Systems and methods for damping photovoltaic panel arrays
10648528 · 2020-05-12
Assignee
Inventors
- JAMES T. KULL (Denver, NC, US)
- Markus Müller (Koblenz, DE)
- Lars Löhken (Linz am Rhein, DE)
- Arnold Schilz (Lahnstein, DE)
Cpc classification
F16F2230/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/3214
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16F2228/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02S30/00
ELECTRICITY
F16F2230/0023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2224/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/512
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/368
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/362
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/512
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02S30/00
ELECTRICITY
F16F15/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Damper includes a housing having proximal and distal ends, a first attachment point proximate the distal end of the housing, a rod having proximal and distal ends at least partially disposed within the housing and moveable relative to the housing between an extended position and a compressed position, a second attachment point proximate the proximal end of the rod, a piston joined to the rod within the housing proximate the distal end of the rod, the piston including a bypass groove having a flow area defined therein to allow fluid to flow from a first side of the piston to an opposing side of the piston, and a first washer disposed proximate a first end of the piston and at least partially covering the flow area of the bypass groove.
Claims
1. A damper for reducing vibrations in a rotatable photovoltaic panel array, wherein the damper is configured to provide a first damping force during slow movement of the photovoltaic array and a second damping force during fast movement of the array, the second damping force being greater than the first damping force, the damper comprising: a housing having proximal and distal ends; a first attachment point proximate the distal end of the housing; a rod having proximal and distal ends at least partially disposed within the housing and moveable relative to the housing between an extended position and a compressed position; a second attachment point proximate the proximal end of the rod; a piston joined to the rod within the housing proximate the distal end of the rod, the piston including a bypass groove having a flow area defined therein to allow fluid to flow from a first side of the piston to an opposing side of the piston; and a first washer disposed proximate a first end of the piston and at least partially covering the flow area of the bypass groove, the first washer configured to deflect to uncover the flow area of the bypass groove at a selected maximum damping force such that the damper assembly is configured to apply no more than the selected maximum damping force.
2. The damper of claim 1, wherein the first attachment point is configured to attach to a torque arm of a rotatable photovoltaic panel array, and the second attachment point is configured to attach to a non-rotatable support member of the photovoltaic array.
3. The damper of claim 1, wherein the piston includes a second bypass groove having a flow area defined therein to allow fluid to flow from a first side of the piston to an opposing side of the piston and a second washer disposed proximate a second end of the piston and at least partially covering the flow area of the second bypass groove, the second washer configured to deflect to uncover the flow area of the second bypass groove at the selected maximum damping force.
4. The damper of claim 1, wherein the first and second attachment points each comprise hardened steel ball studs.
5. The damper of claim 1, wherein the damper provides similar damping forces during compression and extension of the rod.
6. The damper of claim 1, further comprising a bottom valve disposed within the housing.
7. The damper of claim 1, further comprising an external wiper seal proximate the proximal end of the housing.
8. The damper of claim 1, wherein an outer surface of the housing comprises a corrosion and scratch-resistant coating.
9. The damper of claim 1, wherein a sealing ring is disposed about the piston to prevent or inhibit flow of fluid about the piston.
10. The damper of claim 1, further comprising a fluid disposed within the housing, wherein the fluid comprises a biodegradable oil.
11. A rotatable photovoltaic panel assembly including a damper for reducing vibrations in a photovoltaic panel, comprising: a photovoltaic panel configured to rotate to maintain alignment with the sun; and a damper attached to the photovoltaic panel such that rotation of the photovoltaic panel translates into a linear movement of the damper, wherein the damper is configured to provide a first damping force during slow movement of the photovoltaic array and a second damping force during fast movement of the array, the second damping force being greater than the first damping force, the damper further comprising: a housing having proximal and distal ends; a first attachment point proximate the distal end of the housing; a rod having proximal and distal ends at least partially disposed within the housing and moveable relative to the housing between an extended position and a compressed position; a second attachment point proximate the proximal end of the rod; a piston joined to the rod within the housing proximate the distal end of the rod, the piston including a bypass groove having a flow area defined therein to allow fluid to flow from a first side of the piston to an opposing side of the piston; and a first washer disposed proximate a first end of the piston and at least partially covering the flow area of the bypass groove, the first washer configured to deflect to uncover the flow area of the bypass groove at a selected maximum damping force such that the damper assembly is configured to apply no more than the selected maximum damping force.
12. The apparatus of claim 11, wherein the first damper attachment point is attached to a torque arm of a rotatable photovoltaic panel, and the second damper attachment point is attached to a non-rotatable support member of the rotatable photovoltaic panel.
13. The apparatus of claim 11, wherein the piston includes a second bypass groove having a flow area defined therein to allow fluid to flow from a first side of the piston to an opposing side of the piston and a second washer disposed proximate a second end of the piston and at least partially covering the flow area of the second bypass groove, the second washer configured to deflect to uncover the flow area of the second bypass groove at the selected maximum damping force.
14. The apparatus of claim 11, wherein the damper provides similar damping forces during compression and extension of the rod.
15. The apparatus of claim 11, wherein a plurality of dampers are attached to the solar panel such that rotation of the solar panel translates into a linear movement of each damper.
16. The apparatus of claim 11, further comprising a fluid disposed within the housing, wherein the fluid comprises a biodegradable oil.
17. A method for reducing vibrations in a rotatable photovoltaic panel array, the method comprising: attaching a damper to a rotatable photovoltaic panel array such that a first damper attachment point moves with the rotatable photovoltaic panel array, and a second damper attachment point does not move with the rotatable photovoltaic array, wherein the damper is configured to provide a first damping force during slow movement of the photovoltaic array and a second damping force during fast movement of the array, the second damping force being greater than the first damping force, the damper comprising: a housing having proximal and distal ends; a first attachment point proximate the distal end of the housing; a rod having proximal and distal ends at least partially disposed within the housing and moveable relative to the housing between an extended position and a compressed position; a second attachment point proximate the proximal end of the rod; a piston joined to the rod within the housing proximate the distal end of the rod, the piston having a including a bypass groove having a flow area defined therein to allow fluid to flow from a first side of the piston to an opposing side of the piston; and a first washer disposed proximate a first end of the piston and at least partially covering the flow area of the bypass groove, the first washer configured to deflect to uncover the flow area of the bypass groove at a selected maximum damping force such that the damper assembly is configured to apply no more than the selected maximum damping force.
18. The method of claim 17, wherein the first damper attachment point is attached to a torque arm of a rotatable photovoltaic panel, and the second damper attachment point is attached to a non-rotatable support member of the rotatable photovoltaic panel.
19. The method of claim 17, wherein the piston includes a second bypass groove having a flow area defined therein to allow fluid to flow from a first side of the piston to an opposing side of the piston and a second washer disposed proximate a second end of the piston and at least partially covering the flow area of the second bypass groove, the second washer configured to deflect to uncover the flow area of the second bypass groove at the selected maximum damping force.
20. The method of claim 17, wherein a plurality of dampers are attached to the rotatable photovoltaic array.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(11) Reference will now be made in detail to the various exemplary embodiments of the disclosed subject matter, exemplary embodiments of which are illustrated in the accompanying drawings. The structure and corresponding method of operation of the disclosed subject matter will be described in conjunction with the detailed description of the system.
(12) The apparatus and methods presented herein can be used for damping movement of any object. The disclosed subject matter is particularly suited for damping movement of a rotatable photovoltaic panels (PV) in a PV array.
(13) In accordance with the disclosed subject matter herein, the damper assembly includes a housing defining an interior and having a proximal end and a distal end, the housing including an attachment point proximate the distal end of the housing for attaching the housing to a PV array. The damper assembly also includes a rod having proximal and distal ends. The rod has an attachment point at its proximal end for attaching the rod to a PV array, and the rod is at least partially disposed within the housing and is moveable relative to the housing between an extended position and a compressed position. A piston is also included in the damper assembly. The piston is joined to the rod within the housing proximate the distal end of the rod. The piston includes a bypass groove having a flow area defined therein to allow fluid to flow from a first side of the piston to an opposing side of the piston. The damper assembly also includes a washer disposed proximate a first side of the piston and at least partially covering the flow area of the bypass groove. The washer is capable of deflection so as to uncover the flow area of the bypass groove at a selected maximum damping force such that the damper assembly is configured to apply no more than the selected maximum damping force.
(14) The accompanying figures, where like reference numerals refer to identical or functionally similar elements throughout the separate views, serve to further illustrate various embodiments and to explain various principles and advantages all in accordance with the disclosed subject matter. For purpose of explanation and illustration, and not limitation, exemplary embodiments of the damper assembly in accordance with the disclosed subject matter are shown in
(15) As shown in
(16) The housing 140 can be any suitable shape. For example, and as embodied herein, the housing 140 can be cylindrical. For purpose of illustration, and not limitation, the housing 140 can have a diameter within a range of 25 cm to 30 cm. With reference to
(17) Furthermore, and as embodied herein, the housing 140 can be divided into a working chamber 190 and a compensating chamber 195 by a bottom valve 160. Referring now to
(18) Referring still to
(19) Furthermore, and as embodied herein, the damper assembly can also include a wiper seal disposed between the housing 140 and the rod 120 to improve the fluid-tight seal between the housing 140 and the rod 120. Referring now to
(20) In addition, and as embodied herein, the damper assembly 100 can include a corrosion and/or scratch-resistant coating applied to the outer surface of the housing 140. The scratch resistant coating can be comprised of any suitable material. The coating can thus prevent or inhibit damage to the damper assembly due to corrosion or scratching.
(21) Referring again to
(22) With reference to
(23) Furthermore, and as embodied herein, the piston 350 can also have a bypass groove 340 which has a flow area defined therein to allow fluid to flow from a first side of the piston 350 to an opposing side of the piston 350. Referring now to
(24) Referring now to
(25) In accordance with another aspect of the disclosed subject matter, an alternative embodiment of a damper assembly including an alternative piston assembly is provided. The damper assembly and piston assembly can have any of the features described herein. Additionally or alternatively, and as embodied herein, the piston assembly can be configured with two or more bypass grooves. For purpose of example, and not limitation, and with reference to
(26) In accordance with another aspect of the disclosed subject matter, a method of making damper assembly is provided. It will be understood that components of the damper assemblies described herein can be made using any suitable techniques, including but not limited to, machining. For example and without limitation, the damper assembly can be made from any suitable materials, such as metal, and can also be made from other materials, such as wood, plastic, ceramic, and composites. Exemplary methods for making a damper are shown and described, for example and without limitation, in U.S. Pat. No. 7,631,922, which is incorporated by reference herein in its entirety.
(27) In accordance with another aspect of the disclosed subject matter, an exemplary PV array can be configured with a damper 100 as disclosed herein. The PV array can have PV panels arranged on a longitudinal beam that is capable of rotating. As embodied herein, the damper can be mounted such that one attachment point 210 is attached to a torque arm that rotates with the longitudinal beam and a second attachment point 220 that is attached to a non-rotating support member. The torque arm converts rotational movement of the beam into a linear force acting on the damper. Additionally, and as embodied herein, a plurality of dampers 100 can be attached to the PV array. For example, and as embodied herein, PV array can be configured with a damper 100 each opposing end of the PV array.
(28) In addition to the specific embodiments claimed below, the disclosed subject matter is also directed to other embodiments having any other possible combination of the dependent features claimed below and those disclosed above. As such, the particular features presented in the dependent claims and disclosed above can be combined with each other in other manners within the scope of the disclosed subject matter such that the disclosed subject matter should be recognized as also specifically directed to other embodiments having any other possible combinations. Thus, the foregoing description of specific embodiments of the disclosed subject matter has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosed subject matter to those embodiments disclosed.
(29) It will be apparent to those skilled in the art that various modifications and variations can be made in the method and system of the disclosed subject matter without departing from the spirit or scope of the disclosed subject matter. Thus, it is intended that the disclosed subject matter include modifications and variations that are within the scope of the appended claims and their equivalents.