Systems and Methods for the Optimization of User Rate Charges
20180114283 ยท 2018-04-26
Assignee
Inventors
- Sasan Mokhtari (Eden Prairie, MN, US)
- Ebrahim Vaahedi (Vancouver, CA)
- Khashayar Nodehi Fard Haghighi (Maple Grove, MN, US)
- Girish Thirukkurungudi Sekar (Hopkins, MN, US)
- Guillermo Irisarri (Plymouth, MN, US)
- David Heim (Minneapolis, MN, US)
- Long Duong (Maple Grove, MN, US)
- Ali Ipakchi (San Carlos, CA, US)
Cpc classification
Y02P80/14
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
G06Q10/04
PHYSICS
International classification
G06Q10/04
PHYSICS
Abstract
A process/method is provided, which facilitates resource optimization considering all dispatchable resources as well as user rate charges, which are rate charges comprised of a base rate plus an incremental excess fee associated with designated usage parameters. The proposed system and method may utilize inputs to construct a periodic load profile over varied periods of time. The disclosure relates to forming a periodic load profile over varied periods of time based upon considerations of short-term and long-term cost for uses within microgrids to create microgrid resource schedules that optimize usage of loads and generation resources within a microgrid for minimizing both short-term energy charges and long-term demand charges while increasing microgrid resource efficiencies.
Claims
1. A method for resource optimization solution for microgrid, configured to: a. estimate forecasted load demanded by the microgrid as a day-ahead import schedule; b. Establish an incremental cost of import; c. determine applicability of incremental cost of import using import cost constraints; and d. apply the incremental cost of import in short term scheduling and optimization
2. The method of claim 1, wherein the day-ahead import schedule is comprised of: a. Real-Time Values of Resources and Loads; b. Day-Ahead Load Forecast; c. Day-Ahead DER Forecast; and d. Using Import Cost without Demand Charge;
3. The method of claim 1, wherein the incremental cost of import is comprised of: a. Demand charge comprised of: i. Demand Charge Incremental Cost comprised of: 1. Day-Ahead Schedule divided into segments comprised of: a. Day-Ahead Import Schedule
4. The method of claim 1, wherein the import cost constraints are comprised of: a. An import cost configured to: i. Use Energy cost when a Peak Demand measured in the current period is less than the Import Level from the expected historical data; ii. Compare against the Highest Peak Demand during the month so far when a Peak Demand measured in the current period is greater than the Import Level from the expected historical data iii. Use Energy cost when a Peak Demand measured in the current period is less than the Highest Peak Demand during the month so far; iv. Use Incremental Cost of Import when a Peak Demand measured in the current period is greater than the Highest Peak Demand during the month so far
5. The method of claim 1, wherein the incremental cost of import is comprised of: a. Real-Time Values of Resources and Loads; b. Load Forecast Short-Term; c. DER Forecast Short-Term; d. Using Incremental Import Cost including Demand Charge; and e. Deployed in the next interval as an Optimized Control Set;
6. A system for resource optimization solution for microgrid, configured to: a. estimate forecasted load demanded by the microgrid as a day-ahead import schedule; b. Establish an incremental cost of import; c. determine applicability of incremental cost of import using import cost constraints; and d. apply the incremental cost of import in short term scheduling and optimization
7. The system of claim 6, wherein the day-ahead import schedule is comprised of: a. Real-Time Values of Resources and Loads; b. Day-Ahead Load Forecast; c. Day-Ahead DER Forecast; and d. Using Import Cost without Demand Charge;
8. The system of claim 6, wherein the incremental cost of import is comprised of: a. Demand charge comprised of: i. Demand Charge Incremental Cost comprised of: 1. Day-Ahead Schedule divided into segments comprised of: a. Day-Ahead Import Schedule
9. The system of claim 6, wherein the import cost constraints are comprised of: a. An import cost configured to: i. Use Energy cost when a Peak Demand measured in the current period is less than the Import Level from the expected historical data; ii. Compare against the Highest Peak Demand during the month so far when a Peak Demand measured in the current period is greater than the Import Level from the expected historical data; iii. Use Energy cost when a Peak Demand measured in the current period is less than the Highest Peak Demand during the month so far; iv. Use Incremental Cost of Import when a Peak Demand measured in the current period is greater than the Highest Peak Demand during the month so far;
10. The system of claim 6, wherein the incremental cost of import is comprised of: a. Real-Time Values of Resources and Loads; b. Load Forecast Short-Term; c. DER Forecast Short-Term; d. Using Incremental Import Cost including Demand Charge; and e. Deployed in the next interval as an Optimized Control Set;
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0015] While this invention may be embodied in many forms, there are specific embodiments of the invention described in detail herein. This description is an exemplification of the principles of the invention and is not intended to limit the invention to the particular embodiments illustrated.
[0016] In general, this disclosure is directed toward resource optimization for a microgrid considering all dispatchable resources as well as utility energy and demand user charge rate charges. In particular, the present disclosure relates to construction of an optimization solution that combines long-term demand charges (e.g. monthly) together with short-term energy charges (e.g. 15 minutes) thus minimizing the total utility charges incurred. The invention utilizes a special optimization formulation that considers both long-term and short-term costs to establish short-term control set points for all the resources.
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[0023] In one non-limiting example, if the microgrid includes a battery or other storage energy resource, the invention may advise or take action, depending on various embodiments, to discharge the battery charge prior to utilizing high demand charge imports or other more expensive resources. In another non-limiting example, if the load profile includes a solar input or other variable energy resource, the invention may determine utilization of these resources as economically or otherwise advantageous when forecasted to be available in sufficient quantities. In some embodiments, the systems and methods of the proposed invention may incorporate factors other than economic optimization, such as but not limited to, user preference for solar power usage, into the load profile ultimately optimizing resources usage including import from the utility for a user's preference.
[0024] Conversely, in another non-limiting example, the invention may analyze load profile inputs, including power grid inputs and other generation and load sources for a load consuming area, in order to determine an economically advantageous time segment in which to charge a battery or other stored energy resource, such as the early morning hours, when energy prices tend to lower, or during a period of lower than expected usage when utility energy prices can become low. In this way, the system and methods of the proposed invention may anticipate future energy needs and prepare accordingly by storing lower cost energy for future use.
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[0026] As a non-limiting example, in certain embodiments, the invention may comprise of computer software located on a participant 202, 300, 400 device, which may act as data publishing sources, or from any other data publishing source, such as although not necessarily limited to, a computer, tablet, or mobile device utilized to send messages and data transmissions to facilitate the system and methods herein described.