IP Library › Granted Patent US 12,626,035
Granted Patent B2
US 12,626,035 · App. 18/766,113 · Granted May 12, 2026

Implementation of building energy consumption reduction using distributed computational resources

Inventor: Thomas E. Hoff (Napa, CA)
Assignee: CLEAN POWER RESEARCH, L.L.C.
G06F30/20G06F17/18G06Q10/0631G06Q10/067G06Q50/06
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Quick Facts
Patent No.
US 12,626,035
App. No.
18/766,113
Granted
May 12, 2026
Kind
B2
Abstract

Improved energy conservation, including realization of a ZNET (Zero Net Energy including Transportation) paradigm, can be encouraged by providing energy consumers with a holistic view of their overall energy consumption. Current energy consumption in terms of space heating, water heating, other electricity, and personal transportation can be modeled by normalizing the respective energy consumption into the same units of energy. Options for reducing energy that can include traditional energy efficiencies, such as cutting down on and avoiding wasteful energy use and switching to energy efficient fixtures, and improving the thermal efficiency and performance of a building, can be modeled. Additional options can also include non-traditional energy efficiencies, such as replacing a gasoline-powered vehicle with an electric vehicle, fuel switching from a water heater fueled by natural gas to a heat pump water heater, and fuel switching from space heating fueled by natural gas to a heat pump space heater.

Claims (30)

1 . A system for facilitating implementation of building energy consumption reduction using distributed computational resources, comprising:

a distributed computational system configured to execute computer-executable code, the distributed computational system further configured to:

present a single user interface through which user input is received, the user input comprising selections of a plurality of equipment associated with a user and related to energy consumption, the user input further comprising selections of replacements for at least some of the equipment;

determine a thermal characteristic of the building by remotely controlling at least one of a heating source and a cooling source inside the building;

determine a total consumption of energy obtained from a power utility by a building associated with the user over a set time period;

determine a change to the total energy consumption associated with replacing at least some of the equipment with the replacement equipment based on the thermal characteristic and display the changed total energy consumption on a graph on the single user interface;

obtain at least one characteristic of a renewable

energy generation system sufficient to satisfy at least a portion of the changed total energy consumption of the building, wherein the graph further reflects an installation of the renewable energy generation system;

display a plurality of energy consumption statistics on the user interface at a same time as the graph, the energy consumption statistics comprising a statistic associated with the equipment, a statistic associated with the replacement equipment, and a statistic associated with a connection of the renewable power generation system; and

display the total energy consumption on the graph at the same time as the changed total energy consumption is displayed on the graph and when the graph reflects the installation of the renewable energy generation system, wherein the replacement equipment comprises two or more of electricity-related equipment, building envelope equipment, space conditioning equipment, and water heating equipment.

2 . A system according to claim 1 , the distributed computational system further comprising:

one or more databases storing listings of the equipment and the replacement equipment, the listing further comprising prices associated with the equipment and the replacement equipment, a type of fuel used by the equipment and the replacement equipment and an energy-related characteristic associated with the equipment and the replacement equipment, wherein the user input is based on the data from the one or more databases.

3 . A system according to claim 1 , wherein the building envelope equipment comprises one or more of a window, window shade, ceiling insulation, wall insulation, a radiant barrier, a roof ridge vent, and a fixture that conserves energy within an envelope of the building.

4 . A system according to claim 3 , wherein the replacement equipment that comprises building energy equipment change the thermal characteristic and wherein the changed thermal characteristics affects at least one characteristic of at least one of the replacement equipment other than the building energy equipment.

5 . A system according to claim 3 , the distributed computational system configured to receive the at least one characteristic of the renewable energy generation system from the user.

6 . A system according to claim 3 , the distributed computational system configured to receive from the user the at least the portion of the changed total energy consumption and to determine the at least one characteristic of the renewable energy generation system using the at least the portion.

7 . A method for facilitating implementation of building energy consumption reduction using distributed computational resources, comprising:

presenting by a distributed computational system a single user interface through which user input is received, the user input comprising selections of a plurality of equipment associated with a user and related to energy consumption, the user input further comprising selections for replacements for at least some of the equipment;

determining by the distributed computational system a thermal characteristic of the building by remotely controlling at least one of a heating source and a cooling source inside the building;

determining by the distributed computational system a total consumption of energy obtained from a power utility by a building associated with the user over a set time period;

determining by the distributed computational system a change to the total energy consumption associated with replacing at least some of the equipment with the replacement equipment based on the thermal characteristic and display the changed total energy consumption on a graph on the single user interface; and

obtaining by the distributed computational system at least one characteristic of a renewable energy generation system sufficient to satisfy at least a portion of the changed total energy consumption of the building, wherein the graph further reflects an installation of the renewable energy generation system, system;

displaying by the distributed computational system a plurality of energy consumption statistics on the user interface at a same time as the graph, the energy consumption statistics comprising a statistic associated with the equipment, a statistic associated with the replacement equipment, and a statistic associated with a connection of the renewable power generation system; and

displaying by the distributed computational system the total energy consumption on the graph at the same time as the changed total energy consumption is displayed on the graph and when the graph reflects the installation of the renewable energy generation system, wherein the replacement equipment comprises two or more of electricity-related equipment, building envelope equipment, space conditioning equipment, and water heating equipment.

8 . A method according to claim 7 , further comprising:

storing in one or more databases listings of the equipment and the replacement equipment, the listing further comprising prices associated with the equipment and the replacement equipment, a type of fuel used by the equipment and the replacement equipment and an energy-related characteristic associated with the equipment and the replacement equipment, wherein the user input is based on the data from the one or more databases.

9 . A method according to claim 7 , wherein the building envelope equipment comprises one or more of a window, window shade, ceiling insulation, wall insulation, a radiant barrier, a roof ridge vent, and a fixture that conserves energy within an envelope of the building.

10 . A method according to claim 9 , wherein the replacement equipment that comprises building energy equipment change the thermal characteristic and wherein the changed thermal characteristics affects at least one characteristic of at least one of the replacement equipment other than the building energy equipment.

11 . A method according to claim 9 , further comprising receiving the at least one characteristic of the renewable energy generation system from the user.

12 . A method according to claim 9 , further comprising receiving from the user the at least the portion of the changed total energy consumption and to determine the at least one characteristic of the renewable energy generation system using the at least the portion.

Continuity (7)
Continuation 18347222 · Jul 5, 2023
Continuation 17883326 · Aug 8, 2022
Continuation 17009341 · Sep 1, 2020
Continuation 14531933 · Nov 3, 2014
Continuation In Part 14294079 · Jun 2, 2014
Provisional Application 61935285 · Feb 3, 2014
Related Publication 20240362376A1 · Oct 31, 2024
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