VIBRATION MITIGATION DEVICE
20220042570 ยท 2022-02-10
Assignee
Inventors
- Carl J. Macchietto (Omaha, NE, US)
- Richard E. Christenson (Mansfield Center, CT, US)
- Darren E. Ingram (Omaha, NE, US)
Cpc classification
F16F15/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2232/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention provides a vibration mitigation device which includes a vertically extending housing and a reciprocating assembly coupled with and fully enclosed inside of the vertically extending housing. In accordance with an exemplary embodiment of the present invention, the vibration mitigation device may utilize a tension spring as the biasing member while operating in a pneumatic process, an eddy current dampening process or a hybrid combination of the two dampening processes. For low amplitude, the eddy current dampening process may provide improved vibration mitigation results and for higher amplitudes, the pneumatic process may provide improved vibration mitigation results. Other exemplary embodiments include a vibration damping element that utilizes a compression spring as a biasing member for mitigating vibrations. Further exemplary embodiments provide a vibration damping element that utilizes a compression spring and a tension spring as biasing members for mitigating vibrations.
Claims
1. A vibration mitigation apparatus, wherein the vibration mitigation apparatus comprises: a vertically extending housing, wherein the vertically extending housing comprises: a first end cap; a second end cap; and a centrally enclosed area; a reciprocating assembly, wherein the reciprocating assembly is enclosed within the vertically extending housing and configured to move vertically within the vertically extending housing; wherein the reciprocating assembling comprises a top surface and a bottom surface; a top slide bearing, wherein the top slide bearing comprises a plurality of upper air passages; wherein the top slide bearing is comprised of a body extending around the outer circumference of the top surface of the reciprocating assembly; further wherein the plurality of upper air passages are formed within the top slide bearing and spaced around the outer circumference of the top surface of the reciprocating assembly; a bottom slide bearing, wherein the bottom slide bearing comprises a plurality of lower air passages; wherein the bottom slide bearing is comprised of a body extending around the outer circumference of the bottom surface of the reciprocating assembly; further wherein the plurality of lower air passages are formed within the bottom slide bearing and spaced around the outer circumference of the bottom surface of the reciprocating assembly; wherein the upper and lower air passages restrict the flow of air between an area of air above the reciprocating assembly and an area of air below the reciprocating assembly.
2. The apparatus of claim 1, wherein the reciprocating assembly comprises one or more weight elements which are configured to increase the weight of the reciprocating assembly.
3. The apparatus of claim 1, wherein the reciprocating assembly further comprises a magnetic element, wherein the magnetic element is attached to the reciprocating assembly and further wherein the magnetic element is configured to produce eddy currents as the reciprocating assembly moves vertically within the vertically extended housing.
4. A vibration mitigation apparatus, wherein the vibration mitigation apparatus comprises: a vertically extending housing, wherein the vertically extending housing comprises: a first end cap; a second end cap; and a centrally enclosed area; a reciprocating assembly, wherein the reciprocating assembly is enclosed within the vertically extending housing and configured to move vertically within the vertically extending housing; wherein the reciprocating assembling comprises a top surface and a bottom surface; a top slide bearing, wherein the top slide bearing comprises a plurality of upper air passages; wherein the top slide bearing is comprised of a body extending around the outer circumference of the top surface of the reciprocating assembly; further wherein the plurality of upper air passages are formed within the top slide bearing and spaced around the outer circumference of the top surface of the reciprocating assembly; a bottom slide bearing, wherein the bottom slide bearing comprises a plurality of lower air passages; wherein the bottom slide bearing is comprised of a body extending around the outer circumference of the bottom surface of the reciprocating assembly; further wherein the plurality of lower air passages are formed within the bottom slide bearing and spaced around the outer circumference of the bottom surface of the reciprocating assembly; and a magnetic element, wherein the magnetic element is attached to the reciprocating assembly and further wherein the magnetic element is configured to produce eddy currents as the reciprocating assembly moves vertically within the vertically extended housing.
5. The apparatus of claim 4, wherein the apparatus further comprises a conducting element.
6. The apparatus of claim 5, wherein the vertically extending housing further comprises at least one portion of the housing which is comprised of a conducting material.
7. The apparatus of claim 6, wherein the conducted element comprises a conducting rod.
8. The apparatus of claim 7, wherein the magnetic element is comprised of a rare earth magnet.
9. The apparatus of claim 8, wherein the reciprocating assembly comprises one or more weight elements which are configured to increase the weight of the reciprocating assembly.
10. A vibration mitigation apparatus, wherein the vibration mitigation apparatus comprises: a vertically extending housing, wherein the vertically extending housing comprises: a first end cap; a second end cap; and a centrally enclosed area; a reciprocating assembly, wherein the reciprocating assembly is enclosed within the vertically extending housing and configured to move vertically within the vertically extending housing; wherein the reciprocating assembling comprises a top surface and a bottom surface; a top slide bearing, wherein the top slide bearing comprises a plurality of upper air passages; wherein the top slide bearing is comprised of a body extending around the outer circumference of the top surface of the reciprocating assembly; further wherein the plurality of upper air passages are formed within the top slide bearing and spaced around the outer circumference of the top surface of the reciprocating assembly; a bottom slide bearing, wherein the bottom slide bearing comprises a plurality of lower air passages; wherein the bottom slide bearing is comprised of a body extending around the outer circumference of the bottom surface of the reciprocating assembly; further wherein the plurality of lower air passages are formed within the bottom slide bearing and spaced around the outer circumference of the bottom surface of the reciprocating assembly; and a magnetic element, wherein the magnetic element is attached to the reciprocating assembly and further wherein the magnetic element is configured to produce eddy currents as the reciprocating assembly moves vertically within the vertically extended housing; wherein the upper and lower air passages function to restrict the flow of air between an area of air above the reciprocating assembly and an area of air below the reciprocating assembly; wherein the upper and lower air passages are sized and configured to dampen the movement of the reciprocating assembly within the vertically extending housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Elements in the figures have not necessarily been drawn to scale in order to enhance their clarity and improve understanding of these various elements and embodiments of the invention. Furthermore, elements that are known to be common and well understood to those in the industry are not depicted in order to provide a clear view of the various embodiments of the invention, thus the drawings are generalized in form in the interest of clarity and conciseness.
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF THE DRAWINGS
[0023] In the following discussion that addresses a number of embodiments and applications of the present invention, reference is made to the accompanying drawings that form a part hereof, and in which is shown by way of illustration specific embodiments in which the invention may be practiced. It is to be understood that other embodiments may be utilized and changes may be made without departing from the scope of the present invention.
[0024] Various inventive features are described below that can each be used independently of one another or in combination with other features. However, any single inventive feature may not address any of the problems discussed above or only address one of the problems discussed above. Further, one or more of the problems discussed above may not be fully addressed by any of the features described below.
[0025]
[0026] The reciprocating assembly 114 as shown preferably includes a mass 118 and a plurality of magnets 116 connected to the mass 118. The magnets 116 are preferable configured to translate along a vertical path with respect to the generally vertically extending housing 112 and to thereby provide a magnetic field across the conducting rods 126. As shown, the reciprocating assembly preferably further includes a plurality of guides 124 coupled with the mass 118 by at least one fastening element 120 and configured to allow the mass 118 to translate reciprocatingly by the pair of opposing conducting rods 126. As further shown, the vertically extending housing 112 and a biasing member 122 are coupled to the reciprocating assembly 114. The vertically extending housing 112 includes a first end cap 108 which connects to the biasing member 122 via a connecting element 128. Preferably, the biasing member 122 is configured to support the plurality of magnets 116 and the mass 118 in a neutral position with respect to the generally vertically extending housing 112 when the vibration mitigation device 100 is at rest. The biasing member 122 includes at least one tension spring or a compression spring. The end caps 102 and 108 are preferably of unitary construction.
[0027] With reference now to
[0028] According to a further aspect of the first preferred embodiment, the pair of opposing conducting rods 126 are preferably formed of conducting material and placed along the vertical path travelled by the mass 118 and the plurality of magnets 116. Preferably, the pair of opposing conducting rods 126 are secured within the vertically extending housing 112 in such a way that the plurality of magnets 116 moves up and down relative to and provides a magnetic field across the pair of opposing conducting rods 126. In this process, the plurality of magnets 116 create eddy currents in the conducting material which dissipates the energy of the vibration mitigation device 100, resulting in motion dampening of the support member. The conducting material of conducting rods 126 may preferably be formed from any non-ferrous metal(s). For example, in one embodiment, the conducting material may include aluminum, copper, gold, silver or a combination thereof. The plurality of magnets 116 may include a permanent magnetic material, a ferromagnetic material, a ferromagnetic material or an electromagnet. The plurality of guides 124 are preferably coupled with the mass 118 by at least one fastening element 120.
[0029] In one embodiment, the eddy current dampening device generates electricity, which is sufficient to run an LED light.
[0030] In an alternative exemplary embodiment of the present invention, as shown in
[0031] The sealed outer case 202 is preferably pneumatically sealed and the mass 210 is suspended by the tension spring 208 and allowed to reciprocate vertically. During excessive vibrations in the support structures, the mass 210 is preferably configured to move up and down in the sealed outer case 202 resulting in exchange of air from one side of the mass 210 to the other. This creates a suction or airflow resistance in the upper air chamber 204 or lower air chamber 206 to slow the mass 210 and dampen the vibration. In one embodiment, the mass 210 includes side and/or interior relief conduits that allow air to communicate between the upper air chamber 204 and the lower air chamber 206.
[0032]
[0033]
[0034] With reference now to
[0035] As further shown in
[0036]
[0037] As detailed in
[0038] As further shown in
[0039] According to a further aspect of the present invention, the conductive materials of the present invention may be incorporated into the structure of the sealed outer case 702. According to a preferred embodiment, the sealed outer case 702 may be lined with conductive material. Alternatively, the conductive material may be incorporated into the entirety of the wall structure of the sealed outer case 702 or only embedded within discrete section(s) of the sealed outer case 702.
[0040] In another exemplary embodiment of the present invention, a tension spring is utilized as the biasing member when the vibration mitigation device operates in both the pneumatic process and the eddy current dampening process as described above. This hybrid embodiment may work better over a wide spectrum of vibration amplitudes. For low amplitudes, the eddy current dampening process may provide improved vibration mitigation results and for higher amplitudes, the pneumatic process may provide improved vibration mitigation results. Other exemplary embodiments provide a vibration damping element that utilizes a compression spring as a biasing member for mitigating vibrations. Further exemplary embodiments provide a vibration damping element that utilizes a compression spring and a tension spring as biasing members for mitigating vibrations.
[0041] According to a further preferred embodiment, the present invention may use a hydraulic or other liquid based pressure source in place of the pneumatic (air) pressure source discussed above. Accordingly, hydraulic fluid, oil, water or another liquid may be used within the vibration dampening element to allow for pressure adjustments between the upper and lower chambers of the vertically extending housing as discussed above.
[0042] In one embodiment, the present invention includes a vibration mitigation device that can be configured to reduce naturally induced vibrations and attached to a variety of support structures including at least one of a bridged structure, a cantilever or a multi-pole support system holding or supporting lighting, traffic signals, street signs, signage, cameras or other devices.
[0043] The foregoing description of the preferred embodiment of the present invention has been presented for the purpose of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of the above teachings. It is intended that the scope of the present invention not be limited by this detailed description, but by the claims and the equivalents to the claims appended hereto.