Airflow Control System For An Agricultural Machine
20180257454 ยท 2018-09-13
Inventors
Cpc classification
B60K11/00
PERFORMING OPERATIONS; TRANSPORTING
F01P2025/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/00733
PERFORMING OPERATIONS; TRANSPORTING
F01P7/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/003
PERFORMING OPERATIONS; TRANSPORTING
F01P2025/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P7/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2025/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K11/04
PERFORMING OPERATIONS; TRANSPORTING
F01P7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2025/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2025/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/00807
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Agricultural machines such as sprayers can be improved by providing a control system configured to adjust an engine cooling package fan with variable speeds, to thereby minimize parasitic losses, based on progress of the HVAC system for attaining a desired temperature in the operator cab. In one aspect, as a gap between actual and desired temperatures (temperature differential) in the cab minimizes, the cooling package fan can be variably adjusted to increase or decrease in speed, depending on heating or cooling occurring in the cab, respectively. However, if a temperature of an area in the engine compartment reaches a predetermined threshold, such variable speed control can cease, and the cooling package fan can instead be controlled to cool the area.
Claims
1. An airflow control system for an agricultural machine comprising: an operator cab; a first airflow system configured to heat or cool the operator cab; a temperature sensor configured to sense a temperature in the operator cab; an engine compartment; a second airflow system configured to cool an area in the engine compartment; a controller in communication with the first and second airflow systems and the temperature sensor, the controller executing a program stored in a non-transient medium operable to: (a) receive a command for adjusting a temperature in the operator cab to a temperature request value; (b) control the first airflow system to change the temperature in the operator cab to the temperature request value; (c) during step (b) determine a temperature differential by calculating a difference between the temperature request value and the temperature in the operator cab; and (d) adjust the second airflow system to cool the area in the engine compartment according to the temperature differential.
2. The airflow control system of claim 1, wherein the second airflow system comprises a fan, and wherein the controller adjusts a rotational speed of the fan according to the temperature differential.
3. The airflow control system of claim 2, wherein the controller determines a plurality of temperature differentials for adjusting the rotational speed of the fan a plurality of times.
4. The airflow control system of claim 1, wherein the temperature sensor is a first temperature sensor, and further comprising a second temperature sensor configured to sense a temperature external to the operator cab, wherein the controller compares the temperature in the operator cab to the temperature external to the operator cab to determine whether the first airflow system is heating or cooling the operator cab.
5. The airflow control system of claim 4, wherein, during heating of the operator cab, the controller is configured to adjust the second airflow system to increase cooling of the area in the engine compartment with a decrease in the temperature differential.
6. The airflow control system of claim 4, wherein, during cooling of the operator cab, the controller is configured to adjust the second airflow system to decrease cooling of the area in the engine compartment with a decrease in the temperature differential.
7. The airflow control system of claim 1, wherein the temperature sensor is a first temperature sensor, and further comprising a second temperature sensor configured to sense a temperature of the area in the engine compartment, wherein the controller is configured to cease step (d) and adjust the second airflow system to increase cooling of the area in the engine compartment when the temperature of the area in the engine compartment reaches a predetermined threshold.
8. The airflow control system of claim 7, wherein the area in the engine compartment corresponds to at least one of engine coolant, hydraulic oil and charged air.
9. The airflow control system of claim 1, further comprising a Human Machine Interface (HMI) in the operator cab, wherein the controller is configured to receive the command from an operator via the HMI.
10. A method for controlling airflow for an agricultural machine comprising: heating or cooling an operator cab with a first airflow system; sensing a temperature in the operator cab with a temperature sensor; cooling an area in an engine compartment with a second airflow system; receiving a command for adjusting a temperature in the operator cab to a temperature request value; controlling the first airflow system to change the temperature in the operator cab to the temperature request value; while controlling the first airflow system to change the temperature in the operator cab, determine a temperature differential by calculating a difference between the temperature request value and the temperature in the operator cab; and adjusting the second airflow system to cool the area in the engine compartment according to the temperature differential.
11. The method of claim 10, wherein the second airflow system comprises a fan, and wherein adjusting the second airflow system comprises adjusting a rotational speed of the fan.
12. The method of claim 11, further comprising determining a plurality of temperature differentials for adjusting the rotational speed of the fan a plurality of times.
13. The method of claim 10, wherein the temperature sensor is a first temperature sensor, and further comprising: sensing a temperature external to the operator cab with a second temperature sensor; and comparing the temperature in the operator cab to the temperature external to the operator cab to determine whether the first airflow system is heating or cooling the operator cab.
14. The method of claim 13, further comprising, during heating of the operator cab, adjusting the second airflow system to increase cooling of the area in the engine compartment with a decrease in the temperature differential.
15. The method of claim 13, further comprising, during cooling of the operator cab, adjusting the second airflow system to decrease cooling of the area in the engine compartment with a decrease in the temperature differential.
16. The method of claim 10, wherein the temperature sensor is a first temperature sensor, and further comprising; sensing a temperature of the area in the engine compartment a second temperature sensor; and ceasing the adjusting of the second airflow system to cool the area in the engine compartment according to the temperature differential and adjusting the second airflow system to increase cooling of the area in the engine compartment when the temperature of the area in the engine compartment reaches a predetermined threshold.
17. The method of claim 16, wherein the area in the engine compartment corresponds to at least one of engine coolant, hydraulic oil and charged air.
18. The method of claim 10, further comprising receiving the command from an operator via a Human Machine Interface (HMI) in the operator cab.
19. An agricultural sprayer comprising: a chassis supported by a plurality of wheels, the chassis supporting an engine compartment, a drive system, a lift arm assembly and an operator cab; a sprayer boom connected to the lift arm assembly; a first airflow system configured to heat or cool the operator cab; a temperature sensor configured to sense a temperature in the operator cab; a second airflow system comprising a fan configured to cool an area in the engine compartment; a controller in communication with the first and second airflow systems and the temperature sensor, the controller executing a program stored in a non-transient medium operable to: (a) receive a command for adjusting a temperature in the operator cab to a temperature request value; (b) control the first airflow system to change the temperature in the operator cab to the temperature request value; (c) during step (b), determine a temperature differential by calculating a difference between the temperature request value and the temperature in the operator cab; and (d) adjust the second airflow system by adjusting a rotational speed of the fan to cool the area in the engine compartment according to the temperature differential.
20. The agricultural sprayer of claim 19, further comprising determining a plurality of temperature differentials for adjusting the rotational speed of the fan a plurality of times.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Preferred exemplary embodiments of the invention are illustrated in the accompanying drawings in which like reference numerals represent like parts throughout.
[0015]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0020] Referring now to the drawings and specifically to
[0021] Still referring to
[0022] Referring now to
[0023] With additional reference to
[0024] Next, at decision block 106, the controller 42 can determine if temperatures in areas in the engine compartment 17, such as T.sub.1, T.sub.2 or T.sub.3, are within acceptable limits, which may be set be predetermined thresholds as appropriate for the functions of such areas. If a temperature in an area in the engine compartment 17 is not within an acceptable limit as indicated by a corresponding predetermined threshold being reached, the process can continue to block 108 in which the controller 42 adjusts the second airflow system 46 to increase cooling of the area in the engine compartment. The process can then return to block 104 to read the sensors and receive commands. This first loop, between block 104, decision block 106, and block 108, can continue as long as the controller 42 determines that one or more temperatures in areas in the engine compartment 17 are not within an acceptable limit. Moreover, the controller 42 can apply hysteresis with respect to this loop to minimize undesirable frequent changes due to minor temperature variations.
[0025] However, at decision block 106, if the controller 42 determines the temperatures in areas in the engine compartment 17 are within an acceptable limit, the process can continue to decision block 110 in which the controller 42 determines if the first airflow system 44 is cooling the operator cab 16, such as by the AC unit of the HVAC. The controller 42 can determine if the cab is cooling, for example, by comparing the temperature in the operator cab T.sub.CAB to the temperature request value T.sub.REQ to determine if the temperature request value T.sub.REQ is less. In addition, or alternatively, the controller 42 can determine if the cab is cooling by comparing the temperature in the operator cab T.sub.CAB to the temperature external to the operator cab T.sub.AMBIENT. If the cab is cooling, the process can continue to block 112 in which the controller 42 determines a temperature differential (labelled T) by calculating a difference between the temperature request value T.sub.REQ and the temperature in the T.sub.CAB operator cab 16 as the cab is cooling. With additional reference to
[0026] However, if at decision block 110 the controller 42 determines that the operator cab 16 is not cooling, the process can instead continue to decision block 116 in which the controller 42 determines if the first airflow system 44 is heating the operator cab 16, such as the heating unit of the HVAC. Similar to the cooling flow, the controller 42 can determine if the cab is heating, for example, by comparing the temperature in the operator cab T.sub.CAB to the temperature request value T.sub.REQ to determine if the temperature request value T.sub.REQ is greater. In addition, or alternatively, the controller 42 can determine if the cab is heating by comparing the temperature in the operator cab T.sub.CAB to the temperature external to the operator cab T.sub.AMBIENT. If the cab is heating, the process can continue to block 118 in which the controller 42 determines a temperature differential (labelled T) by calculating a difference between the temperature request value T.sub.REQ and the temperature in the T.sub.CAB operator cab 16 as the cab is heating. With additional reference to
[0027] However, if at decision block 116 the controller 42 determines that the operator cab 16 is not heating, the process can instead continue to block 122 in which the controller 42 can adjust the second airflow system 46 to cool areas in the engine compartment 17 without regard to the first airflow system 44. This may be preferable, for example, when temperatures in areas in the engine compartment 17 are within acceptable limits and a command for adjusting a temperature in the operator cab 16 to a temperature request value T.sub.REQ has not been received, such as when operating with a window open, or such command has been received but has been sufficiently satisfied without the need for additional operation of the first airflow system 44. The process can then return to block 104 to read the sensors and receive commands, and this loop can similarly continue.
[0028] Although the best mode contemplated by the inventors of carrying out the present invention is disclosed above, practice of the above invention is not limited thereto. It will be manifest that various additions, modifications and rearrangements of the features of the present invention may be made without deviating from the spirit and the scope of the underlying inventive concept.