WO2014046699A1 - Mitigation of arc flash hazard in photovoltaic power plants - Google Patents
Mitigation of arc flash hazard in photovoltaic power plants Download PDFInfo
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- WO2014046699A1 WO2014046699A1 PCT/US2012/070384 US2012070384W WO2014046699A1 WO 2014046699 A1 WO2014046699 A1 WO 2014046699A1 US 2012070384 W US2012070384 W US 2012070384W WO 2014046699 A1 WO2014046699 A1 WO 2014046699A1
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- Prior art keywords
- fuse
- switch
- transformer
- photovoltaic inverter
- low voltage
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Classifications
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for AC mains or AC distribution networks
- H02J3/38—Arrangements for feeding a single network from two or more generators or sources in parallel; Arrangements for feeding already energised networks from additional generators or sources in parallel
- H02J3/381—Dispersed generators
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H7/00—Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions
- H02H7/10—Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions for converters; for rectifiers
- H02H7/12—Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions for converters; for rectifiers for static converters or rectifiers
- H02H7/122—Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions for converters; for rectifiers for static converters or rectifiers for inverters, i.e. DC/AC converters
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of AC power input into DC power output; Conversion of DC power input into AC power output
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S40/00—Components or accessories in combination with PV modules, not provided for in groups H02S10/00 - H02S30/00
- H02S40/30—Electrical components
- H02S40/36—Electrical components characterised by special electrical interconnection means between two or more PV modules, e.g. electrical module-to-module connection
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10F—INORGANIC SEMICONDUCTOR DEVICES SENSITIVE TO INFRARED RADIATION, LIGHT, ELECTROMAGNETIC RADIATION OF SHORTER WAVELENGTH OR CORPUSCULAR RADIATION
- H10F77/00—Constructional details of devices covered by this subclass
- H10F77/95—Circuit arrangements
- H10F77/953—Circuit arrangements for devices having potential barriers
- H10F77/955—Circuit arrangements for devices having potential barriers for photovoltaic devices
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J2101/00—Supply or distribution of decentralised, dispersed or local electric power generation
- H02J2101/20—Dispersed power generation using renewable energy sources
- H02J2101/22—Solar energy
- H02J2101/24—Photovoltaics
-
- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/50—Photovoltaic [PV] energy
-
- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/50—Photovoltaic [PV] energy
- Y02E10/56—Power conversion systems, e.g. maximum power point trackers
Definitions
- Embodiments of the subject matter described herein relate generally to solar cells. More particularly, embodiments of the subject matter disclosed herein relate to photovoltaic power plant operation and maintenance.
- Photovoltaic power plants employ solar cells to convert solar radiation to electrical energy.
- Photovoltaic power plants also include photovoltaic inverters (“inverters”), which convert direct current (DC) generated by the solar cells to alternating current (AC) suitable for delivery to a point of interconnect with a utility grid through a network of transformers and transmission lines.
- Inverters are often employed in inverter stations that comprise multiple inverters connected to a single multiple-winding medium voltage step-up transformer, which in turn is connected to a medium voltage grid.
- Arc flash is a serious workplace hazard when working on inverters, such as during maintenance.
- Mitigating arc-flash hazard in inverter stations poses several design challenges because the utility grid to which the inverter stations are connected serve as large fault current sources, leading to high arc-flash energies within the inverter stations during arc faults.
- effective commissioning and maintenance activities often require full internal access to inverters while the inverters are powered ON and connected live to the utility grid.
- arc flash mitigation solutions may include reducing arc current, increasing the working distance, and reducing the clearing time. These solutions, however, may be difficult to achieve or inadequate to protect workers at inverter stations.
- Certain protective devices are current limiting by design. By limiting or reducing the current available for an arc fault, the corresponding incident energy is reduced during fault-clearing times that are typically short in duration (e.g., 1-3 cycles). Fault currents at these protective devices must be in the current limiting range for them to be effective. The potential problem of this solution is that below the fault current limit, the clearing time goes up significantly and, therefore, the incident energy level may exceed workable levels for a range of grid operating conditions of a photovoltaic power plant.
- Increasing the working distance will significantly reduce the incident energy level because the incident energy is proportional to the square of the distance in open air.
- Working distance can be increased by using remote operating devices and extension tools (e.g., hot-sticks).
- remote operating devices and extension tools e.g., hot-sticks.
- many maintenance or commissioning activities need to have internal access to the inverters while the inverters are powered ON and connected live to the utility grid. Therefore, increasing the working distance may not be practical in inverter stations.
- arc flash mitigation devices are employed to protect personnel during maintenance of photovoltaic inverters.
- an alternating current (AC) output of a photovoltaic inverter is coupled to a low voltage winding of a step up transformer through a bus-bar (e.g., an electrically conductive interconnect), which has higher current rating than a fuse.
- the busbar is replaced with the fuse.
- the fuse may be employed in conjunction with a switch.
- the switch may be a disconnect switch that places the bus-bar in parallel with the fuse during normal operation, and decouples the bus-bar from the fuse during maintenance.
- the switch may also be a transfer switch that places either the bus-bar or the fuse in series with the AC output of the photovoltaic inverter and the low voltage winding of the step up transformer.
- FIG. 1 shows a schematic diagram of a photovoltaic power plant in accordance with an embodiment of the present invention.
- FIGS. 2 and 3 show schematic diagrams of a system in the form of an inverter station in accordance with an embodiment of the present invention.
- FIG. 4 shows a schematic diagram illustrating bus-bar links of the system of FIG. 2 in accordance with an embodiment of the present invention.
- FIG. 5 shows a schematic diagram illustrating fuse links of the system of FIG. 3 in accordance with an embodiment of the present invention.
- FIG. 6 show a schematic diagram of bus-bar links on interconnect holders in accordance with an embodiment of the present invention.
- FIG. 7 show a schematic diagram of fuse links on interconnect holders in accordance with an embodiment of the present invention.
- FIG. 8 shows a schematic diagram of another system in the form of an inverter station in accordance with an embodiment of the present invention.
- FIG. 9 schematically shows switch-fuse links of the system of FIG. 8 in accordance with an embodiment of the present invention.
- FIG. 10 schematically shows further details of the switch-fuse links of the system of FIG. 8 in accordance with an embodiment of the present invention.
- FIG. 11 shows a schematic diagram of yet another system in the form of an inverter station in accordance with an embodiment of the present invention.
- FIG. 12 schematically shows switch-fuse links of the system of FIG. 1 1 in accordance with an embodiment of the present invention.
- FIGS. 13 and 14 schematically illustrate operation of a maintenance lever in accordance with an embodiment of the present invention.
- FIG. 15 shows a flow diagram of a method of switching an inverter station from normal operation mode to maintenance mode in accordance with an embodiment of the present invention.
- FIG. 16 shows a flow diagram of a method of switching an inverter station from maintenance mode to normal operation mode in accordance with an embodiment of the present invention.
- the highest potential short-circuit current level and its corresponding clearing time may not represent the worst-case scenario in terms of arc flash energy.
- the highest arc flash energy may correspond to a fault current level much below the maximum.
- a single point setting of tripping time for the traditional circuit breaker solution when the tripping current is set low, may introduce nuisance tripping that may result in undesired interruptions, frequent shutdowns, and restarts that impact reliable power production.
- the tripping current setting is too high, the arc currents below the tripping level may still result in arc flash hazard simply because the resulting breaker trip time increases significantly. More specifically, if the arcing current exceeds the instantaneous setting, incident energy levels are very low. At arc currents lower than the instantaneous setting, the additional clearing time more than offsets the lower arc current to produce higher incident energy and therefore results in a more hazardous situation.
- the PV power plant 100 may include a plurality of transformer housings 140, a plurality of photovoltaic inverters 120, a plurality of photovoltaic modules 110, and a high voltage (HV) step up transformer 160. Control and other components of the PV power plant 100 not necessary for the understanding of the invention are not shown for clarity of illustration.
- HV high voltage
- an inverter station 190 includes one or more inverters 120 connected to a transformer housing 140.
- a transformer housing 140 may include a single multiple-winding medium voltage (MV) transformer to which all inverters 120 in the same inverter station 190 are connected.
- Groups of solar cells 1 15 may be packaged together in a photovoltaic module 1 10, which may be connected to an inverter 120 along with other photovoltaic modules 1 10.
- the solar cells 115 may comprise commercially-available solar cells, such as those available from SunPower Corporation of San Jose California. It is to be noted that only some of the solar cells 1 15 are labeled in FIG. 1 in the interest of clarity.
- An inverter 120 converts DC current generated by a set of photovoltaic modules to AC current suitable for delivery to the utility grid at a point of interconnect (POI) 161.
- POI point of interconnect
- the output of an inverter 120 is stepped up by an MV transformer of a transformer housing 140 and further stepped up by the transformer 160 before being provided to the utility grid, which may be operated by a utility company that provides electrical service to consumers.
- FIGS. 2 and 3 show schematic diagrams of a system in the form of an inverter station 190A in accordance with an embodiment of the present invention.
- the inverter station 190A is a particular embodiment of an inverter station 190 of the PV power plant 100 shown in FIG. 1.
- the inverter station 190A is illustrated using two inverters 120 (i.e., 120-1, 120-2) that are connected to a single multiple winding step up MV transformer 142.
- an inverter station may have fewer or more inverters connected to an MV transformer.
- the MV transformer 142 has two low voltage windings and a single high voltage winding. Each of the low voltage windings is coupled to an inverter 120 and the high voltage winding is coupled to the utility grid.
- the transformer housing 140A shown in FIG. 2 is a particular embodiment of a transformer housing 140 of the PV power plant 100.
- the transformer housing 140A may enclose the MV transformer 142, an MV expulsion fuse 143, an MV current limiting fuse 144, and an MV disconnect switch 145 in the same protective housing for safety reasons.
- a transformer housing may include different inverter-transformer links (e.g., bus-bar or contact links, fuse links, and switch- fuse links) within its housing in various embodiments of the present invention.
- the inverter-transformer links, which connect the inverters 120 to the MV transformer 142 may also be located outside a transformer housing.
- the inverter station 190A is an example of a configuration with two inverters 120 connected to a single three-winding MV transformer 142.
- Other circuit configurations of an inverter station may include a single inverter or multiple parallel inverters connected through a two winding MV transformer.
- An inverter 120 may comprise an inverter circuit 122, an AC output disconnect 123 and a DC input disconnect 121.
- the inverter circuit 122 comprises an electrical circuit for converting the DC power received from the photovoltaic modules 1 10 to a utility grid compatible output.
- the DC input disconnect 121 and the AC output disconnect 123 may comprise switches for disconnecting the inverter 120 from the photovoltaic modules 1 10 and the MV transformer 142, respectively.
- the inverters 120 may comprise commercially available photovoltaic inverters.
- An inverter 120 has a DC input for receiving the DC output of the photovoltaic modules 110 and an AC output that is provided to the utility grid.
- the AC output of the inverter 120 is stepped up by the MV transformer 142 before being provided to the utility grid.
- the MV transformer 142 provides galvanic isolation between the utility grid and the inverters 120, and hence to the photovoltaic modules 1 10.
- the inverters 120 are connected to a large utility grid with potentially large available fault current, potential for the occurrence of arc flash at the inverters 120 is a major safety concern.
- overcurrent protection is typically provided at the high voltage side of the MV transformer 142 by the fuses 143 and 144, the corresponding fault clearance times for faults at the low voltage side of the MV transformer 142 and the inverters 120 are generally long and widely varies, resulting in high incident arc energies in the region between the low voltage terminals of the MV transformer 142 and the AC outputs of the inverters 120.
- Insertion of an appropriate arc flash mitigation solution at this location between the MV transformer 142 and the inverters 120 will help ensure personnel safety, specifically while operating, commissioning, maintaining, or servicing the inverters 120.
- the arc flash mitigation solution reduces the incident energy level from PPE class 4 or higher (> 40 cal/cm 2 ) to PPE class 2 or lower ( ⁇ 8 cal/cm 2 ) consistently for all potentially available fault currents from the utility grid.
- a conventional arc flash mitigation solution is to install dedicated circuit breakers within the MV transformer housing and in series with the inverter outputs.
- the circuit breakers help ensure that any potential occurrence of arc fault at the inverter outputs is instantly cleared by the associated circuit breaker such that the associated incident energies do not exceed PPE class 2 level.
- proper setting of circuit breaker tripping characteristics is a difficult task at best because the setting needs to ensure that the circuit breaker trips instantly for a wide range of arc fault currents with levels dependent on the available fault currents, while not responding to over and surge currents expected during normal operation.
- the housing should be suitably designed to meet the environmental requirements of the circuit breakers, resulting in increased implementation costs.
- the inverter station 190A may have different inverter- transformer links depending on whether the inverter station 190A is on normal operation mode or maintenance mode. As its name implies, normal operation mode is when the inverters 120 are normally operating to provide solar generated power to the utility grid. Maintenance mode is when the inverters 120 are being maintained, serviced, or commissioned.
- FIG. 2 shows the connection configuration of the outputs of the inverters 120 to the MV transformer 142 in normal operation mode.
- a bus-bar link 141 e.g., an electrically conductive interconnect
- a bus-bar link 141 is preferably, but not necessarily, enclosed within the transformer housing 140A.
- a single wire or multi-wire conductor 124 may connect a bus-bar link 141 to an AC output of an inverter 120.
- the bus-bar links 141 connect the AC outputs of the inverters 120 to corresponding low voltage terminals of the MV transformer 142.
- the bus-bar links 141 are designed such that they carry the full rated current of the inverters 120, and are arranged in a mechanical configuration such that they can be easily removed and replaced with a set of fuse-links 146 (see FIG. 3) for maintenance mode.
- FIG. 3 illustrates a set of fuse-links 146 for maintenance mode.
- FIG. 4 shows a schematic diagram illustrating bus-bar links 141 connecting the terminals L1A, L2A, and L3A from the inverter 120-1 to corresponding low voltage winding terminals XI A, X2A, and X3A of the MV transformer 142, and connecting the terminals LIB, L2B, and L3B from the inverter 120-2 to corresponding low voltage winding terminals X1B, X2B, and X3B of the MV transformer 142.
- the example shown is for a three- phase wiring, one wiring for each phase, for illustration purposes only.
- FIG. 3 shows the connection configuration of the inverters 120 to the MV transformer 142 in maintenance mode.
- fuse links 146 instead of the bus-bar links 141) serve as the inverter-transformer links.
- each bus-bar link 141 Prior to performing a maintenance task on the inverters 120, each bus-bar link 141 is replaced with a fuse link 146.
- the fuse- links 146 are rated to carry a fraction of the rated current of the inverters 120 such that fault-clearance time of the fuse-links 146 is sufficiently short to reduce arc flash energy well below the levels corresponding to PPE class 2 for the full range of available fault currents.
- a fuse-link 146 may comprise a fast acting fuse. With the fuse links 146, maintenance tasks that require the inverters 120 to remain powered ON may thus be employed in relative safety. Examples of maintenance tasks that require the inverters 120 to be powered ON include inverter output current and voltage measurements, leakage current measurements, harmonics measurements, thermal measurements, control, communication and monitoring circuits and functionalities diagnostics, or any other multimeter or oscilloscope measurements that may arise during maintenance and commissioning activities that require close access to live components inside the inverters. Should an arc fault situation were to arise during maintenance, the fast acting fuse links 146 are able to clear the arc within a few milliseconds to a few hundred milliseconds, thereby limiting the incident energy significantly well below 8 cal/cm 2 .
- FIG. 5 shows a schematic diagram illustrating fuse links 146 connecting the terminals LI A, L2A, and L3A from the inverter 120-1 to corresponding low voltage winding terminals XI A, X2A, and X3A of the MV transformer 142, and connecting the terminals LIB, L2B, and L3B from the inverter 120-2 to corresponding low voltage winding terminals X1B, X2B, and X3B of the MV transformer 142.
- bus-bar links and the fuse links share a common physical spacing layout, termination footprint, and termination devices, such that procedures for replacing bus-bar links 141 with fuse links 146, and vice versa, can be performed reliably with ease and with minimal number of steps.
- This feature is schematically illustrated in FIGS. 6 and 7 where an interconnect holder 192 physically accommodates either a bus-bar link 141 or a fuse link 146.
- Each holder 192 allows for connecting a low voltage winding terminal of the MV transformer 142 (i.e., XI A, X2A, X3A, X1B, X2B, or X3B) to a corresponding terminal from an inverter 120 (i.e., L1A, L2A, L3A, LIB, L2B, or L3B).
- a low voltage winding terminal of the MV transformer 142 i.e., XI A, X2A, X3A, X1B, X2B, or X3B
- an inverter 120 i.e., L1A, L2A, L3A, LIB, L2B, or L3B.
- the maintenance person simply has to remove the bus-bar links 141 from the interconnect holders 192 and install the fuse links 141 onto the holders 192.
- the entire inverter station 1 0A needs to be powered OFF and disconnected from the utility grid, which may be achieved by opening the MV disconnect switch 145 (shown in FIGS. 2 and 3), which is typically present at the high voltage side of the MV transformer 142.
- a method of performing maintenance on an inverter 120 of a PV power plant 100 in one embodiment of the invention may involve putting the inverter station 190A in maintenance mode by powering OFF the inverters 120, disconnecting the inverter station 190A from the utility grid by opening the MV disconnect switch 145, replacing the bus-bar links 141 with the fuse-links 146, closing the MV disconnect switch 145, powering ON the inverters 120, and performing maintenance on one or more inverters 120 (while powered ON) with the fuse-links 146 in-place instead of the bus-bar links 141.
- the method further involves putting the inverter station 190A in normal operation mode by powering OFF the inverters 120, disconnecting the inverter station 190A from the utility grid by opening the MV disconnect switch 145, replacing the fuse links 146 with the bus-bar links 141, closing the MV disconnect switch 145, and powering ON the inverters 120 with the bus-bar links 141 in place instead of the fuse links 146.
- FIG. 8 there is shown a schematic diagram of a system in the form of an inverter station 190B in accordance with an embodiment of the present invention.
- the inverter station 190B is a particular embodiment of the inverter station 190A where the inverter-transformer links comprise switch-fuse links 201.
- the switch- fuse links 201 may be incorporated within the protective enclosure of the transformer housing, which is relabeled as "140B.”
- Other components of the inverter 190B are otherwise as described with reference to FIGS. 2 and 3.
- a switch-fuse link 201 comprises a fast acting fuse F and a single-throw switch 203.
- the fuse F is rated for a fraction of the rated current of the inverters 120 such that fault-clearance time of the fuse F is sufficiently short to reduce the arc flash energy well below the levels corresponding to PPE2.
- the single-throw switch 203 may comprise a two-terminal single-throw disconnect switch.
- the switch 203 is closed and in parallel with the fuse 201.
- the contacts B of switch 203 thus connect the inverter 120 to the MV transformer 142 during normal operation, just like the previously described bus-bar link 141 (see FIG. 2).
- the fuse F carries only a small fraction of the rated current of the inverter 120 during normal operation.
- the switch 203 is opened from being in parallel with the fuse F, allowing the fuse F to connect the inverter 120 to the MV transformer 142 just like the previously described fuse-links 146 (see FIG. 3).
- FIG. 9 schematically shows the switch-fuse links 201 in accordance with an embodiment of the present invention.
- a switch-fuse link 201 may comprise a fuse F (i.e., Fl , F2, F3, F4, F5, or F6) and a corresponding switch contacts B (i.e., B l, B2, B3, B4, B5, or B6) of switch 203.
- the single- throw switches 203 are ganged together to be operable by a single maintenance lever 204, which may be accessible on the outside of the transformer housing.
- the MV transformer 142 winding terminals X1A, X2A, X3A, and X1B, X2B, X3B and the terminals LIA, L2A, L3A, LIB, L2B, and L3B from the inverters 120 are as previously described with reference to FIGS. 4 and 5.
- throwing the maintenance lever 204 into a first position closes all the contacts B of the switches 203 to place the contacts B in parallel with corresponding permanently installed fuses F to place the inverter station 190B in normal operation mode.
- the maintenance lever 204 is thrown into a second position (maintenance position) to open the contacts B of the switches 203 such that the inverters and the MV transformer low voltage windings are connected through the fuses F.
- the maintenance lever 204 may be locked in place in a particular position with a padlock 205 for safety reasons.
- the switch-fuse links 201 advantageously eliminate the need to manually remove and install bus-bars and fuses to change mode of operations.
- switch-fuse links 201 because the fuses F are always installed, the fuses F are still present and connected in parallel with the contacts B during normal operation. Consequently, each fuse F will carry a small fraction of the normal operating current.
- the amount of fuse current flowing during the normal operating condition may be reduced to a very small level by a circuit layout design of a switch-fuse link 201 with appropriate impedance matching between the contact B of a switch 203 and the fuse F. This is illustrated in FIG. 10, which schematically shows a switch-fuse link 201 in accordance with an embodiment of the present invention.
- a circuit 206 that comprises the contact B of switch 203 has an equivalent series resistance 207.
- a circuit 208 that comprises the fuse F has an equivalent series resistance 209. If, for example, the equivalent series resistance 207 of the circuit 206 associated with the switch 203 is R swi , then the circuit 208 of the corresponding fuse F is intentionally designed such that the equivalent series resistance 209 is equal to k(R mh where kj»l .
- the equivalent impedances should be designed to meet environmental requirements for both normal operating and maintenance conditions.
- FIG. 1 there is shown a schematic diagram of a system in the form of an inverter station 190C in accordance with an embodiment of the present invention.
- the inverter station 190C is a particular embodiment of the inverter station 190A where the inverter-transformer links comprise switch- fuse links 213.
- the switch- fuse links 203 may be incorporated within the protective enclosure of the transformer housing, which is relabeled as "140C.”
- Other components of the inverter 190C are otherwise as described with reference to FIGS. 2 and 3.
- a switch-fuse link 203 comprises a fast acting fuse 214, a bus-bar 213, and a double-throw switch 215.
- the fuse 214 is rated for a fraction of the rated current of the inverters 120 such that fault- clearance time of the fuse 214 is sufficiently short to reduce the arc flash energy well below PPE 2.
- the double-throw switch 215 may comprise a transfer switch with two positions to connect the inverter 120 to the MV transformer 142 either through the fuse 214 or the bus-bar 213. That is, only one of the fuse 214 or the bus-bar 213 is connecting the inverter 120 to the low- voltage side of the MV transformer 142 at any given time.
- the fuse 214 and the bus-bar 213 may be permanently installed.
- switch-fuse links 212 instead of switch-fuse links 201 (see FIG. 8) is that the fuses 214 do not carry any load current during normal operation. Consequently, the fuse sizing and circuit layout design considerations do not need to take into account continuous duty requirements, resulting in simpler electrical design.
- a trade-off is that the switch-fuse links 212 are typically more expensive to implement and physically bigger than the switch-fuse links 201.
- FIG. 12 schematically shows the switch- fuse links 212 in accordance with an embodiment of the present invention.
- the double-throw switches 215 are ganged together to be operable by the single maintenance lever 204, which may be accessible on the outside of the transformer housing.
- the MV transformer 142 winding terminals X1A, X2A, X3A, and X1B, X2B, X3B and the terminals L1A, L2A, L3A, LIB, L2B, and L3B from the inverters 120 are as previously described with reference to FIGS. 4 and 5.
- the procedure for switchover between normal operation and maintenance modes is performed with the inverter station completely powered OFF and disconnected from the utility grid to ensure that the switching procedure itself does not pose an arc flash hazard. This may be accomplished by opening the MV disconnect switch 145 (typically through a hot-stick) prior to operating the maintenance lever 204. An interlock mechanism may be employed to ensure the switchover between the two modes of operation is accomplished only with the MV disconnect switch 145 in the open (i.e., OFF) position.
- FIGS. 13 and 14 show the maintenance lever 204 in normal operation position (FIG. 13) and maintenance position (FIG. 14).
- the maintenance lever 204 may be locked in place using the padlock 205.
- the inverters 120 are connected to the low-voltage side of the MV transformer 142 through series connected switch contacts and/or bus-bars, e.g., contact B of switch 203 in the case of the switch-fuse links 201 and bus-bars 213 and the contact of switch 215 in the case of the switch-fuse links 212.
- the inverters 120 are connected to the low- voltage side of the MV transformer 142 through series connected switch contacts and/or fuses, e.g., fuses F in the case of the switch-fuse links 201 and fuses 214 and contact of switch 215 in the case of the switch-fuse links 212.
- FIG. 15 shows a flow diagram of a method of switching an inverter station 190 from normal operation mode to maintenance mode in accordance with an embodiment of the present invention.
- the method of FIG. 15 may be performed as a pre-maintenance procedure.
- the inverters 120 are powered OFF, and disconnected by opening their DC input disconnects 121 and AC output disconnects 123 (step 301).
- the MV disconnect switch 145 is opened (i.e., switched OFF) and locked in the open position with a load disconnect padlock having the same padlock key as the padlock 205 of the maintenance lever 204 (step 302); the padlock key is then released from the load disconnect padlock.
- the padlock key is used to unlock the maintenance lever 204, and the maintenance lever 204 is turned from the operation position to the maintenance position (step 303).
- the maintenance lever 204 is locked at the maintenance position and the padlock key is released (step 304).
- Step 305 is repeated for all the inverters 120 in the inverter station (step 306).
- the load disconnect padlock is unlocked using the padlock key to allow the MV disconnect switch 145 to be closed, i.e., switched ON (step 307).
- the inverters 120 are powered ON, and reconnected by closing their DC input disconnects 121 and AC output disconnects 123 (step 308).
- the output power limit of the inverters 120 Prior to powering on, the output power limit of the inverters 120 are set to a value smaller than the full rating that corresponds with, and is appropriate for, the rating of the fuses F of the switch-fuse link 201 or fuses 214 of the switch-fuse link 212. Power-on maintenance actions are then performed on the inverters 120. Note that during the power-on maintenance actions (i.e., maintenance actions performed while the inverters 120 are powered ON), the output power level of the inverters 120 are still limited as determined by the fuse ratings of the switch-fuse links 201 or 212, whichever is implemented, because the maintenance lever 204 is still locked in the maintenance position.
- FIG. 16 shows a flow diagram of a method of switching an inverter station 190 from maintenance mode to normal operation mode in accordance with an embodiment of the present invention.
- the method of FIG. 16 may be performed as a post-maintenance procedure following the method of FIG. 1 .
- the inverters 120 are powered OFF, and disconnected by opening their DC input disconnects 121 and AC output disconnects 123 (step 320).
- the MV disconnect switch 145 is opened (i.e., switched OFF) and locked in the open position with the load disconnect padlock (step 321); the padlock key is then released from the load disconnect padlock.
- the padlock key is used to unlock the maintenance lever 204, and the maintenance lever 204 is turned from the maintenance position to the operation position (step 322).
- the maintenance lever 204 is locked in the operation position and the padlock key is released.
- the disconnect padlock of the MV disconnect switch 145 is unlocked, allowing the MV disconnect switch 145 to be closed (step 323).
- the MV disconnect switch 145 is locked in the closed position and the padlock key 205 is left captive in the disconnect padlock.
- the inverters 120 are powered ON, and reconnected by closing their DC input disconnects 121 and AC output disconnects 123 (step 324).
- the output power limit of the inverters 120 are then adjusted back to their full rating [0066]
- the fuses limit the amount of power that can be transferred from the inverters to the utility grid due to their lower current rating in relation to the full rating of the inverters. This limitation does not impact typical maintenance activities and associated tests on the inverters as they do not require the need for full power operation during maintenance. Due to this limitation, during maintenance, as described in step 308 of FIG. 15, the power production from the inverters needs to be curtailed to within the limits allowed by the fuse rating, and this typically can be accomplished by software control of the inverters or by disconnection of several DC input circuits feeding into the inverters.
- Table 1 shows a qualitative comparison of embodiments of the invention that employ switch-fuse links against a conventional solution that is based on circuit breakers. Although the material costs associated with the switch-fuse based solutions of FIGS. 8 and 11 are higher than that of the bus-bar and fuse link based solution of FIGS. 2 and 3, due to the voltage and high current rating of the switches and use of permanently installed fuses, the switch-fuse based solutions are still cost effective when compared to circuit breaker-based solutions.
- both switch-fuse based solutions provide assured safety against potential arc-flash hazards in inverter stations, while the circuit breaker-based solution does not guarantee such assurance in particular when the available fault current and the resulting arc-flash current vary and can reach to a level that is lower than the fixed fast tripping current level of the circuit breaker.
- the bus-bar and fuse link based solution of FIGS. 2 and 3 may be the most cost effective solution.
- PPE level during the variation of Solution can be tailored to meet PPE 2 or less maintenance the fault current
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- Engineering & Computer Science (AREA)
- Power Engineering (AREA)
- Inverter Devices (AREA)
- Emergency Protection Circuit Devices (AREA)
- Photovoltaic Devices (AREA)
- Life Sciences & Earth Sciences (AREA)
- Sustainable Development (AREA)
- Sustainable Energy (AREA)
Abstract
Description
Claims
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2015531902A JP6205661B2 (en) | 2012-09-18 | 2012-12-18 | Mitigating arc flash disasters at solar power plants |
| AU2012390269A AU2012390269B2 (en) | 2012-09-18 | 2012-12-18 | Mitigation of arc flash hazard in photovoltaic power plants |
| CN201280076929.1A CN104798281B (en) | 2012-09-18 | 2012-12-18 | Mitigating Arc Flash Hazards in Photovoltaic Plants |
| MX2015003458A MX342517B (en) | 2012-09-18 | 2012-12-18 | MITIGATION OF RISKS OF ELECTRIC ARC IN PLANTS OF PHOTOVOLTAIC ENERGY. |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/622,270 | 2012-09-18 | ||
| US13/622,270 US9240682B2 (en) | 2012-09-18 | 2012-09-18 | Mitigation of arc flash hazard in photovoltaic power plants |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2014046699A1 true WO2014046699A1 (en) | 2014-03-27 |
Family
ID=50274308
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2012/070384 Ceased WO2014046699A1 (en) | 2012-09-18 | 2012-12-18 | Mitigation of arc flash hazard in photovoltaic power plants |
Country Status (7)
| Country | Link |
|---|---|
| US (2) | US9240682B2 (en) |
| JP (1) | JP6205661B2 (en) |
| CN (1) | CN104798281B (en) |
| AU (1) | AU2012390269B2 (en) |
| CL (1) | CL2015000689A1 (en) |
| MX (1) | MX342517B (en) |
| WO (1) | WO2014046699A1 (en) |
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Also Published As
| Publication number | Publication date |
|---|---|
| US20140078793A1 (en) | 2014-03-20 |
| JP2016500998A (en) | 2016-01-14 |
| AU2012390269B2 (en) | 2017-02-16 |
| JP6205661B2 (en) | 2017-10-04 |
| CN104798281B (en) | 2018-10-19 |
| AU2012390269A1 (en) | 2015-04-02 |
| CN104798281A (en) | 2015-07-22 |
| US9240682B2 (en) | 2016-01-19 |
| MX2015003458A (en) | 2015-09-23 |
| US10211625B2 (en) | 2019-02-19 |
| CL2015000689A1 (en) | 2015-08-28 |
| US20160087425A1 (en) | 2016-03-24 |
| MX342517B (en) | 2016-10-03 |
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