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NL2016935B1 - Method and device for controlling at least one electric apparatus - Google Patents

Method and device for controlling at least one electric apparatus Download PDF

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Publication number
NL2016935B1
NL2016935B1 NL2016935A NL2016935A NL2016935B1 NL 2016935 B1 NL2016935 B1 NL 2016935B1 NL 2016935 A NL2016935 A NL 2016935A NL 2016935 A NL2016935 A NL 2016935A NL 2016935 B1 NL2016935 B1 NL 2016935B1
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NL
Netherlands
Prior art keywords
power demand
power
expected
information
electricity
Prior art date
Application number
NL2016935A
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English (en)
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NL2016935A (en
Inventor
Wouter Joghum Robers Egbert
Marc Vermeer Kaz
Lucas Jorrit
Original Assignee
Peeeks B V
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Peeeks B V filed Critical Peeeks B V
Priority to NL2016935A priority Critical patent/NL2016935B1/nl
Priority to EP17732602.2A priority patent/EP3469675A1/en
Priority to PCT/NL2017/050386 priority patent/WO2017213509A1/en
Publication of NL2016935A publication Critical patent/NL2016935A/en
Application granted granted Critical
Publication of NL2016935B1 publication Critical patent/NL2016935B1/nl

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Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J3/00Circuit arrangements for AC mains or AC distribution networks
    • H02J3/003Load forecast, e.g. methods or systems for forecasting future load demand
    • H02J3/17
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J3/00Circuit arrangements for AC mains or AC distribution networks
    • H02J3/38Arrangements for parallely feeding a single network by two or more generators, converters or transformers
    • H02J3/46Controlling of the sharing of output between the generators, converters, or transformers
    • H02J3/466Scheduling the operation of the generators, e.g. connecting or disconnecting generators to meet a given demand
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J3/00Circuit arrangements for AC mains or AC distribution networks
    • H02J3/38Arrangements for parallely feeding a single network by two or more generators, converters or transformers
    • H02J3/46Controlling of the sharing of output between the generators, converters, or transformers
    • H02J3/48Controlling the sharing of the in-phase component
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B70/00Technologies for an efficient end-user side electric power management and consumption
    • Y02B70/30Systems integrating technologies related to power network operation and communication or information technologies for improving the carbon footprint of the management of residential or tertiary loads, i.e. smart grids as climate change mitigation technology in the buildings sector, including also the last stages of power distribution and the control, monitoring or operating management systems at local level
    • Y02B70/3225Demand response systems, e.g. load shedding, peak shaving
    • YGENERAL 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
    • Y04INFORMATION OR COMMUNICATION TECHNOLOGIES HAVING AN IMPACT ON OTHER TECHNOLOGY AREAS
    • Y04SSYSTEMS INTEGRATING TECHNOLOGIES RELATED TO POWER NETWORK OPERATION, COMMUNICATION OR INFORMATION TECHNOLOGIES FOR IMPROVING THE ELECTRICAL POWER GENERATION, TRANSMISSION, DISTRIBUTION, MANAGEMENT OR USAGE, i.e. SMART GRIDS
    • Y04S20/00Management or operation of end-user stationary applications or the last stages of power distribution; Controlling, monitoring or operating thereof
    • Y04S20/20End-user application control systems
    • Y04S20/222Demand response systems, e.g. load shedding, peak shaving

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Management, Administration, Business Operations System, And Electronic Commerce (AREA)
  • Supply And Distribution Of Alternating Current (AREA)
  • Remote Monitoring And Control Of Power-Distribution Networks (AREA)

Description

Octrooicentrum
Nederland
Figure NL2016935B1_D0001
© 2016935 (21) Aanvraagnummer: 2016935 © Aanvraag ingediend: 10/06/2016
BI OCTROOI (51) Int. CL:
H02J 3/00 (2016.01)
(Π) Aanvraag ingeschreven: (73) Octrooihouder(s):
20/12/2017 PEEEKS B.V. te Delft.
(43) Aanvraag gepubliceerd:
04/01/2018 (72) Uitvinder(s):
Egbert Wouter Joghum Robers te Schiedam.
(w) Octrooi verleend: Kaz Mare Vermeer te Delft.
16/01/2018 Jorrit Lucas te Rotterdam.
(45) Octrooischrift uitgegeven:
31/01/2018 (74) Gemachtigde:
ir. H.Th. van den Heuvel c.s.
te 's-Hertogenbosch.
© Method and device for controlling at least one electric apparatus (57) The present invention relates to a method and device for controlling at least one electric apparatus, comprising a calculator for calculating an expected power demand of the at least one apparatus for a certain time slot, communication means, for communicating the expected power demand to a power grid operator or transmission system operator and a controller, configured for supplying the predicted amount of power to the apparatus.
NL BI 2016935
Dit octrooi is verleend ongeacht het bijgevoegde resultaat van het onderzoek naar de stand van de techniek en schriftelijke opinie. Het octrooischrift komt overeen met de oorspronkelijk ingediende stukken.
Method and device for controlling at least one electric apparatus
The present invention relates to a method and device for controlling at least one electric apparatus. In particular, the invention relates to controlling the at least one electric apparatus dependent on the state of the electrical grid, that is, the amount of electric energy available on the grid compared to the energy demand at the same time.
An electrical grid in itself cannot store energy. At any moment, the amount of electricity generated and put into the grid has to be equal to the amount of electricity drawn by energy consumers. If there is a shortage (the grid as a whole needs more electricity than what is generated) this can lead to a dropping of voltage in the grid, also called a brownout. Brown-outs can damage equipment connected to the grid. Also, the whole grid or parts thereof can experience black-outs: when this occurs the energy transport comes to a full stop and the grid has to be started up completely. If there is a surplus of electricity (i.e. more electricity is generated than what is consumed) this can lead to over voltage, which can also damage equipment connected to or part of the grid. Also these over voltages can result in tripping of safeguards, creating a black out. Surpluses or shortages also have other effects on the grid besides the voltage drops or spikes. The spinning mass present in generators connected to the grid experiences a larger resistance, as the load on the grid is larger than was intended. This leads the generators to slow down, which in turns leads to a lower frequency in the grid, as the rotational speed of these generators is tied directly to the grid frequency. This poses an additional reason to keep the grid balanced: some equipment uses this grid frequency as a time keeping mechanism.
Keeping stability of the grid is not easy, and the complexity of this task is increasing. Not only is the amount of generators and consumers running in the millions, but many of the consumers are not under any form of control by the parties responsible for keeping the grid stable: any individual can at will switch on or off their light, water heater, computer or other appliance. On top of this, the amount of electricity consuming assets is ever increasing, and due to the prices of photovoltaic panels dropping, the amount of electricity generated out of control of utilities or grid operators is also increasing. Due to the increase in photovoltaic and wind generators driven by government incentives to promote clean energy generation the relative amount of uncontrollable generation compared to controlled generation is increasing: wind and solar is strongly depending on weather circumstances.
Most countries have an authority charged with the task to keep the national grid balanced, the national grid operator or Transmission System Operator (TSO). Using several types of reserves, the TSO can adapt the electric generation capacity to follow the instantaneous energy demand from its grid. The TSO forecasts the total electricity demand and supply one day ahead, in 15 minute intervals. These 15-minute timeintervals are referred to as Program Time Units, or PTUs. In order to create the forecast, the TSO requires every party with a direct connection to the grid to send an Eprogramme, in which they describe their energy demand and supply for the next day. These programs have to be balanced: for every PTU, the expected amount of generated electricity has to match the expected electricity demand. A party required to send in such a program is called a Balance Responsible Party (BRP), which refers to the requirement of perfect balance in their E-programmes. After collecting all programs from the BRPs, the TSO is able to forecast the electricity demand and supply for the next day.
During the following day, the TSO monitors the actual electricity supply and demand. The power availability on the grid at any moment is the amount of electricity that is generated (supply) minus the amount of energy that is used (demand). If more electricity is generated than demanded, there is an over-capacity. If less electricity is generated than demanded, there is an under-capacity. When any imbalance appears, the TSO takes measures in order to re-balance the grid as soon as possible.
Other authorities can have similar tasks. Examples of other authorities are: DSOs (Distribution System Operators), electricity generators, electric utilities, power exchanges, regulators or demand-response aggregators. The authorities usually have automated systems that perform these tasks automatically. So when we refer to the authority, we particularly mean their APIs, computer systems and/or control systems. This can derived from context.
However the processes to balance the electricity grid can be painstaking and include manual labor, in particular as soon as the number of actors increases. It is a goal to take away the disadvantages of the prior art, in particular when the number of actors becomes large, for instance above 500 actors.
The invention thereto proposes an automated device for controlling at least one electric apparatus, comprising a calculator for calculating an expected power demand of the at least one apparatus for a certain time slot, communication means, for communicating the expected power demand to a power grid operator or transmission system operator, a controller, configured for supplying the predicted amount of power to the apparatus.
The device according to the invention thus actually controls the energy use of an apparatus, and contributes to the grid balance, by matching the actual use to the predicted use.
But at a point there may be a situation where there is a surplus / over-capacity or a deficit / under-capacity of electricity in the electricity grid. This situation can be determined from indicators, which can be combined: The voltage of the electricity grid, the grid frequency, the phase shift of the electricity grid, price signals in the energy market, particularly a published imbalance price. Some of these signals (for example the imbalance price) have a time lag. To solve this the invention uses prediction to predict that signal. For this prediction models are used, in combination with the other indicators. These prediction models are trained with historical data. These models can be regression models.
In a preferred embodiment, the communication means are configured for receiving information on power availability on the grid; and wherein the controller is further configured for supplying more than the predicted power to the at least one electric apparatus when there is public information on the situation of an over-capacity; and supplying less than the predicted power to the at least one electric apparatus when there is public information on the situation of an under-capacity.
This embodiment has the advantage that the device can compensate for an imbalance caused by other apparatuses on or off a site.
The communication means may for instance be configured for deriving the information on power availability in the electricity grid via the instantaneous energy price. This price is an indicator for the energy (im)balance of the grid.
The invention proposes an apparatus for optimizing electricity use for one or more electricity users. It controls controllable electricity apparatuses, such as cooling machines, electrical heating machines or pump systems. It uses energy measurement to predict the electricity use of the electricity users.
An advantage of this method is that energy cost can be lowered without actually lowering electricity usage. On a local level this is the case because parties that supply energy can benefit from the balance in the electricity grid and reimburse the energy user. On a macro level this is also true, because by balancing the electricity grid, there is more room for cheap, sustainable forms of electricity generation such as solar or wind energy, which will lower cost for electricity in the future.
An electricity user according to the present invention can be a site with an electricity connection and one or more controllable electricity assets. Also it can be a controllable electricity asset itself; this is an electric apparatus that has a (partially) controlled power consumption. Also an energy user can be an organization owning one or more of the above.
The way that the energy users are monitored can for instance be measuring the electricity use, measuring the amount of people that work at a location, measuring financial transactions, measuring maintenance of one or more electrical apparatuses.
In an embodiment of the present invention, in the device according to the invention, the calculator is configured for calculating the expected power demand of the at least one apparatus based on indirect indicators, different than measured power demand.
The predictions of the energy use of an electrical asset may be an important factor in this invention. These predictions are made with forecasting models. These models can range from simple linear regression, but more powerful methods can be used, such as Exponential Triple smoothing: trend and seasonality corrected exponential smoothing (Winter's model), regression of Gaussian processes, neural networks, fuzzy logic and other machine learning or statistical techniques.
Preferably these predictions use other sources than just the energy monitoring to get better predictions such as: personnel roster, financial transactions, good received, goods shipped, Enterprise Resource Planning statistics, maintenance schedule or measurements from other energy users.
The method can also be used to predict other important parameters, because it has very good knowledge about the energy use. Changes in the energy use can be symptoms of changing use, wear on machines or changes in the business that the energy user is in. Therefore the method according to the invention may be used the method to predict for example: Required resources, such as personnel, forklifts, money or maintenance to electric apparatuses.
Also the method may be used to detect that the situation at the energy user has changed. For example there are more electrical apparatuses installed, or a machine has changed properties, changing the behaviour.
An embodiment of the invention consists of a refrigeration machine on a site with a cold store warehouse. The refrigeration machine is at least partially controlled by a box that communicates to the cooling machine, giving set points for power or temperature, also the box gets information from the cooling machine, for example: various temperatures, power, currents, voltages, warnings, errors, or messages. The box also connects to a server that hosts the predictor. The server also is connected to power measurements of the site where the refrigeration machine is located. For example the entire-site power or the power of major electricity users, including the refrigeration machine are measured in near-real time. The server hosts a controller that decides what the refrigeration machine should do. These decisions are communicated back to the box that gives set points to the refrigeration machine.
Besides the device mentioned above, the invention further relates to a method for controlling at least one electric apparatus, comprising the steps of calculating an expected power demand of the at least one apparatus for a certain time slot, communicating the expected power demand to a power grid operator or transmission system operator and supplying the predicted amount of power to the apparatus.
In particular, the method may further comprise the steps of receiving information on power availability in the electricity grid, supplying more than the predicted power to the at least one electric apparatus when there is an over-capacity communicated by the grid operator or transmission system operator, and supplying less than the predicted power to the at least one electric apparatus when there is an under-capacity communicated by the grid operator or transmission system operator.
In an embodiment, the method comprises the step of deriving the information on power availability in the electricity grid via the instantaneous energy price, or the step of deriving the information on power availability from calculating the expected power demand of the at least one apparatus based on indirect indicators, different than measured power demand.
In some occasions the electricity user has to prove that a certain amount of energy or power or a change in power is used or generated. This proof has to be given to an authority, such as a TSO or a BRP. This prove usually is electricity meter data.
However this proof may be tampered with. Current solutions are: restricting amount of time you have to offer the proof, in order to restrict tampering and/or a trusted 3rd party that measures and keeps records. According to the present invention, it is proposed that the latter is replaced by a so called blockchain or similar distributed book keeping system. This way tampering of the records is prevented.
A blockchain is a distributed database that maintains a continuously-growing list of data records hardened against tampering and revision. It consists of data structure blocks which hold exclusively data in initial blockchain implementations, and both data and programs in some of the more recent implementations with each block holding batches of individual (trans)actions and the results of any blockchain executables. Each block contains a timestamp and information linking it to a previous block.
The blockchain can also be used to differentiate between two actors on a single measurement point, such as two energy suppliers on a single connection, two demand7 response aggregators in a (sub-)grid or even suppliers, aggregators and individual users in a more complex structure. In those cases all the actions of each actor, agreements between the actors and regulation can be added into the blockchain.
In an embodiment the aforementioned authority can be partially or fully a blockchain.
In that case the authority would be a DAO (A decentralized autonomous organization).
A decentralized autonomous organization (DAO) is a organization that is run through rules encoded as computer programs called smart contracts. A DAO's financial transaction record and program rules are maintained on a blockchain.
In an embodiment the blockchain is used in combination with smart contracts. Smart contracts are computer protocols that facilitate, verify, or enforce the negotiation or performance of a contract, or that make a contractual clause unnecessary. Smart contracts usually also have a user interface and often emulate the logic of contractual clauses. Clauses may thus be made partially or fully self-executing, self-enforcing, or both.
The above mentioned examples are for illustrative purposes only and do in no sense limit the scope of protection of the present invention, as defined in the following claims.

Claims (20)

  1. Conclusies
    1. Inrichting voor het aansturen van een ten minste één elektrisch apparaat, omvattende:
    - een calculator voor het berekenen van een verwachte vermogensvraag van het ten minste apparaat voor een bepaald tijdslot;
    - communicatiemiddelen voor het communiceren van de verwachte vermogensvraag naar een autoriteit, zoals een elektriciteitsnetexploitant of transmissienetbeheerder;
    - een controller, ingericht voor het leveren van de verwachte hoeveelheid vermogen aan het apparaat.
  2. 2. Inrichting volgens conclusie 1, waarbij:
    - de communicatiemiddelen verder zijn ingericht voor het ontvangen van informatie over de vermogensbeschikbaarheid op het elektriciteitsnet; en waarbij:
    - de controller verder is ingericht voor:
    o het leveren van meer dan het voorspelde vermogen aan het ten minste ene elektrische apparaat wanneer er een overcapaciteit is in het elektriciteitsnet; en o het leveren van minder dan het voorspelde vermogen aan het ten minste ene elektrische apparaat wanneer er een ondercapaciteit is in het elektriciteitsnet.
  3. 3. Inrichting volgens conclusie 2, waarbij de communicatiemiddelen zijn ingericht voor het ontvangen van de informatie over vermogensbeschikbaarheid van een autoriteit.
  4. 4. Inrichting volgens conclusie 2, waarbij de communicatiemiddelen zijn ingericht om de informatie over vermogensbeschikbaarheid op het elektriciteitsnet af te leiden via een instantane energieprijs.
  5. 5. Inrichting volgens één van de voorgaande conclusies, waarbij de communicatiemiddelen zijn ingericht om de informatie over vermogensbeschikbaarheid op het elektriciteitsnet af te leiden door voltage, frequentie of faseverschuiving van het elektriciteitsnet of elke combinatie van deze indicatoren te meten.
  6. 6. Inrichting volgens één van de voorgaande conclusies, waarbij de calculator een meter voor het meten van het energiegebruik van het ten minste ene elektrische apparaat omvat, en waarbij de calculator is ingericht voor het bepalen van de verwachte vermogensvraag gebaseerd op de gemeten vermogensvraag.
  7. 7. Inrichting volgens één van de voorgaande conclusies, waarbij de calculator is ingericht voor het berekenen van de verwachte vermogensvraag van het ten minste ene apparaat gebaseerd op indirecte indicatoren, verschillend van gemeten vermogensvraag.
  8. 8. Inrichting volgens conclusie 6, waarbij de calculator is ingericht voor het berekenen van de verwachte vermogensvraag van het ten minste ene apparaat gebaseerd op één van personeelsrooster, financiële transacties, ontvangen goederen, verscheepte goederen, een onderhoudsrooster.
  9. 9. Inrichting volgens conclusie 6 of 7, waarbij de calculator is ingericht voor het berekenen van de verwachte vermogensvraag van het ten minste ene apparaat gebaseerd op data van Enterprise Resource Planning software.
  10. 10. Inrichting volgens conclusie 6, 7 of 8, waarbij de calculator is ingericht voor het berekenen van de verwachte vermogensvraag van het ten minste ene apparaat gebaseerd op data van een ander elektrisch apparaat.
  11. 11. Inrichting volgens één van de voorgaande conclusies, omvattende een blokketen voor registratie.
  12. 12. Werkwijze voor het aansturen van ten minste één elektrisch apparaat, omvattende de stappen van:
    - het berekenen van een verwachte vermogensvraag van het ten minste ene elektrische apparaat voor een bepaald tijdslot;
    - het communiceren van de verwachte vermogensvraag naar een autoriteit;
    - het leveren van de verwachte hoeveelheid vermogen aan het apparaat.
  13. 13. Werkwijze volgens conclusie 12, verder omvattende de stappen van:
    - het leveren van meer dan het voorspelde vermogen aan het ten minste ene elektrische apparaat wanneer er een overcapaciteit is; en
    - het leveren van minder dan het voorspelde vermogen aan het ten minste ene elektrische apparaat wanneer er een ondercapaciteit is.
  14. 14. Werkwijze volgens conclusie 12, verder omvattende de stap van het ontvangen van de informatie over vermogensbeschikbaarheid in het elektriciteitsnet van een autoriteit.
  15. 15. Werkwijze volgens conclusie 12, verder omvattende de stap van het afleiden van de informatie over vermogensbeschikbaarheid in het elektriciteitsnet via een instantane energieprijs.
  16. 16. Werkwijze volgens conclusie 12 verder omvattende de stap van het afleiden van de informatie over vermogensvraag van het berekenen van de verwachte vermogensvraag van het ten minste ene apparaat gebaseerd op indirecte indicatoren, verschillend van gemeten vermogensvraag.
  17. 17. Werkwijze volgens conclusie 12 verder omvattende de stap van het afleiden van de informatie over vermogensvraag van het berekenen van de verwachte vermogensvraag van het ten minste ene apparaat gebaseerd op één van personeelsrooster, financiële transacties, ontvangen goederen, verscheepte goederen, een onderhoudsrooster.
  18. 18. Werkwijze volgens conclusie 12 verder omvattende de stap van het afleiden van de informatie over vermogensvraag van het berekenen van de verwachte vermogensvraag van het ten minste ene apparaat gebaseerd op data van Enterprise Resource Planning Software.
  19. 19. Werkwijze volgens conclusie 12 verder omvattende de stap van het afleiden van de informatie over vermogensvraag van het berekenen van de verwachte vermogensvraag van het ten minste ene apparaat gebaseerd op data van een ander elektrisch apparaat.
  20. 20. Werkwijze volgens één van de conclusies 12-19, waarbij de registraties worden verzameld en/of in een blokketen worden gehouden.
NL2016935A 2016-06-10 2016-06-10 Method and device for controlling at least one electric apparatus NL2016935B1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
NL2016935A NL2016935B1 (en) 2016-06-10 2016-06-10 Method and device for controlling at least one electric apparatus
EP17732602.2A EP3469675A1 (en) 2016-06-10 2017-06-09 Method and device for controlling at least one electric apparatus
PCT/NL2017/050386 WO2017213509A1 (en) 2016-06-10 2017-06-09 Method and device for controlling at least one electric apparatus

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NL2016935A NL2016935B1 (en) 2016-06-10 2016-06-10 Method and device for controlling at least one electric apparatus

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7406364B2 (en) * 2001-09-13 2008-07-29 Abb Ab Method and system to calculate a demand for energy
US7010363B2 (en) * 2003-06-13 2006-03-07 Battelle Memorial Institute Electrical appliance energy consumption control methods and electrical energy consumption systems
US9177323B2 (en) * 2007-08-28 2015-11-03 Causam Energy, Inc. Systems and methods for determining and utilizing customer energy profiles for load control for individual structures, devices, and aggregation of same
US8183712B2 (en) * 2008-09-10 2012-05-22 International Business Machines Corporation Method and system for organizing and optimizing electricity consumption
US8178997B2 (en) * 2009-06-15 2012-05-15 Google Inc. Supplying grid ancillary services using controllable loads
SE1100591A1 (sv) * 2011-08-12 2011-08-24 Abb Research Ltd Förfarande och system för att tillgodose behov i bostadshus

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EP3469675A1 (en) 2019-04-17
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