Condenser fan speed control for air conditioning system efficiency optimization

US9945387B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9945387-B2
Application numberUS-201214127747-A
CountryUS
Kind codeB2
Filing dateJun 20, 2012
Priority dateJun 22, 2011
Publication dateApr 17, 2018
Grant dateApr 17, 2018

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  1. Title

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  2. Abstract

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  5. First independent claim

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  7. Citations and related patents

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Abstract

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A method for fan speed control for a condenser fan in an air conditioning system includes determining a refrigerant condition at an inlet of a compressor by a condenser fan speed control module; determining a refrigerant condition at an outlet of the compressor by the condenser fan speed control module; determining a parabolic curve of a relationship between an air conditioning system performance metric and a speed of the condenser fan based on the determined inlet condition and the determined outlet condition by the condenser fan speed control module; identifying an optimum condenser fan speed based on a vertex of the parabolic curve by the condenser fan speed control module; and controlling the speed of the condenser fan to meet the optimum fan speed by the condenser fan speed control module.

First claim

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The invention claimed is: 1. A method for fan speed control for a condenser fan in an air conditioning system, the method comprising: determining a sensed refrigerant condition at an inlet of a compressor of the air conditioning system by a condenser fan speed control module; determining a sensed refrigerant condition at an outlet of the compressor by the condenser fan speed control module; determining a parabolic curve of a relationship between an air conditioning system performance metric and a speed of the condenser fan based on the determined inlet condition and the determined outlet condition by the condenser fan speed control module; identifying an optimum condenser fan speed based on a vertex of the parabolic curve by the condenser fan speed control module; and controlling the speed of the condenser fan to meet the optimum condenser fan speed by the condenser fan speed control module. 2. The method of claim 1 , wherein the inlet condition comprises the temperature of the refrigerant at the compressor inlet, and the outlet condition comprises the temperature of the refrigerant at the compressor outlet. 3. The method of claim 1 , wherein the inlet condition comprises the pressure of the refrigerant at the compressor inlet, and the outlet condition comprises the pressure of the refrigerant at the compressor outlet. 4. The method of claim 3 , further comprising determining a temperature of the refrigerant at the compressor inlet based on the pressure of the refrigerant at the compressor inlet, and determining a temperature of the refrigerant at the compressor outlet based on the pressure of the refrigerant at the compressor outlet by the condenser fan speed control module. 5. The method of claim 1 , wherein the air conditioning system performance metric comprises an energy efficiency ratio (EER). 6. The method of claim 1 , wherein the air conditioning system performance metric comprises power consumption of the air conditioning system. 7. The method of claim 5 , wherein the power consumption of the air conditioning system is determined based on a power consumption of a compressor and a power consumption of the condenser fan. 8. The method of claim 1 , wherein controlling the speed of the condenser fan to meet the optimum condenser fan speed comprises: determining a current fan speed of the condenser fan; raising the fan speed of the condenser fan in the event the current fan speed is lower than the optimum condenser fan speed; and lowering the fan speed of the condenser fan in the event the current fan speed is higher than the optimum condenser fan speed. 9. The method of claim 1 , further comprising determining a refrigerant condition at an outlet of a condenser of the air conditioning system by the condenser fan speed control module; and determining the parabolic curve of the relationship between the air conditioning system performance metric and the speed of the condenser fan based on the determined compressor inlet condition, the determined compressor outlet condition, and the determined refrigerant condition at the outlet of the condenser. 10. A method for fan speed control for a condenser fan in an air conditioning system, the method comprising: determining a sensed refrigerant condition at an inlet of a compressor of the air conditioning system by a condenser fan speed control module; determining a sensed refrigerant condition at an outlet of the compressor by the condenser fan speed control module; determining a parabolic curve of a relationship between an air conditioning system performance metric and a speed of the condenser fan based on the determined inlet condition and the determined outlet condition by the condenser fan speed control module; identifying an optimum condenser fan speed based on a vertex of the parabolic curve by the condenser fan speed control module; and controlling the speed of the condenser fan to meet the optimum condenser fan speed by the condenser fan speed control module; wherein identifying the optimum condenser fan speed based on the vertex of the parabolic curve by the condenser fan speed control module comprises adjusting the fan speed of the condenser fan and calculating the air conditioning performance metric as the fan speed of the condenser fan is adjusted to determine the vertex of the parabolic curve. 11. A condenser fan speed control module for a condenser fan in an air conditioning system, comprising: a first connection to an inlet sensor located at a refrigerant inlet of a compressor of the air conditioning system; a second connection to an outlet sensor located at a refrigerant outlet of the compressor; and a third connection to a condenser fan of the air conditioning system; wherein the condenser fan speed control module is configured to determine a parabolic curve of a relationship between an air conditioning system performance metric and a fan speed of the condenser fan based on data from the inlet sensor and the outlet sensor, to identify an optimum condenser fan speed based on a vertex of the parabolic curve, and to control the speed of the condenser fan to meet the optimum condenser fan speed via the third connection. 12. The condenser fan speed control module of claim 11 , wherein the inlet sensor and the outlet sensor each comprise one of a thermocouple and a thermoresistor. 13. The condenser fan speed control module of claim 11 , wherein the inlet sensor and the outlet sensor each comprise pressure transducers. 14. The condenser fan speed control module of claim 13 , wherein the condenser fan speed control module is further configured to determine a temperature of the refrigerant at the compressor inlet based on the data from the inlet sensor, and determine a temperature of the refrigerant at the compressor outlet based on the data from the outlet sensor. 15. The condenser fan speed control module of claim 11 , wherein the air conditioning system performance metric comprises an energy efficiency ratio (EER). 16. The condenser fan speed control module of claim 11 , wherein the air conditioning system performance metric comprises power consumption of the air conditioning system. 17. The condenser fan speed control module of claim 16 , wherein the power consumption of the air conditioning system is determined by the condenser fan speed control module based on a power consumption of a compressor and a power consumption of the condenser fan. 18. The condenser fan speed control module of claim 11 , further comprising a fourth connection to an additional outlet sensor located at a refrigerant outlet of a condenser of the air conditioning system, wherein the condenser fan speed control module is configured to determine the parabolic curve of the relationship between the air conditioning system performance metric and the fan speed of the condenser fan based on data from the inlet sensor, the outlet sensor, and the additional outlet sensor. 19. A computer program product comprising a non-transitory computer readable storage medium containing computer code that, when executed by a computer, implements a method for fan speed control for a condenser fan in an air conditioning system, wherein the method comprises: determining a sensed refrigerant condition at an inlet of a compressor of the air conditioning system; determining a sensed refrigerant condition at an outlet of the compressor; determining a parabolic curve of a relationship between an air conditioning system performance metric and a speed of the condenser fan based on the determined inlet condition and the dete

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What does patent US9945387B2 cover?
A method for fan speed control for a condenser fan in an air conditioning system includes determining a refrigerant condition at an inlet of a compressor by a condenser fan speed control module; determining a refrigerant condition at an outlet of the compressor by the condenser fan speed control module; determining a parabolic curve of a relationship between an air conditioning system performan…
Who is the assignee on this patent?
Balistreri Michael, Daddis Jr Eugene D, Nieva Kenneth J, and 1 more
What technology area does this patent fall under?
Primary CPC classification F04D27/004. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Tue Apr 17 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).