The subject matter disclosed herein relates to a re-combiner box of a photovoltaic system.
Photovoltaic installations vary from site to site. Often, due to a lack of standardization and ad hoc installation procedures, each site will have its own unique wiring configuration with various components installed differently. This leads to many sites having an excessive number of installed components disposed in a confusing and inefficient configuration.
For example, a given photovoltaic installation may have 4 solar arrays that are each configured to transmit current along a group of, for example, 10 power lines to 4 first stage combiner boxes. Each of the 4 first stage combiner boxes combines its 10 power lines into a single combined power line. The 4 combined power lines are then wired to an inverter in which the direct current (DC) carried by the combined power lines is converted into alternating current (AC). Before reaching the inverter, however, a disconnect apparatus must be disposed downstream from the 4 combiner boxes so that the current carried by the power lines can be shut off if necessary. The disconnect apparatus is normally a stand-alone feature having a given number of disconnect modules that is unrelated to the number of the combiner boxes. That is, where 4 combiner boxes may be provided in the installation, the disconnect apparatus may include only 3 disconnect modules. The extra combiner box and power line thus requires that an additional disconnect apparatus be provided to shut off power from the additional combiner box. The additional disconnect apparatus may be configured to serve 3 poles with only 1 pole actually being used.
Thus, in the exemplary installation, the additional disconnect apparatus and/or any other additional components necessarily require additional wiring and installation procedures. Moreover, as the size and configuration of the exemplary installation change over time, the arrangement described herein may tend to become more complicated and inefficient.
According to one aspect of the invention, an apparatus for a photovoltaic system in which multiple poles are connectable with multiple fuses is provided. The apparatus includes a rotor configured to occupy at least first and second rotational angles, a disconnect unit including a plurality of interrupter housings respectively configured to connect at least one of the multiple poles with at least one of the multiple fuses in accordance with a rotational angle of the rotor, at least one of the plurality of the interrupter housings being mutually connectable, a transmission unit disposed and configured to electrically combine the multiple poles into a lesser number of the multiple poles such that respective amperages of the combined poles are additive, a housing sized to house the rotor, the disconnect unit and the transmission unit and an actuator arm disposed at the exterior of the housing and configured to be selectively actuated to cause the rotor to occupy the at least one of the rotational angles.
According to another aspect of the invention, a photovoltaic system having multiple fuses is provided and includes combiner boxes respectively coupled to groups of photovoltaic strings, each of the combiner boxes being configured to aggregate the electric current generated by the corresponding group of the photovoltaic strings into multiple poles and a re-combiner box electrically disposed downstream from the combiner boxes. The re-combiner box includes a rotor configured to occupy at least first and second rotational angles, a disconnect unit including a plurality of interrupter housings respectively configured to connect at least one of the multiple poles with at least a corresponding one of the multiple fuses in accordance with a rotational angle of the rotor, at least one of the plurality of the interrupter housings being mutually connectable, a transmission unit disposed and configured to electrically combine the multiple poles into a lesser number of the multiple poles such that respective amperages of the combined poles are additive, a housing sized to house the rotor, the disconnect unit and the transmission unit and an actuator arm disposed at the exterior of the housing and configured to be selectively actuated to cause the rotor to occupy the at least one of the rotational angles.
According to yet another aspect of the invention, a method of assembling a re-combiner box of a photovoltaic system is provided and includes assembling individual interrupter housings, forming re-combiner box housings of varying widths, forming rotors of varying lengths, receiving an order for a re-combiner box configured to serve a given number of poles in the photovoltaic system and assembling the re-combiner box with the given number of interrupter housings, a selected one of the re-combiner box housings selected as having a width in accordance with the given number of the interrupter housings and a selected one of the rotors selected as having a length in accordance with the given number of the interrupter housings.
These and other advantages and features will become more apparent from the following description taken in conjunction with the drawings.
The subject matter, which is regarded as the invention, is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
The detailed description explains embodiments of the invention, together with advantages and features, by way of example with reference to the drawings.
In accordance with aspects of the invention, photovoltaic (PV) systems and solar installations can be simplified and made less expensive by providing a re-combiner box with a safety switch disconnect unit. Doing so may decrease a number of components and wires that need to be run from photovoltaic strings to an inverter and may provide an end user with a commonly known interface for the switch. The re-combiner box may be configured for rooftop mounting as part of a PV installation or any other mounting and may include features such as ON/OFF labels that will allow for a quick indication of switch positions and additional features to prevent accidental turn on incidents.
With reference to
In accordance with embodiments, the combiner boxes 20 may be grouped in groups of even numbers or, more particularly, in groups of four or more combiner boxes 20, as shown in
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To this end, the re-combiner box 40 includes a re-combiner housing 41, a first electrical transmission unit 42, a second electrical transmission unit 43 and a disconnect unit 44, which may be electrically disposed upstream from, e.g., the second electrical transmission unit 43, and which serves as a component of the switch module. The re-combiner housing 41 includes a base 410 and a removable cover 411 formed such that the re-combiner housing 41 includes an interior and an exterior. The first and second electrical transmission units 42 are both disposed within the re-combiner housing 41 along with at least a portion of the disconnect unit 44. The first electrical transmission unit 42 may include a re-combiner lug 420, which is disposed and configured to electrically combine the four negative pole components 32 into a lesser number of negative pole components 322 (for the purposes of clarity and brevity, the number of negative poles will be one) such that the combined amperages of the combined negative pole components 32 are additive. The second electrical transmission unit 43 may similarly include a re-combiner lug 430, which is disposed and configured to electrically combine the four positive pole components 31 into one positive pole component 311 such that the combined amperages of the combined positive pole components 31 are also additive. The one negative pole component 322 and the one positive pole component 311 are each output from the re-combiner housing 41 and wired into or otherwise connected to an inverter 50. The inverter 50 converts the DC current carried by the one negative pole component 322 and the one positive pole component 311 into alternating current.
With reference to
The disconnect unit 44 may include a plurality of interrupter housings 70, an actuator arm 80 and a coupling mechanism 90. Each interrupter housing 70 is configured to house an interrupter unit, which may be a fuse, a switch or another similar current interruption device. At least one of the plurality of the interrupter housings 70 is configured to provide for a selective connection of at least one of the positive pole components 31 (or, in accordance with alternative embodiments, each of the negative pole components 32) to at least one corresponding one of the multiple fuses 45 or a selective disconnection of at least one of the positive pole components 31 from at least one corresponding one of the multiple fuses 45. At least one of the plurality of the interrupter housings 70 is further configured to be mutually connectable with for example one or two other interrupter housings 70 in a side-by-side array that can be added to or subtracted from in single interrupter housing modifications (i.e., an addition of a single interrupter housing 70 at a time or a subtraction of a single interrupter housing 70 at a time). This side-by-side array extends along the length, L, of the rotor 60. The actuator arm 80 is disposed externally from the re-combiner housing 41 and is configured to cause the connection or the disconnection of the positive poles 31 with respect to the corresponding ones of the multiple fuses 45 upon a selective actuation of the actuator arm 80 by an operator such as a fireman or technician. The coupling mechanism 90 connects the rotor 60 with the actuator arm 80.
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The rotor 60 further includes mating sections 610 defined along the main member 600. The mating sections 610 allow the rotor 60 to be non-removably insertible into the recesses 703 of the interrupter housings 70. In accordance with embodiments, the mating sections 610 require that the rotor 60 be inserted into the recesses 703 at a specific insertion angle that is different from either the first or the second rotational angle. Once the rotor 60 is secured in the recesses 703, the rotor 60 may be rotated into one of the first or the second rotational angles as described above such that the rotor 60 does not return to the insertion angle unless service of the rotor 60 is required and such that the rotor 60 does not undesirably or unexpectedly disengage from the plurality of the interrupter housings 70.
With the plurality of the interrupter housings 70 being mutually connectable with one another in the side-by-side array in the single interrupter housing modifications, the disconnect unit 44 serves as a modular feature to which single interrupter housings 70 can be added or from which single interrupter housings 70 can be removed. Thus, various numbers of poles can be served by the re-combiner box 40 having varied numbers of interrupter housings 70 installed therein. Since the re-combiner housing 41 houses these components, the re-combiner housing 41 should have a width that is not overly large while allowing for the size of the disconnect unit 44 to be sized to serve at least a given of number of poles of a PV system and possibly to serve additional/lesser numbers of poles as modifications to the PV system are made.
With reference to
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An outer surface of the re-combiner housing 41 or a side of the pouch 101 facing toward an exterior may have ON/OFF labels 104 provided thereon. Such labels 104 may allow for easier identification and interpretation of the actuator arm 80 position. In particular, such labels 104 may make it easier for firefighters or other first responders to determine if the disconnect apparatus 400 is ON or OFF.
With reference to
At 1040, the assembled disconnect unit 44 is affixed to the selected re-combiner box housing 41 by, for example, fastening each foot portion 735 to the re-combiner box housing 41 (in an alternate embodiment, the foot portions 735 of the individual interrupter housings 70 could be fastened to the re-combiner box housing 41 as the disconnect unit 44 is assembled within the re-combiner box housing 41). At 1050, the selected rotor 60 is non-removably inserted into the interrupter housings 70 of the disconnect unit 44 and, at 1060, an actuator arm 80 with a pin mechanism 100 is coupled to the rotor 60.
With reference to
While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.