Modular photovoltaic power skid base system
09847627 · 2017-12-19
Assignee
Inventors
Cpc classification
H02G1/00
ELECTRICITY
H01F27/06
ELECTRICITY
International classification
Abstract
A base is a platform that supports a component off the ground in a solar energy installation. The specific configuration of a base can vary based on the intended component, for example whether it holds a transformer or power component. Multiple bases are mechanically and/or electrically connected to form a system of bases in the field. Proper placement of bases and engagement of those bases is facilitated by mating alignment mechanisms such that one base can be lowered “fit” with another. A method of positioning components includes positioning a base and aligning and lowering a second base alongside the first such that the bases engage.
Claims
1. A base for supporting at least one component above ground in a solar installation including: A) A first rail; B) A second rail parallel to said first rail; C) A cross brace connecting said first rail to said second rail; D) A first vertical alignment channel connected to said first rail, said first vertical alignment channel defined by walls that taper inwardly going downward; E) A second alignment channel connected to said second rail; and F) An electrical bus system for coupling to at least one component, said electrical bus system extending upwardly from between said first rail and said second rail.
2. The base of claim 1 wherein said first vertical alignment channel and said second alignment channel are configured to mate with alignment protrusions.
3. The base of claim 1 wherein said electrical bus system is at least one flexible bus.
4. The base of claim 1 wherein said electrical bus system is at least one wire.
5. A base system for supporting components above ground in a solar installation including: A) A transformer base including a first set of parallel rails connected by a first cross brace; B) At least two alignment protrusions connected to said first set of parallel rails on opposing rails; C) A power base including a second set of parallel rails connected by a second cross brace; and D) At least two vertical alignment channels connected to said second set of parallel rails on opposing rails, said vertical alignment channels each defined by walls that taper inwardly going downward, said vertical alignment channels engaged with said alignment protrusions.
6. The base system of claim 5 wherein the distance between said first set of parallel rails is different from the distance between said second set of parallel rails.
7. The base system of claim 6 wherein the distance between said first set of parallel rails is greater than the distance between said second set of parallel rails.
8. The base system of claim 5 wherein said transformer base is electrically coupled to said power base.
9. The base system of claim 5 wherein said alignment protrusions are engaged with said vertical alignment channels by introducing said alignment protrusions into said channels.
10. A method of positioning components in a solar installation including the steps of: A) Placing a first base on a solid surface wherein said first base includes two vertical alignment channels each defined by walls that taper inwardly going downward; B) Suspending a second base higher than said first base wherein said second base includes two alignment protrusions configured to mate with said two vertical alignment channels; C) Aligning said second base relative to said first base to facilitate mating of said two vertical alignment channels with said two alignment protrusions; D) Lowering said second base; and E) Engaging said two vertical alignment channels with said two alignment protrusions.
11. The method of claim 10 further including the step of securing a component to said first base, said component selected from the group consisting of inverters, SCADA panels, Auxiliary Distribution and Control panels, recombiner boxes, combiner boxes, transformers, controllers, monitoring and reporting equipment, acc AC panels, mandated safety equipment and fire suppression equipment.
12. The method of claim 11 further including the step of securing a component to said second base, said component selected from the group consisting of inverters, SCADA panels, Auxiliary Distribution and Control panels, recombiner boxes, combiner boxes, transformers, controllers, monitoring and reporting equipment, acc AC panels, mandated safety equipment and fire suppression equipment.
13. The method of claim 12 further including the step of electrically coupling the component of said first base to the component of said second base.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
(20)
(21)
(22)
(23)
(24)
(25)
(26)
(27)
DETAILED DESCRIPTION OF THE INVENTION
(28) The following detailed description is of the best currently contemplated modes of carrying out exemplary embodiments of the invention. The description is not to be taken in a limiting sense, but is made merely for the purpose of illustrating the general principles of the invention, since the scope of the invention is best defined by the appended claims.
(29) The following structure numbers apply to the various structures among the various FIGS: 10—Base system; 12—Rail; 14—Cross brace; 16—Rail brace; 20—Power module; 21—Power base; 25—Inverter; 27—Auxiliary Distribution and Control panel; 30—Recombiner box; 40—Transformer module; 41—Transformer base; 45—Transformer; 50—Base junction; 52—Alignment protrusion; 53—Alignment protrusion receiver; 54—Alignment bracket; 60—Transformer output flex bus; 61—Power base bus; 62—Power base output flexible bus; 63—Transformer input flexible bus; 64—Transformer base bus; and 65—Junction cover plate.
(30) Base system 10 includes a plurality of bases each capable of supporting at least one component. As used herein, “components” includes any components used in a photovoltaic system, such as, but not limited to, inverters, SCADA panels, Auxiliary Distribution and Control panels, recombiner boxes, combiner boxes, transformers, controllers, monitoring and reporting equipment, acc AC panels, mandated safety equipment (e.g., fire suppression), and the like.
(31) As shown in
(32) Although base sizes can vary, it is desirable that they don't exceed 72 inches in width, so as to be able to be transported by truck without the complications of being a “wide load”. In one embodiment power base 21 is approximately 36″ wide and 22′ long. In one embodiment transformer base 41 is approximately 64″ wide and 12′ long. However, it should be understood that various dimensions are all within the scope of the present inventions.
(33) As best shown in
(34) One of the benefits of base system 10 is that a solar installation can be built as the various components become available. For example, it is advantageous to be able to “drop in” a transformer at the completion of an installation because transformers are typically delivered after other components. Referring to
(35)
(36)
(37) Referring now to
(38) Power base output flexible bus 62 of power base 21 is designed to receive transformer input flexible bus 63 of transformer base 41. Namely, power base output flexible bus 62 of power base 21 is designed to mechanically and electrically connect to transformer input flexible bus 63 of transformer base 41. Transformer output flex bus 60 of transformer base 41 is designed to receive transformer 45. Namely, transformer output flex bus 60 is designed to mechanically and electrically connect to the inputs and/or outputs of transformer 45.
(39)
(40) TABLE-US-00001 TABLE 1 Preferred Parts in an Electrical Connection ITEM QUAN- # PART # DESCRIPTION TITY 1 FLTW-005 1.4″ SMALL FLAT 8 WASHER, 18-8 STAINLESS STEEL 2 FLTW-014 1.2″ SMALL FLAT 24 WASHER, 18-8 STAINLESS STEEL 3 HXCS-1213-134-SS ½″-13 × 1″¾″ HEX 12 HEAD 4 HXCS-1420-034-SS ¼″-20 × ″¾″ HEX 8 HEAD 5 HXNT-009 ½″-13 HEX NUT 12 6 K0500-038-S ¼″ 18-8 S/S 8 BELLEVILLE WASHER 7 K0928-E-089-S ½″ 18-8 S/S 12 BELLEVILLE WASHER 8 DFPH-COVER BUS CONNECTION 1 COVER FOR DANFOSS QLX POWERHOUSE 9 STG.CGP.1000KVA.01 CG POWER 1000K VA 1 TRANSFORMER POWERSTATION 10 STG.DFS.QLX.10100 DANFOSS QLX 1 INTEGRATED POWERSTATION 11 3_1125-0_1100 INSULATOR STACK UP 4 WITH (3) 1125-A1's & (0) 1100-A1's 12 3_1125-0_1100-01 INSULATOR STACK UP 4 WITH (3) 1125-A1's & (0) 1100-A1's WITH 1″ SETSCREW ATTACHED 13 SPLW-009 1.2″ SPLIT LOCK 12 WASHER, 18-8 STAINLESS STEEL
(41)
(42) It should be understood, of course, that the foregoing relates to exemplary embodiments of the invention and that modifications may be made without departing from the spirit and scope of the invention as set forth in the following claims. By way of example, it is possible to position bases of the ground, for example on a concrete pad, in order to further protect components. Ranges set forth herein inherently include the endpoints and all increments, however small, there between. Also, “approximate” and the like shall refer to +/−10% unless otherwise stated.