The subject matter disclosed herein relates generally to integration of power generation sources and energy storage systems.
The worldwide demand for electrical energy has been increasing year by year. Much of the electrical energy demand is met by energy produced from conventional energy sources such as coal and gas. However, in recent years, there has been a push for electricity generation by renewable energy resources such as solar power and wind power.
Wind turbine generators are regarded as environmentally friendly and relatively inexpensive alternative sources of energy that utilize wind energy to produce electrical power. Further, solar power generation uses photovoltaic (PV) modules to generate electricity from sunlight. Since the intensity of wind and sunlight is not constant, the power output of wind turbines and PV modules fluctuate throughout the day. Unfortunately, electricity demand does not vary in accordance with solar and wind variations.
An energy storage system may help to address the issue of variability of solar and wind power to some extent. Essentially, the variable power from solar and wind power plants can be stored in the energy storage system which can then be used at a later time or at a remote location. Energy storage systems may also be charged from a power network and could be used to address frequency variations, harmonic suppression, voltage support, and power quality in the power network.
Certain conventional solar power generation systems such as described in commonly assigned Sok U.S. Pat. No. 8,217,534 combine arrays of solar modules using a plurality of first level solar combiners and then combine the power from the first level solar combiners at a second level solar combiner before conditioning the fully combined power for use by a power network. This is done in part because otherwise it would not be practical to have a high number of wires from individual solar arrays entering a single solar combiner. Typically, when energy storage is used to supplement such conventional solar power generation systems, the storage is situated at a common location such as near the second level solar combiner.
By using a plurality of energy storage systems to combine power output from renewable power generation sources with energy storage devices in the respective energy storage systems, the need for separate first level combiner systems is eliminated and a smaller volume of wires and fuses may be used as compared to those required in conventional approaches.
A reservoir includes power generation sources and energy storage systems. At least some of the energy storage systems have a housing and energy storage devices. The energy storage systems are electrically connected to selected ones of the power generation sources. A system level combiner is in each of the energy storage systems, and the system level combiner combines power from the energy storage devices and selected ones of the power generation sources to provide system level combined power as a first output. A reservoir level combiner combines the system level combined power from a plurality of system level combiners into a reservoir level combined power. A power conditioning system receives, combines, and conditions the reservoir level combined power from the energy storage systems for supply to a power network. The energy storage devices are electrically connected through the system level combiner and the reservoir level combiner.
An energy storage system has a housing, a plurality of energy storage devices, and connections for receiving power from selected ones of a plurality of power generation sources. A system level combiner combines the power from the respective energy storage devices and selected ones of the power generation sources to provide system level combined power as an output. A reservoir level combiner combines the system level combined power from a plurality of system level combiners into a reservoir level combined power. The energy storage devices are electrically connected through the system level combiner and the reservoir level combiner so that a two-way power transfer path is created between the energy storage devices and each respective system level combiner via the reservoir level combiner.
A reservoir system includes a plurality of power generation sources and a plurality of energy storage systems. At least some of the energy storage systems include one or more energy storage devices, and the energy storage systems are electrically connected to selected ones of the power generation sources. A system level combiner is in each of the energy storage systems. The system level combiner combines power from the energy storage devices and selected ones of the power generation sources to provide system level combined power as a first output. A reservoir level combiner combines the system level combined power from a plurality of system level combiners into a reservoir level combined power. A power conditioning system receives, combines, and conditions the reservoir level combined power for supply to a power network. The energy storage devices are electrically connected through the system level combiner and the reservoir level combiner so that a two-way power transfer path is created between the energy storage devices and each respective system level combiner via the reservoir level combiner.
These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
Power generation sources 22 may comprise renewable power generation sources such as solar power panels, wind turbines, or hydro power turbines, for example, or more conventional sources such as gas or diesel engines. Power network 27 may comprise one or more of a utility grid, a microgrid, and a load, for example.
Energy storage systems 30 may include any number and type of energy storage devices 28 with several examples including batteries such as lithium batteries, sodium halide batteries, molten salt batteries, and flow batteries. Although two energy storage devices 28 are shown per energy storage system 30 for purposes of a simple example, typically a larger number of energy storage devices will be present in each energy storage system 30. In one example (not shown in
The energy storage systems 30 in
Power conditioning system 29 typically comprises a reservoir level combiner 25 and a converter 26. The type of reservoir level combiner and converter will depend upon the specific application. For example, in embodiments wherein solar power generation sources supply power to a network 27 that is an AC utility grid, DC power is generated by power generation sources 22 and may be combined with the DC power from energy storage devices 28 at system level combiners 32 which is then sent as DC power to reservoir level combiner 25 before being supplied to converter 26 that comprises a DC/AC converter. In another example wherein wind turbines are used, power generation sources 22 comprise wind turbines. When such wind turbines or the energy storage systems include AC/DC converters (not shown) to convert the AC power from the wind turbine to DC power, the DC and AC combining and conversion may be similar to the solar embodiment. If such wind turbines or energy storage systems do not include AC/DC converters for the wind power, then the coupling may vary. For example, DC/AC converters may be used in the energy storage systems 30 so that the power from the energy storage devices may be converted into AC power for coupling with the AC power from the wind turbines, and converter 26 may comprise and AC/AC. As another example, if network 27 includes DC transmission, then converter 26 is designed to provide DC power.
The reservoir level combiner 25 and system level combiners 32 also function as a two-way electrical connection path between the plurality of the energy storage devices 28 and the power generation sources 22. The advantage of this configuration is that one power generation source 22 can be used to supply power to multiple and remotely located energy storage devices 28. For example, if the bottom left power generation source 22 in
In the example of
In addition to the system level combiner 32 including the bus bars in end region 46 of
When some combining of power generation source power and battery power occurs at each energy storage system, a smaller main combiner (
In addition to cost savings due to elimination of power generation source specific combiner systems and reduction in amount of wire and fuse requirements, another advantage of using the energy storage system for combiner purposes relates to sensing and control. Energy storage systems typically have a number of sensors and using those same sensors or adding several more for power generation source related measurements is useful for providing a simpler communication path to share information about the status of the system as a whole.
This written description uses examples to disclose the invention, including the preferred embodiments, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims. Aspects from the various embodiments described, as well as other known equivalents for each such aspects, can be mixed and matched by one of ordinary skill in the art to construct additional embodiments and techniques in accordance with principles of this application.
This application claims the benefit of U.S. Provisional Application No. 62/566,413 filed Sep. 30, 2017.
Number | Date | Country | |
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62566413 | Sep 2017 | US |