The disclosed embodiments relate to photovoltaic (PV) devices, such as PV cells and PV modules containing a plurality of PV cells, and methods of improving the efficiency of the same while in the field.
PV devices convert sunlight into electricity via a physical process called “photovoltaic effect.” Specifically, sunlight is composed of photons, or “packets” of energy. The photons contain various amounts of energy corresponding to different wavelengths of light. Upon striking a PV device, a photon may be reflected, absorbed, or pass right through the device. When a photon is absorbed, the energy of the photon is converted into electrical energy by a semiconductor within the PV device. This electrical energy is transferred to two separate electrodes. The PV device can then be used to power an external electrical load using the two electrodes.
Current-biasing may be used to make a PV device more efficient. A method of improving PV device efficiency by biasing or re-biasing the device may be used in the field.
In the following detailed description, reference is made to the accompanying drawings, which form a part hereof, and in which is shown by way of illustration specific embodiments that may be practiced. It should be understood that like reference numbers represent like elements throughout the drawings. Embodiments are described with sufficient detail to enable those skilled in the art to practice them. It is to be understood that other embodiments may be employed, and that various structural, logical, and electrical changes may be made without departing from the spirit or scope of the invention.
Disclosed herein are systems and methods for improving the efficiency of PV devices in the field. A PV device may be either a PV module or an individual PV cell. A PV module includes a plurality of PV cells connected in series and/or parallel configurations, depending on the desired current and voltage output from the module. In practice, the disclosed systems and methods are applied to PV modules and not to individual PV cells within a module. However, the disclosed systems and methods may also be applied to individual or standalone PV cells that are not integrated into a module.
A PV module generally includes multiple material layers formed on a substrate.
In the field, a module 100 is often connected to other modules 100 to create an array of PV modules. For example,
The PV modules in the solar farm arrays are easily connected and disconnected from the arrays, due to the quick connects 130, 135. However, the modules 100 are not easily mobile. The modules 100 may be large, bulky and anchored onto a support foundation for use in the solar farm. Therefore, maintenance of the PV modules is preferably performed on-site.
One type of maintenance that is preferably performed on-site is the biasing of the PV modules 100. Instead of transporting the modules back to a manufacturing plant for biasing and re-biasing, a method and system of biasing can be applied at the solar farm.
The below-described method and system of biasing can be applied to PV modules either immediately upon installation or at any time during their lifetime.
In order to re-bias PV modules 100 while in the field, an array of biasing modules 410 is provided, as illustrated in the biasing system 400 of
In addition, the biasing system 400 includes at least one array of biasing modules 410. The array of biasing modules 410 includes at least n+1 modules. As explained below, the array of biasing modules 410 must include more modules than at least one of the array 300 of PV modules to be biased so as to provide sufficient overhead voltage to sustain the necessary current loading. The biasing modules 410 may be the same as or similar to the modules 100, meaning that each biasing module 410 is a PV module that generates electricity. The array of biasing modules 410 can be connected to an array 300 of PV modules 100, as described below, in order to bias the array 300 of PV modules 100. Connections may be adjusted so that the array of biasing modules 410 is first connected to a first array 300A of PV modules 100 and then to other arrays 300B, 300C of PV modules 100. The ability to change which PV module array is being biased by the biasing modules 410 can be implemented through manual connections (using, for example, the ability to quickly disconnect and connect the quick connects 130, 135) or through a switch network 420. When not being used to bias other modules, biasing modules 410 can be used to generate electricity just as PV modules 100 are used.
Thus, in
While
System 500 includes no additional components for controlling the current delivered to the PV modules 100. Thus, system 500 is referred to as an “unregulated” system. While a constant current output is preferred for the biasing operation, the unregulated system 500 cannot guarantee a constant current. For example, the output of biasing modules 410 may be affected by changes in the weather (e.g., a cloud momentarily obscures the sun) or other conditions. Thus, while system 500 can result in a biased array due to an applied current, the current is not guaranteed to be constant. The unregulated system 500 is in contrast to the regulated system 600 illustrated in
In system 600, as in the unregulated system 500, a forwarding bias current is provided to the array of PV modules 100. In system 600, the bias current is provided from the current regulator 610. While the current regulator 610 controls the current output to the PV modules 100, the current regulator 610 allows its output voltage to fluctuate according to the demands of the PV modules 100. Thus, in the regulated system 600, a desired constant current is provided while voltage varies based on, for example, the resistance of the PV modules 100. Because the currents provided (and accompanying voltages) are relatively small, the current regulator 610 may be designed as a small and even portable device.
In systems 500, 600, the biasing modules 410 may be a subset of PV modules 100. In other words, a solar power plant, for example, that includes PV modules 100 can include a dedicated subset of PV modules 100 serving as biasing modules 410 as needed. When not needed, the biasing modules 410 generate electricity to contribute to the output of the solar farm. When needed to bias other PV modules, the biasing modules 410 and the PV modules 100 to be biased are disconnected from the solar farm grid and the biasing modules 410 are coupled to the PV modules 100 using either system 500 or system 600. Alternatively, the biasing modules 410 need not be limited to a dedicated subset; any PV module 100 can serve as a biasing module 410 when needed. As an example, an array of at least n+1 PV modules 100 can act as biasing modules 410 for an array of n PV modules 100 in need of a bias. Subsequently, at least some of the PV modules 100 that were biased may be used as biasing modules 410 for other PV modules 100 in need of a bias (including the PV modules originally used as biasing modules). When the PV modules 100 are acting as biasing modules 410, the biasing modules 410 are coupled to an array of PV modules 100 to be biased using either a directional current device 510 (in the unregulated system 500) or a current regulator 610 (in the regulated system 600). In each system, the subset of PV modules used during any given biasing operation must include at least one more biasing module than the number of PV modules being biased during the biasing operation.
At step 720, an integer number n of PV modules is designated for biasing based on the determination made during step 710. At step 730, an integer number of at least n+1 PV modules is designated as biasing modules to be used to bias the n PV modules designated in step 720. At step 730, the biasing modules are serially coupled to each other and their output is directed to the n PV modules to be biased. The biasing module output is directed to the PV modules to be biased via a current regulating device such as either a directional current device or a current regulator. The current regulating device assists in providing a biasing current to the PV modules.
At step 740, the biasing modules are used to bias the n PV modules. The process of biasing the n PV modules may take several minutes or even hours, with the biasing time being generally related to the module temperature. The biasing process results in a forward bias constant current being applied from the biasing modules to the PV modules.
When the biasing process is completed (e.g., the necessary time has elapsed), the biasing modules are disconnected from the biased PV modules (step 750). The biasing modules may then be used to bias additional PV modules, to be biased themselves (if needed), or to generate electricity for the solar farm output.
The above-described biasing process is especially useful when PV modules are pre-assembled into arrays of known size. For example, a solar farm may include pre-assembled arrays of PV modules, with the pre-assembled arrays including arrays of length n and arrays of length at least n+1. Such pre-assembled arrays may be assembled on cartridges. An example of an array assembled on a cartridge can be found in U.S. Patent Application Publication No. 2011/0140528 (U.S. patent Ser. No. 12/969,049), the disclosure of which is incorporated herein by reference. Thus, a cartridge that includes more PV modules than another cartridge can be used to bias the smaller cartridge with a minimal amount of disconnecting and reconnecting of PV modules into arrays.
Additionally, although the biasing modules 410 have been described above as being serially connected, other configurations may be used. For example, the biasing modules 410 could be connected in parallel. Regardless of the configuration used, however, the output of the biasing modules 410 must provide a sufficient bias current, and preferably a constant current. Some configurations may require additional components to provide a biasing module output current that is a constant current.
The above description and drawings are only to be considered illustrative of specific embodiments, which achieve the features and advantages described herein. Modifications and substitutions to specific process conditions can be made. Accordingly, the embodiments of the invention are not considered as being limited by the foregoing description and drawings, but is only limited by the scope of the appended claims.
Number | Name | Date | Kind |
---|---|---|---|
4166918 | Nostrand et al. | Sep 1979 | A |
4494302 | Knechtli | Jan 1985 | A |
5215599 | Hingorani et al. | Jun 1993 | A |
6081017 | Kim et al. | Jun 2000 | A |
6246219 | Lynch | Jun 2001 | B1 |
6365825 | Hayashi | Apr 2002 | B1 |
6979771 | Mimura | Dec 2005 | B2 |
7276684 | Misek | Oct 2007 | B2 |
7969757 | Kernahan | Jun 2011 | B2 |
7979969 | Basol | Jul 2011 | B2 |
8633671 | Kelly | Jan 2014 | B2 |
8659858 | Matsuo | Feb 2014 | B2 |
9184594 | Garabandic | Nov 2015 | B2 |
20010023703 | Kondo | Sep 2001 | A1 |
20030015728 | Bosco et al. | Jan 2003 | A1 |
20100084011 | Forrest et al. | Apr 2010 | A1 |
20100109759 | Ochi et al. | May 2010 | A1 |
20110012430 | Cheng | Jan 2011 | A1 |
20110121647 | Ragavanis | May 2011 | A1 |
20110203635 | Beck | Aug 2011 | A1 |
20110276188 | Beck | Nov 2011 | A1 |
20120112557 | Sager | May 2012 | A1 |
20120280571 | Hargis | Nov 2012 | A1 |
20120313455 | Latham | Dec 2012 | A1 |
20130057198 | Gerlovin | Mar 2013 | A1 |
20130241294 | Cleland | Sep 2013 | A1 |
20130249297 | Takehara | Sep 2013 | A1 |
20150308889 | Stueve | Oct 2015 | A1 |
Number | Date | Country |
---|---|---|
2476508 | Jun 2011 | GB |
10-2009-0128954 | Dec 2009 | KR |
Entry |
---|
K. Emery et al., “Measurement of Photovoltaic Device Current as a Function of Voltage, Termperature, Intensity and Spectrum.” Solar Cells, vol. 21, pp. 313-327, 1987. |
C. Honsberg et al., “Bias of PN Junctions.” http://pveducation.org./pvcdrom/pn-junction/bias-of-pn-junction. Oct. 27, 2011. |
Y. Yuan et al., “Efficiency Enhancement in Organic Solar Cells with Ferroelectric Polymers.” Nature Materials, vol. 10, pp. 296-302, Apr. 2011. Supplementary Information, pp. 1-12. |
B. Van Zeghbroeck, “Principles of Semiconductor Device.” http://ecee.colorado.edu/˜bart/book/book/chapter4/ch4—6.htm. |
Number | Date | Country | |
---|---|---|---|
20130313900 A1 | Nov 2013 | US |
Number | Date | Country | |
---|---|---|---|
61641025 | May 2012 | US |