IP Library Granted Patent US 11,639,808
Granted Patent B2
US 11,639,808 · App. 16/236,916 · Granted May 2, 2023

Hybrid auxiliary solar and geothermal heat pump optimization method

Inventor: Dennis J. Koop (Fairview, TX)
F24F11/63G05B19/042G06F30/00G06F30/13G06F30/20F24F5/0046F24F11/47G05B2219/23005G05B2219/2658G06F2119/08Y02B10/40
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Quick Facts
Patent No.
US 11,639,808
App. No.
16/236,916
Granted
May 2, 2023
Kind
B2
Abstract

An in-ground geothermal heat pump (GHP) closed loop optimization method is disclosed for designing, analyzing, optimizing, controlling, and simulating a detailed model and analysis of a building's in-ground geothermal heat pump system, including borehole length, number of boreholes, heat pump capacity, grid layout, total electric operating costs, efficiency ratios, and hybrid designs, among others. In one aspect of the disclosure described herein, the GHP optimization method can reliably and efficiently predict and optimized the fluctuations of the GHP equipment performance in very small increments which enable the determination of energy consumption and demand information on a specific and unique hourly schedule basis for the building design, including incorporating thermal load data for each individual zone of the building. More specifically, the small increment method here can be used to eliminate overly broad approximations by evaluating GHP performance that is specific to building dynamics, constants, and variables for all of the building individual zones and the building's hourly operating schedule, thereby providing an efficient, reliable, simple, and effective geothermal heat pump design and simulation model.

Claims (29)

1. A method of simulating and controlling an in-ground geothermal heat pump system and auxiliary heating or cooling component, the method comprising:

receiving a geographical location;

receiving temperature data based on the geographical location, wherein the temperature data comprises a plurality of ambient temperature values for each of the 8760 hours in a year;

receiving sunlight data based on the geographical location, wherein the sunlight data comprises the number of days per year of sunlight in a year;

receiving a building type;

receiving an operating schedule for the building type, wherein the operating schedule is comprised of operating hours for the building type for one or more days in a week;

receiving one or more zones for the building type;

receiving an in-ground geothermal heat pump type for the one or more zones;

receiving a load amount to be directed to the auxiliary cooling or heating component;

receiving one or more internal heat conditions for each of the one or more zones;

receiving a block heating or cooling load condition for each of the one or more zones;

determining a plurality of zone load conditions for each of the one or more zones from the block heating or cooling load condition, wherein the plurality of zone load conditions are determined for each of the ambient temperature values based on the operating hours in the operating schedule and the sunlight data;

applying the internal heat conditions to the plurality of zone load conditions;

determining an event wherein the plurality of zone load conditions for each of the ambient temperature values based on the operating hours in the operating schedule are at least partially split between the in-ground geothermal heat pump system and the auxiliary heating or cooling component, wherein the event is further based on the received load amount to be directed to the auxiliary heating or cooling component; and

determining a first operation capacity for the in-ground geothermal heat pump system and a second operation capacity for the auxiliary heating or cooling component; and

initiating operation of the auxiliary heating or cooling component for the second operation capacity based on the determined event; and

determining an optimized entering water temperature to minimize the number of boreholes or length of pipe for the in-ground geothermal heat pump system.

2. The method of claim 1 , further comprising determining an operating cost for the geothermal heat pump system.

3. The method of claim 2 , wherein the step of determining an optimized entering water temperature is further based on the operating cost.

4. The method of claim 2 , wherein the step of determining an operating cost further comprises converting kWh to BTU.

5. The method of claim 1 , further comprising receiving one or more installation costs associated with installing the geothermal heat pump system.

6. The method of claim 5 , wherein the installation costs further comprise a cost associated with a length of pipe.

7. The method of claim 1 , wherein the event is comprised of a calculated or pre-defined entering water temperature.

8. The method of claim 1 , wherein the event is comprised of a calculated or pre-defined amount of heat transfer to the geothermal heat pump system.

9. The method of claim 1 , wherein the first operation capacity for the geothermal heat pump system comprises at least one of: a borehole length, number of boreholes, pipe length, or heat pump power capacity.

10. The method of claim 1 , wherein the second operation capacity for the auxiliary heating or cooling equipment comprises at least one of: one or more of hours of operation for the cooling or heating units, or power capacity for the cooling or heating units.

11. The method of claim 1 , further comprising determining a borehole requirement.

12. The method of claim 11 , wherein the borehole requirement is comprised of the number of boreholes and length per borehole.

13. The method of claim 12 , further comprising automatically adjusting the borehole requirement based on the amount to be directed to the auxiliary heating or cooling component.

Continuity (4)
Continuation In Part 15231520 · Aug 8, 2016
Continuation In Part 14673805 · Mar 30, 2015
Provisional Application 61971716 · Mar 28, 2014
Related Publication 20190137134A1 · May 9, 2019