Embodiments relate generally to heating, ventilation, air conditioning and refrigeration (HVAC&R) systems, and more particularly to control of an electronic expansion valve for an HVAC&R system.
Typical HVAC&R operate on a vapor compression cycle and include a compressor, a condenser, an expansion valve and an evaporator through which a volume of refrigerant is circulated to produce a desired heating or cooling effect. To improve efficiency of such systems and to produce a more consistent and stable heating or cooling effect, some HVAC&R systems utilize variable speed compressors paired with an electronic expansion valve.
Compressors are lubricated by oil circulated through a compressor sump, with some such variable speed compressors being susceptible to high rates of oil discharge from the compressor sump and relatively low rates of oil return to the compressor sump under certain operating conditions.
In one embodiment, a method of operating an electronic expansion valve of a heating, ventilation, air conditioning and refrigeration system includes detecting superheat of an evaporator of the heating, ventilation, air conditioning and refrigeration system and calculating a derivative of evaporator superheat with respect to time. The derivative of evaporator superheat with respect to time is compared to a selected derivative range, and the electronic expansion valve is closed at a rapid closure step increment higher than a normal closure step increment if the derivative is within the selected derivative range.
Additionally or alternatively, in this or other embodiments calculation of the derivative of evaporator sump superheat with respect to time is repeated at a selected time interval, comparison of the derivative of evaporator sump superheat with respect to time to the selected derivative range is repeated at the selected time interval, and the closure of the electronic expansion valve is maintained at the rapid closure step increment as long as the derivative is within the selected derivative range.
Additionally or alternatively, in this or other embodiments the selected time interval is in the range of about 2 seconds to 30 seconds.
Additionally or alternatively, in this or other embodiments the selected time interval is 5 seconds.
Additionally or alternatively, in this or other embodiments the electronic expansion valve is closed at the normal closure step increment slower than the rapid closure step increment if the derivative is outside of the selected derivative range.
Additionally or alternatively, in this or other embodiments the selected derivative range is between about 0.05 and 0.5 degrees Rankin/sec.
Additionally or alternatively, in this or other embodiments the rapid closure step increment is selected to minimize a time duration of low or constant evaporator sump superheat.
Additionally or alternatively, in this or other embodiments minimizing the time duration of low or constant evaporator sump superheat reduces oil depletion of a compressor sump of the heating, ventilation, air conditioning and refrigeration system.
In another embodiment, a heating, ventilation, air conditioning and refrigeration system includes a compressor, the compressor cooled via cooling fluid circulated therethrough from a compressor sump, a condenser, an expansion valve, an evaporator, a refrigerant pathway to fluidly connect the compressor, the condenser, the expansion valve and the evaporator, a volume of refrigerant circulating through the refrigerant pathway, and a controller operably connected to the evaporator and the expansion valve. The controller is configured to detect superheat of the evaporator, calculate a derivative of evaporator superheat with respect to time, compare the derivative of evaporator superheat with respect to time to a selected derivative range, and close the electronic expansion valve at a rapid closure step increment higher than a normal closure step increment if the derivative is within the selected derivative range.
Additionally or alternatively, in this or other embodiments the controller is configured to repeat calculation of the derivative of evaporator superheat with respect to time at a selected time interval, repeat comparison of the derivative of evaporator superheat with respect to time to the selected derivative range, and maintain the closure step increment of the electronic expansion valve at the rapid closure step increment as long as the derivative is within the selected derivative range.
Additionally or alternatively, in this or other embodiments the selected time interval is in the range of about 2 seconds to 30 seconds.
Additionally or alternatively, in this or other embodiments the selected time interval is 5 seconds.
Additionally or alternatively, in this or other embodiments the controller is configured to close the electronic expansion valve at the normal closure step increment slower than the rapid closure step increment if the derivative is outside of the selected derivative range.
Additionally or alternatively, in this or other embodiments the selected derivative range is between about 0.05 and 0.5 degrees Rankin/sec.
Additionally or alternatively, in this or other embodiments the rapid first rate is selected to minimize a time duration of low or constant compressor sump superheat.
Additionally or alternatively, in this or other embodiments minimizing the time duration of low or constant compressor sump superheat reduces oil depletion of the compressor sump.
Additionally or alternatively, in this or other embodiments the compressor is a variable speed compressor.
Additionally or alternatively, in this or other embodiments the expansion valve is an electronic expansion valve.
The subject matter is particularly pointed out and distinctly claimed at the conclusion of the specification. The foregoing and other features, and advantages of the present disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
The detailed description explains embodiments, together with advantages and features, by way of example with reference to the drawings.
In the embodiment of
In some conditions, where high evaporator superheat is detected and communicated to the HVAC&R controller 32, the HVAC&R controller 32 commands opening of the EXV 18 to lower the evaporator superheat. In some conditions, where very low evaporator superheat is detected, or flooding of liquid refrigerant to the compressor 12 occurs, and is communicated to the HVAC&R controller 32, the HVAC&R controller 32 commands closure of the EXV 18 to raise the evaporator superheat to a selected set-point. Closure of the EXV 18 is done at a predetermined rate, and this closure of the EXV 18 is linked to oil depletion from the compressor sump 38, which negatively affects the lubrication of the bearings in compressor 12 and thus compressor 12 performance and service life. Further, oil depleted from the compressor sump 38 is often circulated through the refrigerant pathway 14 contaminating the refrigerant and may adversely affect HVAC&R system 10 performances. One cause of the oil depletion, but not all encompassing, from the compressor sump 38, is long durations of low compressor sump 38 superheat, in turn linked to slow closure of the EXV 18 under certain conditions.
To address the depletion of oil from the compressor sump 38, a schematic of an embodiment of an EXV 18 control methodology is illustrated in
The calculation of dSH/dt at block 102 and comparison of dSH/dt to the selected range at block 104 is repeated at the selected time interval. If the value of dSH/dt falls outside of the selected range, at for example, greater than 0.5, dSH/dt is indicative of an inflection point, or an increase in compressor sump 38 superheat, and at block 108 the rate of closure of the EXV 18 is reduced to the normal first closure step increment, slower than the second closure step increment of the EXV 18.
A sample plot of compressor sump 38 superheat with respect to time is shown in
While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.
This application claims the benefit of Provisional Application No. 62/310,304, filed Mar. 18, 2016, which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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62310304 | Mar 2016 | US |