Sensorless low flow electric water pump and method of regulating flow therewith
10288072 ยท 2019-05-14
Assignee
Inventors
Cpc classification
F04D15/0066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D15/0094
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2283
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electric fluid pump and method of regulating flow of liquid therethrough is provided. The pump has an electric motor including a stator and a rotor, wherein the rotor is supported for rotation to drive an impeller that is fixed thereto for rotation to pump coolant from a fluid inlet to a fluid outlet. A controller is in operable, closed loop communication with the electric motor, and the impeller is operable to rotate in a first rotary pumping direction and an opposite second rotary pumping direction in response to a signal from the controller. The first rotary pumping direction produces a first positive flow rate of coolant outwardly from the fluid outlet and the second rotary pumping direction produces a second positive flow rate of coolant outwardly from the fluid outlet, with the first positive flow rate being greater than the second positive flow rate.
Claims
1. An electric fluid pump for use in a motor vehicle, the electric fluid pump comprising: a pump housing defining a fluid chamber and a motor chamber, said fluid chamber being in fluid communication with a fluid inlet and a fluid outlet for providing a unidirectional flow of a coolant through said fluid chamber; an electric motor disposed within said motor chamber, said electric motor including a stator and a rotor, said rotor being supported for rotation relative to said stator by a rotor shaft extending along a longitudinal axis through said motor chamber; an impeller fixed to said rotor shaft for rotation in said fluid chamber and operable to pump coolant from said fluid inlet to said fluid outlet; and a controller in closed loop communication with said electric motor; wherein said impeller is operable to rotate in a first rotary direction and an opposite second rotary direction in response to a signal from said controller, said first rotary direction producing a first positive flow rate of coolant outwardly from said fluid outlet and said second rotary direction producing a second positive flow rate of coolant outwardly from said fluid outlet, and wherein said first positive flow rate is greater than said second positive flow rate; wherein said controller monitors a real-time rotational speed of said impeller and compares said real-time rotational speed with a predetermined target speed, wherein said controller commands said impeller to rotate in said first rotary direction when said target speed signal is greater than said real-time rotational speed to produce the first positive flow rate of the coolant, and wherein said controller commands said impeller to rotate in said second rotary direction when said target speed signal is less than said real-time rotational speed to produce the second flow rate of coolant; wherein said controller is configured to command said impeller to rotate in said first rotary direction at a maximum first direction rotational speed, wherein said controller is configured to command said impeller to rotate in said second rotary direction at a minimum second direction rotational speed, wherein said minimum second direction rotational speed is at least 5% of said maximum first direction rotational speed.
2. The electric fluid pump of claim 1 wherein said electric motor is a brushless direct current motor.
3. The electric fluid pump of claim 1 wherein said impeller further rotates at a minimum first direction rotational speed in said first rotary direction.
4. The electric fluid pump of claim 3 wherein said first positive flow rate increases as the first direction rotational speed of said impeller increases, and said second positive flow rate increases as the second direction rotational speed of said impeller increases.
5. The electric fluid pump of claim 1 wherein said impeller has a first pumping efficiency while rotating in said first rotary direction and a second pumping efficiency while rotating in said second rotary direction, said first pumping efficiency being greater than said second pumping efficiency.
6. The electric fluid pump of claim 1 wherein said electric motor draws less current while said impeller rotates in said second rotary direction.
7. The electric fluid pump of claim 1 wherein the fluid inlet is positioned generally perpendicularly to the fluid outlet, and wherein the rotor and stator are each axially spaced from the fluid inlet and the fluid outlet.
8. The electric fluid pump of claim 1 wherein the minimum second direction rotational speed is between 5% and 10% of the maximum first direction rotational speed.
9. The electric fluid pump of claim 1, wherein said fluid inlet is a single fluid inlet of said fluid chamber and said fluid outlet is a single fluid outlet of said fluid chamber, wherein all of the coolant entering said fluid chamber through said single fluid inlet will exit said fluid chamber through said single fluid outlet.
10. The electric fluid pump of claim 1 wherein said fluid chamber defines a chamber base surface disposed perpendicular to the longitudinal axis, and said impeller defines an impeller base surface disposed perpendicular to the longitudinal axis, wherein the chamber base surface and the impeller base surface are co-planar.
11. A method of regulating a positive, unidirectional flow of fluid through a fluid chamber to a fluid outlet of an electric fluid pump having an electric motor, including a stator having coils and a rotor having magnets supported for rotation within the stator by a rotor shaft, and having an impeller fixed to the rotor shaft for rotation to pump coolant from a fluid inlet to the fluid outlet, and having a controller in closed loop communication with the electric motor, comprising: commanding the impeller to rotate in a first rotary direction and an opposite second rotary direction in response to respective signals received from the controller, with the first rotary direction producing a first positive flow rate of the coolant outwardly from the fluid outlet and the second rotary direction producing a second positive flow rate of the coolant outwardly from the fluid outlet, wherein the first positive flow rate is greater than the second positive flow rate; continuously monitoring a real-time rotational speed of the impeller with the controller by reading a back electromotive force generated by the magnets in the rotor passing the coils in the stator and via closed loop control and comparing the real-time rotational speed with a predetermined target speed signal, and commanding the impeller to rotate in the first rotary direction when the target speed signal is greater than the real-time rotational speed to produce the first positive flow rate of the coolant, and commanding the impeller to rotate in the second rotary direction when the target speed signal is less than the real-time rotational speed to produce the second positive flow rate of the coolant.
12. The method of claim 11 further including providing the electric motor as a brushless direct current motor.
13. The method of claim 11 further including rotating the impeller at a minimum first direction rotational speed in the first rotary direction and at a minimum second direction rotational speed in the second rotary direction.
14. The method of claim 13 further including causing the first positive flow rate to increase as the first direction rotational speed of the impeller increases, and causing the second positive flow rate to increase as the second direction rotational speed of the impeller increases.
15. The method of claim 11 further including configuring the impeller to have a first pumping efficiency while rotating in the first rotary direction and a second pumping efficiency that is less than the first pumping efficiency while rotating in the second rotary direction.
16. The method of claim 11 further including configuring the electric motor to draw less than about 0.6 amps while the impeller rotates in the second rotary direction.
17. The method of claim 11 wherein the controller commands the impeller to rotate in the second rotary direction during a start-up condition of an automobile engine when there is a low coolant demand in the automobile engine.
18. The method of claim 11 wherein the controller commands the impeller to rotate in the secondary rotary direction at a rotational speed of 600 RPM or greater.
19. An electric fluid pump for use in a liquid coolant system of a motor vehicle, the electric fluid pump comprising: a pump housing defining a fluid chamber and a motor chamber, said fluid chamber being in fluid communication with a fluid inlet and a fluid outlet for providing a unidirectional flow of a liquid coolant through said fluid chamber; an electric motor disposed within said motor chamber, said electric motor including a stator having coils and a rotor having magnets which is supported for rotation relative to said stator by a rotor shaft; an impeller fixed to said rotor shaft for rotation in said fluid chamber and operable to pump the liquid coolant from said fluid inlet to said fluid outlet; and a controller in closed loop communication with said electric motor, said impeller is operable to rotate in a first rotary direction and an opposite second rotary direction in response to a signal from said controller, said first rotary direction producing a first positive flow rate of coolant outwardly from said fluid outlet and said second rotary direction producing a second positive flow rate of coolant outwardly from said fluid outlet, and wherein said first positive flow rate is greater than said second positive flow rate; wherein said controller monitors a real-time rotational speed of said impeller by reading a back electromotive force generated by the magnets in the rotor passing the coils in the stator and compares said real-time rotational speed with a predetermined target speed signal, wherein said controller commands said impeller to rotate in said first rotary direction when said target speed signal is greater than said real-time rotational speed to produce the first positive flow rate of the coolant, and wherein said controller commands said impeller to rotate in said second rotary direction when said target speed signal is less than said real-time rotational speed to produce the second positive flow rate of coolant.
20. The electric fluid pump of claim 19 wherein said electric motor is a brushless direct current motor.
21. The electric fluid pump of claim 19 wherein said impeller rotates at a minimum positive operational rotational speed in said first rotary direction and at a minimum negative operational rotational speed in said second rotary direction.
22. The electric fluid pump of claim 21 wherein said first positive flow rate increases as the positive rotational speed of said impeller increases, and said second positive flow rate increases as the negative rotational speed of said impeller increases.
23. The electric fluid pump of claim 19 wherein said impeller has a first pumping efficiency while rotating in said first rotary direction and a second pumping efficiency while rotating in said second rotary direction, said first pumping efficiency being greater than said second pumping efficiency.
Description
DRAWINGS
(1) The drawings described herein are for illustrative purposes only of selected embodiments and not all possible implementations, and are not intended to limit the scope of the present disclosure.
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DETAILED DESCRIPTION
(6) At least one example embodiment will now be detailed in conjunction with the accompanying drawings.
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(8) As shown in
(9) Accordingly, in accordance with one aspect of the invention, the pumping inefficiency of the impeller 46 in the reverse direction CCW is utilized intentionally to produce the desired low flow rate of coolant, such as in a startup condition or other condition requiring low coolant flow, while retaining the ability to monitor and regulate the pump 16 and coolant flow therefrom via relatively low cost, sensorless arrangement. The ability to use the sensorless arrangement is provided as a result of the pump 16 operating a rotational speeds of about 600 rpm or greater, whether in the positive rotational direction CW to produce a high coolant flow rate, such as greater than about 25 L/min, for example, or in the negative direction CCW to produce a low coolant flow rate, such as less than about 10 L/min. If desired, once in a commanded direction of rotation, whether CW or CCW, the control logic of the controller 48 can be programmed to maintain the impeller 46 in the commanded direction of rotation for a minimum about of time, such as about 20-30 seconds, by way of example and without limitation, thereby avoiding an overly rapid reversal of the impeller 46.
(10) In
(11) In accordance with another aspect of the invention, a method of regulating the positive, unidirectional flow of fluid through an outlet 24 of an electric fluid pump 16 having electric motor 36, including a stator 38 and a rotor 40 supported for rotation within the stator 38 by a rotor shaft 42, and having an impeller 46 fixed to the rotor shaft 42 for rotation to pump coolant from a fluid inlet 18 to the fluid outlet 24, and having a controller 48 in closed loop communication with the electric motor 36 is provided. The method includes commanding the impeller 46 to rotate in a first rotary direction CW and an opposite second rotary direction CCW in response to a signal received from the controller 48, with the first rotary direction CW producing a first positive flow rate of the coolant outwardly from the fluid outlet 24 and the second rotary direction producing a second positive flow rate of the coolant outwardly from the fluid outlet 24, wherein the first positive flow rate is greater than the second positive flow rate.
(12) The method further includes continuously or substantially continuously monitoring a real-time rotational speed RS of the impeller 46 with the controller via closed loop control and comparing the real-time rotational speed RS with a predetermined target speed signal TS, and commanding the impeller 46 to rotate in the first rotary direction CW when the target speed signal TS is greater than the real-time rotational speed RS, and commanding the impeller 46 to rotate in the second rotary direction CCW when the target speed signal TS is less than the real-time rotational speed RS.
(13) The method further includes rotating the impeller 46 at a minimum operational positive rotational speed, by way of example and without limitation, of about 600 rpm in the first rotary direction CW and at a minimum operational negative rotational speed of about 600 rpm in the second rotary direction CCW, taking into account, of course, the transition rotational speeds therebetween.
(14) The method further includes causing the first positive flow rate to increase as the positive rotational speed of the impeller 46 increases, and causing the second positive flow rate to increase as the negative rotational speed of the impeller increases.
(15) The method further includes configuring the impeller 46 to have a first pumping efficiency while rotating in the high flow rate first rotary direction CW and a second pumping efficiency that is less than the first pumping efficiency while rotating in the low flow rate second rotary direction CCW.
(16) The method can further include configuring the electric motor 36 to draw less than about 0.6 amps while the impeller 46 rotates in the low flow rate second rotary direction CCW to produce a second positive flow rate that is less than about 10 liters per minute, and preferably between about 3-5 liters per minute.
(17) The present disclosure relates to an electric water pump 16 having a rotary pump member 46 capable of being driven by an electric motor 36 in a sensorless closed loop control system in a first rotary direction CW and a second rotary direction CCW. The first rotary direction CW is used to regulate pumping characteristics, such as flow rate, when the target pump speed TS is above a determined value RS. The second rotary direction CCW is used to regulate the pumping characteristic when the target pump speed TS is less than the determined value RS. Control in both directions CW, CCW is with similar low power requirements with the structure of the pump member 46 providing less efficient pumping action when driven in the second direction CW.
(18) The foregoing description of the embodiments has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular embodiment are generally not limited to that particular embodiment, but, where applicable, are interchangeable and can be used in a selected embodiment, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.