driven element.
  70. 125
    The combination of anyone of Claims 120 - 124, further comprising a resistor electrically coupled with the inductor and piezoelectric element and gate element to maintain an input voltage to the piezoelectric element within predetermined operating parameters.
  71. 126
    The combination of anyone of Claims 120 - 125, wherein the diode is coupled to a resistor in an orientation to prevent a negative voltage in the piezoelectric element.
  72. 127
    A method for controlling the operation of a vibrating element having a piezoelectric element driving a mechanical resonator, the piezoelectric element being driven by an electrical signal, comprising:placing a control element in electrical communication with the piezoelectric element and an inductor to alternate the electric signal between the inductor and piezoelectric element, the piezoelectric element providing a capacitance to function as a switched resonance L-C circuit so the electrical signal can resonantly drive the vibrating element at a first frequency;and selecting the first frequency and configuring the vibrating element to cause a selected contacting portion of the vibrating element to move in a first elliptical path with sufficient amplitude to move a driven element in a first direction when the selected contacting portion engages the driven element.
  73. 130
    The method of anyone of Claims 127 - 129, wherein the inductor and piezoelectric element provide a capacitance to function as a switched resonance L-C circuit so that a second electrical signal can resonantly drive the vibrating element at a second frequency, the second frequency selected in conjunction with the configuration of the vibratory element and its mounting to cause the selected contacting portion of the vibrating element to move in a second preferably elliptical path with sufficient amplitude to move the driven element in a second direction when the selected contacting portion engages the driven element.
  74. 131
    The system, element, component or method of anyone of claims 7 - 11, 13 - 15, 19 - 34, 36 - 38, 48 - 56, 58 - 62, ,64 - 76 or 82 - 83, wherein the first and second frequencies differ by at least 2,5 kHz.
  75. 132
    The system, element, component or method of anyone of claims 1 - 90, wherein the elliptical motion has a major and minor axis, with the ratio of the major to minor axis being larger than 30:1.
  76. 133
    The system, element, component or method of anyone of claims 19, 20, 22-24, 48-50, 59-62, 64-72, 73, 82-83, 84-86, 94-96, 124-126, 130-131, wherein the first and second direction of motion of the driven element are opposite.
Independent claims76