ORTHOGONALLY-OPTIMIZED VIBRATION ISOLATION
20190383350 ยท 2019-12-19
Inventors
Cpc classification
F16F2230/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/1011
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2228/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vibration isolation device for optimally decoupling shear forces that are orthogonal to the principal direction of isolation from microvibrations. A pivoting load support element is free to pivot about a pivot point in response to shear forces, with optimal isolation from coupling to the principal direction of vibration isolation. A friction free bearing for small motion is provided to respond to the forces perpendicular to the principal direction of vibration isolation. An internal load support plate associated with the pivoting element is supported by equalizing springs and is damped by an active actuator driven according to a sensor on the internal load support plate. Adjustment points, such as screws, adjust the pivoting element with respect to the fixed pivot point.
Claims
1. A device for isolating a payload object from vibration in a principal direction and for decoupling the payload object from vibration orthogonal to the principal direction, the device comprising: a base plate, for contact with a surface that is subject to vibration in the principal direction; at least one lower equalizing spring from the base plate to an internal load support plate; at least one upper equalizing spring from the internal load support plate to an upper plate; and a pivoting load support element arranged to pivot about a pivot point on a surface of the internal load support plate in a direction substantially orthogonal to the principal direction of vibration isolation.
2. The device of claim 1, further comprising: a sensor associated with the internal plate; and an active actuator between the base plate and the internal load support plate plate, wherein the active actuator is responsive to a signal from the sensor.
3. The device of claim 2, further comprising: a sensor associated with the internal plate; and an active actuator between the base plate and the internal load support plate, wherein the active actuator is responsive to a signal from the sensor.
4. The device of claim 1, further comprising: at least one compression adjustment for adjusting the at least one equalizing spring to the upper plate.
5. The device of claim 4, wherein the at least one compression adjustment includes a screw.
6. A vibration isolation apparatus for isolating a payload object from vibration in a principal direction and for decoupling the payload object from vibration orthogonal to the principal direction, the device comprising: a base plate, for contact with a surface that is subject to vibration in the principal direction; at least one decoupling device, each of the at least one decoupling device comprising: at least one lower equalizing spring from the base plate to an internal load support plate; at least one upper equalizing spring from the internal load support plate to an upper plate; a pivoting load support element arranged to pivot about a pivot point on a surface of the internal load support plate in a direction substantially orthogonal to the principal direction of vibration isolation; at least one suspension spring from the upper plate to a payload support platform; and at least one damper from the upper plate to the payload support platform.
7. The vibration isolation apparatus of claim 6, comprising a plurality of decoupling devices.
8. The vibration isolation apparatus of claim 7, wherein at least one of the plurality of decoupling devices has a principal direction of vibration isolation that is orthogonal to the principal direction of vibration isolation of at least one other of the plurality of decoupling devices.
9. The vibration isolation apparatus of claim 8, wherein the apparatus further comprises: a sensor in contact with an internal load support plate; an active actuator in contact with an internal load support plate; and an electrical connection between the sensor and the active actuator, wherein the active actuator is responsive to a signal from the sensor.
10. The vibration isolation apparatus of claim 9, wherein the sensor and the actuator are in the same decoupling device.
11. The vibration isolation apparatus of claim 9, wherein the sensor and the actuator are in different decoupling devices.
12. The vibration isolation apparatus of claim 9, wherein the sensor is in a decoupling device for isolating from vibration in the principal direction and the actuator is in a decoupling device for isolating from vibration orthogonal to the principal direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006] The present invention will be more fully understood from the following detailed description of the embodiments thereof, taken together with the drawings in which:
[0007]
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[0013]
[0014] For simplicity and clarity of illustration, elements shown in the figures are not necessarily drawn to scale, and the dimensions and/or locations of some elements may be exaggerated relative to other elements. In addition, reference numerals may be repeated among the figures to indicate corresponding or analogous elements.
DETAILED DESCRIPTION
[0015] The principles and operation of a cross-axis decoupling vibration isolator according to various embodiments of the present invention may be understood with reference to the drawings and the accompanying description.
[0016]
[0017] The stiffness of springs 102-105, 103-106 is optimally adjusted by screws 111 and 112 to maximize effectiveness of feedback control loop, based on a inertia motion sensor 132 and a directional actuator 131, in compensation of the dynamic (vibrational) force 190.
[0018] In the embodiment described above, pendulum 121 is configured as a hanging pendulum, which by itself is statically stable.
[0019] Internal load isolating plate 104 is characterized by having a restricted ability to move only in a principal vibration isolation direction along spacing rods 109 and 110, and is further isolated from vibration of support structure 101 or plate 193 by an actuator 131 which provides active vibration damping and which is driven according to signals from an inertial sensor 132 that is associated with internal load isolating plate 104.
[0020]
[0021]
[0022] It is once again emphasized that the microvibrational displacements shown in
[0023]
[0024] Electrical connection 174 also incorporates the lumped parameters of active electronics for driving actuator 175 according to signals from sensor 173. An advantage of having a schematic representation, such as that of
[0025] In this lumped-parameter model: internal plate 172 in contact with sensor 173, which has electrical connection 174 to actuator 175, which in turn is in contact with internal place 172, together form a feedback loop for transferring signals from sensor 173 to actuator 175 via electrical connection 174, where actuator 175 is responsive to the signals from sensor 173 to actively contribute to isolating pivoting support member 122 from microvibrational displacements affecting bottom surface 280, upon which the device rests, or transferred from payload through support member 122.
[0026]
[0027] In an embodiment illustrated in
[0028] In another embodiment illustrated in
[0029] While the invention has been described with respect to a limited number of embodiments, it will be appreciated that many variations, modifications and other applications of the invention may be made.