IP Library Granted Patent US 12,422,795
Granted Patent B2
US 12,422,795 · App. 17/948,118 · Granted Sep 23, 2025

Systems and methods for sustainability planning for a building

Inventors: Joseph C. Jones (Milwaukee, WI); Nicole Elyse James (Milwaukee, WI); Leigh-Golding Desantis (Milwaukee, WI); Robbie G. Davis (Milwaukee, WI)
Assignee: TYCO FIRE & SECURITY GMBH
G05B13/042
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Quick Facts
Patent No.
US 12,422,795
App. No.
17/948,118
Granted
Sep 23, 2025
Kind
B2
Abstract

The present disclosure relates to systems and methods for improving sustainability of a building. The building includes a plurality of pieces of building equipment that control one or more environmental conditions of the building based on operational settings. One building system includes one or more storage devices storing instructions thereon that, when executed by one or more processors, cause the one or more processors to determine, using data that pertains to at least one of the building or the plurality of pieces of building equipment, a plurality of baseline values for a plurality of sustainability parameters associated with the building, receive a user defined sustainability goal for at least a subset of the plurality of sustainability parameters, analyze operating parameters of at least a portion of the plurality of pieces of building equipment to determine one or more changes to the operating parameters predicted to fulfill the user defined sustainability goal, alone or in combination with one or more other changes to the building, provide one or more recommendations to implement the one or more changes to the operating parameters to meet the user defined sustainability goal, receive a command to implement at least one change of the one or more changes to the operating parameters and determine a revised set of operating parameters for at least a first piece of building equipment of the plurality of pieces of building equipment responsive to the command to implement the at least one change to the operating parameters.

Claims (102)

1. A building system for improving sustainability of a building, the building including a plurality of pieces of building equipment that control one or more environmental conditions of the building based on operational settings, the building system including one or more storage devices storing instructions thereon that, when executed by one or more processors, cause the one or more processors to:

determine, using data that pertains to at least one of the building or the plurality of pieces of building equipment, a plurality of baseline values for a plurality of sustainability parameters associated with the building;

receive a user defined sustainability goal for at least a subset of the plurality of sustainability parameters;

analyze operating parameters of at least a portion of the plurality of pieces of building equipment to identify historical operations of the plurality of pieces of building equipment;

determine, using the historical operations, one or more changes to the operating parameters predicted to fulfill the user defined sustainability goal alone or in combination with one or more other changes to the building;

provide one or more recommendations which (i) identify the one or more changes to the operating parameters and (ii) indicate one or more pieces of building equipment of the plurality of pieces of building equipment that correspond to respective changes of the one or more changes to the operating parameters;

receive a command to implement, for at least a first piece of building equipment of the plurality of pieces of building equipment, at least one change of the one or more changes to the operating parameters;

determine, based at least on the at least one change, a revised set of operating parameters for at least the first piece of building equipment of the plurality of pieces of building equipment responsive to the command to implement the at least one change; and

transmit, to at least the first piece of building equipment, a control signal causing at least the first piece of building equipment to implement the revised set of operating parameters.

2. The building system of claim 1 , wherein the instructions cause the one or more processors to:

transmit, to at least the first piece of building equipment of the plurality of pieces of building equipment, a control signal, wherein the control signal causes the revised set of operating parameters for at least the first piece of building equipment to be implemented;

detect, responsive to transmittal of the control signal, a change in at least a first sustainability parameter of the plurality of sustainability parameters associated with the building, wherein the change indicates an improvement in the user defined sustainability goal; and

determine that the change in at least the first sustainability parameter of the plurality of sustainability parameters reflects implementation of the revised set of operating parameters by at least the first piece of building equipment of the plurality of pieces of building equipment.

3. The building system of claim 1 , wherein the instructions cause the one or more processors to:

detect a change in a sustainability parameter of the plurality of sustainability parameters;

update, responsive to determination that the change in the sustainability parameter indicates that a sustainability goal for the sustainability parameter is noncompliant, the one or more recommendations to include a new recommendation to address the change in the sustainability parameter; and

execute, responsive to receipt of an indication to accept the new recommendation, the new recommendation, wherein execution of the new recommendation causes one or more control signals to be transmitted to at least one piece of building equipment the one or more pieces of building equipment of the plurality of pieces of building equipment and the one or more control signals to adjust operational parameters of the one or more pieces of building equipment. at least one piece of building equipment of the plurality of pieces of building equipment.

4. The building system of claim 1 , wherein the instructions cause the one or more processors to:

determine, for an action that pertains to at least one piece of building equipment of the plurality of pieces of building equipment, a predicted impact on a sustainability parameter of the plurality of sustainability parameters;

compare the predicted impact with the user defined sustainability goal; and

prevent, in response to determining that the predicted impact violates a sustainability goal for the sustainability parameter, the action from occurring.

5. The building system of claim 1 , wherein the instructions cause the one or more processors to:

determine, using the data that pertains to the plurality of pieces of building equipment, a plurality of building systems that pertain to the plurality of pieces of building equipment;

generate, using the data that pertains to the plurality of building systems, a contribution factor for at least one building system of the plurality of building systems;

generate, using the contribution factor for the at least one building system of the plurality of building systems, a recommendation that addresses the contribution factor of the at least one building system of the plurality of building systems, wherein the recommendation includes a plurality of changes to operational parameters of one or more first pieces of building equipment included in the building system; and

execute the recommendation causing changes to the operational parameters of the one or more first pieces of building equipment included in the building system.

6. The building system of claim 1 , wherein the instructions cause the one or more processors to:

receive, from a user device, a selection of a recommendation from the one or more recommendations;

determine, using the recommendation, a piece of building equipment of the plurality of pieces of building equipment that pertains to the recommendation;

execute the recommendation causing changes to operational parameters of the piece of building equipment; and

detect a change in a sustainability parameter of the plurality of sustainability parameters responsive to changing the operational parameters of the piece of building equipment.

7. The building system of claim 1 , wherein the instructions cause the one or more processors to:

detect, using the data that pertains to the building, a new piece of building equipment;

associate the new piece of building equipment with a sustainability parameter of the plurality of sustainability parameters; and

generate, in response to associating the new piece of building equipment with the sustainability parameter, a recommendation that addresses a sustainability goal of the sustainability parameter, wherein the recommendation includes one or more actions, executable by the new piece of building equipment, that meet the sustainability goal of the sustainability parameter.

8. The building system of claim 1 , wherein the instructions cause the one or more processors to:

determine, using data that pertains to at least one the building or the plurality of pieces of building equipment, a contribution factor for a piece of building equipment of the plurality of pieces of building equipment, wherein the contribution factor indicates contribution of the piece of building equipment in relation to a sustainability parameter of the plurality of sustainability parameters; and

determine, using the contribution factor for the piece of building equipment and a predetermined contribution factor index, a benchmark index for the piece of building equipment.

9. The building system of claim 1 , wherein the instructions cause the one or more processors to:

cause a user device to display, via a user interface, a prompt to select, from the plurality of pieces of building equipment or a plurality of building equipment types that pertain to the plurality of pieces of building equipment, a piece of building equipment or a building equipment type to be sized;

identify the piece of building equipment or the building equipment type selected from the plurality of pieces of building equipment or the plurality of building equipment types; and

determine, using the data that pertains to the building, a size for the piece of building equipment or the building equipment type, wherein the size optimizes at least one of a load for the piece of building equipment or the building equipment type, a capacity for the piece of building equipment or the building equipment type or a cost associated with the piece of building equipment or the building equipment type.

10. The building system of claim 1 , wherein the instructions cause the one or more processors to:

detect, using the data that pertains to the building, a change in a sustainability parameter of the plurality of sustainability parameters;

determine, using the change in the sustainability parameter, a trend associated with the sustainability parameter, wherein the trend indicates progress made towards a sustainability goal for the sustainability parameter; and

cause a user device to display, via a user interface, a graphical representation of the trend, wherein the graphical representation of the trend includes at least one of a baseline value for the sustainability parameter, a current value for the sustainability parameter, a difference between the baseline value and the current value or the sustainability goal that relates to the sustainability parameter.

11. The building system of claim 1 , wherein the plurality of sustainability parameters include at least one of:

carbon emissions;

energy consumption;

water consumption;

waste production;

gas consumption;

solar power consumption; or

wind turbine electric consumption.

12. A method for improving sustainability of a building, comprising:

determining, by one or more processing circuits, using data that pertains to at least one of the building or a plurality of pieces of building equipment, a plurality of baseline values for a plurality of sustainability parameters associated with the building;

receiving, by the one or more processing circuits, a user defined sustainability goal for at least a subset of the plurality of sustainability parameters;

analyzing, by the one or more processing circuits, operating parameters of at least a portion of the plurality of pieces of building equipment to identify historical operations of the plurality of pieces of building equipment;

determining, by the one or more processing circuits, using the historical operations, one or more changes to the operating parameters predicted to fulfill the user defined sustainability goal alone or in combination with one or more other changes to the building;

providing, by the one or more processing circuits, one or more recommendations which (i) identify the one or more changes to the operating parameters and (ii) indicate one or more pieces of building equipment of the plurality of pieces of building equipment that correspond to respective changes of the one or more changes to the operating parameters;

receiving, by the one or more processing circuits, a command to implement, first at least a first piece of building equipment of the plurality of pieces of building equipment, at least one change of the one or more changes to the operating parameters;

determining, by the one or more processing circuits, based at least on the at least one change, a revised set of operating parameters for at least the first piece of building equipment of the plurality of pieces of building equipment responsive to the command to implement the at least one change; and

transmitting, by the one or more processing circuits, a control signal causing at least the first piece of building equipment to implement the revised set of operating parameters.

13. The method of claim 12 , comprising:

transmitting, by the one or more processing circuits, to at least the first piece of building equipment of the plurality of pieces of building equipment, a control signal, wherein the control signal causes the revised set of operating parameters for at least the first piece of building equipment to be implemented;

detecting, by the one or more processing circuits, responsive to transmitting the control signal, a change in at least a first sustainability parameter of the plurality of sustainability parameters associated with the building, wherein the change indicates an improvement in the user defined sustainability goal; and

determining, by the one or more processing circuits, that the change in at least the first sustainability parameter of the plurality of sustainability parameters reflects implementation of the revised set of operating parameters by at least the first piece of building equipment of the plurality of pieces of building equipment.

14. The method of claim 12 , comprising:

detecting, by the one or more processing circuits, a change in a sustainability parameter of the plurality of sustainability parameters;

updating, by the one or more processing circuits, responsive to determining that the change in the sustainability parameter indicates that a sustainability goal for the sustainability parameter is noncompliant, the one or more recommendations to include a new recommendation to address the change in the sustainability parameter; and

executing, by the one or more processing circuits, responsive to receiving an indication to accept the new recommendation, the new recommendation, wherein executing the new recommendation causes one or more control signals to be transmitted to at least one piece of building equipment the one or more pieces of building equipment of the plurality of pieces of building equipment and the one or more control signals to adjust operational parameters of the one or more pieces of building equipment. at least one piece of building equipment of the plurality of pieces of building equipment.

15. The method of claim 12 , comprising:

determining, by the one or more processing circuits circuit, for an action that pertains to at least one piece of building equipment of the plurality of pieces of building equipment, a predicted impact on a sustainability parameter of the plurality of sustainability parameters;

comparing, by the one or more processing circuits, the predicted impact with the user defined sustainability goal; and

preventing, by the one or more processing circuits, in response to determining that the predicted impact violates a sustainability goal for the sustainability parameter, the action from occurring.

16. The method of claim 12 , comprising:

determining, by the one or more processing circuits, using the data that pertains to the plurality of pieces of building equipment, a plurality of building systems that pertain to the plurality of pieces of building equipment;

generating, by the one or more processing circuits, using the data that pertains to the plurality of building systems; a contribution factor for a building system of the plurality of building systems;

generating, by the one or more processing circuits, using the contribution factor of the building system of the plurality of building systems, a recommendation that addresses the contribution factor of the building system of the plurality of building systems, wherein the recommendation includes a plurality of changes to operational parameters of one or more first pieces of building equipment included in the building system; and

executing, by the one or more processing circuits, the recommendation causing changes to the operational parameters of the one or more first pieces of building equipment included in the building system.

17. The method of claim 12 , comprising:

receiving, by the one or more processing circuits, from a user device, a selection of a recommendation from the one or more recommendations;

determining, by the one or more processing circuits, using the recommendation, a piece of building equipment of the plurality of pieces of building equipment that pertains to the recommendation;

executing, by the one or more processing circuits, the recommendation causing changes to operational parameters of the piece of building equipment; and

detecting, by the one or more processing circuits, a change in a sustainability parameter of the plurality of sustainability parameters responsive to changing the operational parameters of the piece of building equipment.

18. The method of claim 12 , comprising:

detecting, by the one or more processing circuits, using the data that pertains to the building, a new piece of building equipment;

associating, by the one or more processing circuits, the new piece of building equipment with a sustainability parameter of the plurality of sustainability parameters; and

generating, by the one or more processing circuits, in response to associating the new piece of building equipment with the sustainability parameter, a recommendation that addresses a sustainability goal of the sustainability parameter, wherein the recommendation includes one or more actions, executable by the new piece of building equipment, that meet the sustainability goal of the sustainability parameter.

19. A building system for improving sustainability of a building, the building including a plurality of pieces of building equipment that control one or more environmental conditions of the building based on operational settings, the building system including one or more computer-readable storage media having instructions stored thereon that, when executed by one or more processors, cause the one or more processors to implement operations comprising:

determining, using data that pertains to at least one of the building or the plurality of pieces of building equipment, a plurality of baseline values for a plurality of sustainability parameters associated with the building;

receiving a user defined sustainability goal for at least a subset of the plurality of sustainability parameters;

analyzing operating parameters of at least a portion of the plurality of pieces of building equipment to identify historical operations of the plurality of pieces of building equipment;

determining, using the historical operations, one or more changes to the operating parameters predicted to fulfill the user defined sustainability goal alone or in combination with one or more other changes to the building;

providing one or more recommendations which (i) identify the one or more changes to the operating parameters and (ii) indicate one or more pieces of building equipment of the plurality of pieces of building equipment that correspond to respective changes of the one or more changes to the operating parameters;

receiving a command to implement, for at least a first piece of building equipment of the plurality of pieces of building equipment, at least one change of the one or more changes to the operating parameters;

determining, based at least on the at least one change, a revised set of operating parameters for at least the first piece of building equipment of the plurality of pieces of building equipment responsive to the command to implement the at least one change; and

transmitting, to at least the first piece of building equipment, a control signal causing at least the first piece of building equipment to implement the revised set of operating parameters.

20. The building system of claim 19 , wherein the instructions cause the one or more processors to implement operations comprising:

transmitting, to at least the first piece of building equipment of the plurality of pieces of building equipment, a control signal, wherein the control signal causes the revised set of operating parameters for at least the first piece of building equipment to be implemented;

detecting, responsive to transmitting the control signal, a change in at least a first sustainability parameter of the plurality of sustainability parameters associated with the building, wherein the change indicates an improvement in the user defined sustainability goal; and

determining that the change in at least the first sustainability parameter of the plurality of sustainability parameters reflects implementation of the revised set of operating parameters by at least the first piece of building equipment of the plurality of pieces of building equipment.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2025
From: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
To: TYCO FIRE & SECURITY GMBH
Reel/Frame 070533/0503 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2022
From: JONES, JOSEPH C.; JAMES, NICOLE ELYSE; DESANTIS, LEIGH-GOLDING; DAVIS, ROBBIE G.
To: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
Reel/Frame 061599/0106 →
Continuity (3)
Provisional Application 63246177 · Sep 20, 2021
Provisional Application 63336935 · Apr 29, 2022
Related Publication 20230085641A1 · Mar 23, 2023
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Johnson Heating and Cooling L.L.C., “Excel Rehabilitation Building Automation,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Waterford-Michigan/Building- Automation-System--Excel.html, retrieved from… [cited by applicant]
Johnson Heating and Cooling L.L.C., “Intertek Testing Services Building Automation,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Plymouth-Michigan/Building-Automation-System-Plymouth-Michigan.html, … [cited by applicant]
Johnson Heating and Cooling L.L.C., “JLA Medical Building Building Automation,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Waterford-Michigan/Building-Automation-System--JLA.html, retrieved from in… [cited by applicant]
Johnson Heating and Cooling L.L.C., “Mosaic Christian Building Automation (Images),” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Detroit/Building-Automation-Images.html, retrieved from internet Oct.… [cited by applicant]
Johnson Heating and Cooling L.L.C., “Mosaic Christian Building Automation,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Detroit/Mosaic-Christian.html, retrieved from internet Oct. 27, 2022 (5 pages). [cited by applicant]
Johnson Heating and Cooling L.L.C., “Shepherd's Gate Lutheran Church Building Automation,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Shelby-Township-Michigan/Building-Automation-Systems-SG.html, r… [cited by applicant]
Johnson Heating and Cooling L.L.C., “St. Clair County Residence Building Automation,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/St-Clair-Michigan/Building-Automation-System-St-Clair-Michigan.html,… [cited by applicant]
Johnson Heating and Cooling L.L.C., “St. Joseph Mercy Oakland U. C. Building Automation,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Waterford-Michigan/Building-Automation-Systems-SJMO.html, retrie… [cited by applicant]
Johnson Heating and Cooling L.L.C., “Waterford Internal Medicine Building Automation,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Waterford-Michigan/Building-Automation-Systems-WIM.html, retrieved … [cited by applicant]
Johnson Heating and Cooling, LLC, “Building Automation Clawson Michigan 2.0,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Clawson-Michigan/Building-Automation-Clawson-Manor-2.html, retrieved from th… [cited by applicant]
Johnson Heating and Cooling, LLC, “Building Automation Images Clawson Michigan 2.0,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Clawson-Michigan/Building-Automation-Clawson-Manor-2-Images.html, ret… [cited by applicant]
Johnson Heating and Cooling, LLC, “Building Automation System Clawson Michigan Clawson Manor,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Clawson-Michigan/Building-Automation-System-Clawson-Manor.h… [cited by applicant]
Johnson Heating and Cooling, LLC, “Building Automation System in Michigan Images,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Macomb-County-Michigan/Building-Automation-Images.html; retrieved from … [cited by applicant]
Johnson Heating and Cooling, LLC, “Building Automation System in Michigan,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Macomb-County-Michigan/Building-Automation-Confidential-Customer.html; retriev… [cited by applicant]
Johnson Solid State LLC, “Building Automation Equipment,” URL: http://cooljohnson.com/Video/Building_Automation/Confidential_Customer_BLD_2/Building_Automation_Equipment.mp4, retrieved from internet Oct. 27, 2022 (35 pa… [cited by applicant]
Johnson Solid State LLC, “Building Automation GUI,” URL: http://cooljohnson.com/Video/Building_Automation/Confidential_Customer_BLD_2/Building_Automation_GUI.mp4, retrieved from internet Oct. 27, 2022 (24 pages). [cited by applicant]
Johnson Solid State LLC, “Cooling Logic Overview,” URL: http://coolinglogic.com/documents/CoolingLogic_Overview_High_Quality.mp4, retrieved from internet Oct. 27, 2022 (16 pages). [cited by applicant]
Johnson Solid State LLC, “So what is CoolingLogic™?” URL: http://coolinglogic.com/Coolinglogic-How-it-Works.html, retrieved from the internet Oct. 27, 2022 (3 pages). [cited by applicant]
Johnson, David, “A Method to Increase HVAC System Efficiency And Decrease Energy Consumption,” White Paper: Johnson Solid State, LLC, URL: http://coolinglogic.com/documents/16102106_White_Paper_High_Resolution_Protected… [cited by applicant]
Johnson, David, “CoolingLogic™: Mosaic Christian Church A Case Study,” Report: Johnson Solid State, LLC, URL: http://coolinglogic.com/documents/19020301_Mosaic_Christian_Coolinglogic_Case_Study.pdf, Feb. 2, 2019 (140 pa… [cited by applicant]
Johnson, David, “Excel Rehabilitation Building Automation: Building Automation System User Manual ,” URL: http://cooljohnson.com/Building-Automation-Systems-Michigan/Waterford-Michigan/Building-Automation-System-Excel-M… [cited by applicant]
Johnson, David, “Temperature Control System and Methods for Operating Same,” Pre-Publication printout of U.S. Appl. No. 15/231,943, filed Aug. 9, 2016, URL: http://coolinglogic.com/documents/16080901_CIP_As_Filed.pdf (9… [cited by applicant]
Johnson, David., “CoolingLogic™: Changing the Way You Cool,” Report: Johnson Solid State, LLC, URL: http://coolinglogic.com/documents/18111303_Changing_the_way_you_Cool.pdf, Nov. 7, 2018 (12 pages). [cited by applicant]
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