Vehicle speed control system and method of controlling retardation energy of a vehicle
11505086 · 2022-11-22
Assignee
Inventors
Cpc classification
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
B60L58/12
PERFORMING OPERATIONS; TRANSPORTING
B60Y2300/89
PERFORMING OPERATIONS; TRANSPORTING
B60L2240/36
PERFORMING OPERATIONS; TRANSPORTING
B60L3/0046
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L50/15
PERFORMING OPERATIONS; TRANSPORTING
B60W20/13
PERFORMING OPERATIONS; TRANSPORTING
B60L7/10
PERFORMING OPERATIONS; TRANSPORTING
B60W10/26
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60L58/12
PERFORMING OPERATIONS; TRANSPORTING
B60W20/13
PERFORMING OPERATIONS; TRANSPORTING
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A speed control system to control retardation energy of a vehicle and a method of controlling retardation energy of a vehicle are provided. The system includes an energy storage device configured to absorb and store the retardation energy of the vehicle. The energy storage device includes a power absorption limit determined at least partially by a temperature and a state of charge of the energy storage device. The system further includes a non-energy-storing retarder configured to absorb the retardation energy of the vehicle and a controller configured to route the retardation energy to the energy storage device up to the power absorption limit and route a remaining portion of the retardation energy to the non-energy-storing retarder.
Claims
1. A speed control system to control retardation energy of a vehicle, the system comprising: an energy storage device configured to absorb and store the retardation energy of the vehicle and having a power absorption limit determined at least partially by a temperature and a state of charge of the energy storage device; a non-energy-storing retarder configured to absorb the retardation energy of the vehicle; and a controller configured to route the retardation energy to the energy storage device up to the power absorption limit and route a remaining portion of the retardation energy to the non-energy-storing retarder; wherein the non-energy-storing retarder comprises an uncooled retarder; wherein the uncooled retarder has an uncooled retarder absorption limit, the controller configured to route the retardation energy to the uncooled retarder up to the uncooled retarder absorption limit.
2. The system of claim 1, wherein the uncooled retarder comprises at least one of an engine brake and an electrical retarder.
3. The system of claim 1, further comprising a second non-energy-storing retarder configured to absorb the retardation energy of the vehicle, the controller further configured to route a third portion of the retardation energy to the second non-energy-storing retarder.
4. The system of claim 3, wherein the second non-energy-storing retarder comprises a cooled retardation device.
5. The system of claim 4, wherein the cooled retardation device comprises at least one of a transmission retarder and a friction brake.
6. The system of claim 3, wherein the controller is configured to prioritize absorption of the retardation energy of the vehicle by routing the retardation energy in the order of the energy storage device, the non-energy-storing retarder, and the second non-energy-storing retarder.
7. A method of controlling retardation energy of a vehicle, the method comprising: determining a state of charge of an energy storage device of the vehicle; determining a temperature of the energy storage device of the vehicle; determining a power absorption limit of the energy storage device based on the temperature of the energy storage device and the state of charge of the energy storage device; absorbing a first portion of the retardation energy with the energy storage device up to the power absorption limit; and absorbing a second portion of the retardation energy with a non-energy-storing retarder; wherein absorbing the second portion of the retardation energy comprises absorbing the second portion of the retardation energy with an uncooled retarder; wherein absorbing the second portion of the retardation energy with the uncooled retarder comprises absorbing the second portion of the retardation energy with the uncooled retarder up to an uncooled retarder absorption limit.
8. The method of claim 7, wherein absorbing the second portion of the retardation energy with the uncooled retarder comprises absorbing the second portion of the retardation energy with at least one of an engine brake and an electrical retarder.
9. The method of claim 7, further comprising absorbing a third portion of the retardation energy with a second non-energy-storing retarder.
10. The method of claim 9, wherein absorbing the third portion of the retardation energy with the second non-energy-storing retarder comprises absorbing the third portion of the retardation energy with a cooled retardation device.
11. The method of claim 10, wherein absorbing the third portion of the retardation energy with the cooled retardation device comprises absorbing the third portion of the retardation energy with at least one of a transmission retarder and a friction brake.
12. The method of claim 9, further comprising prioritizing absorption of the retardation energy of the vehicle in the order of the energy storage device, the non-energy-storing retarder, and the second non-energy-storing retarder.
13. The method of claim 7, further comprising determining the retardation energy as a desired retardation of the vehicle during movement of the vehicle.
14. An energy control system to control retardation energy of a vehicle, the system comprising: an energy storage device configured to absorb and store the retardation energy of the vehicle and having a power absorption limit determined at least partially by a temperature and a state of charge of the energy storage device; a first non-energy-storing retarder configured to absorb the retardation energy of the vehicle; a second non-energy-storing retarder configured to absorb the retardation energy of the vehicle, the controller further configured to route a third portion of the retardation energy to the second non-energy-storing retarder; and a controller configured to first route a first portion of the retardation energy to the energy storage device up to the power absorption limit, then route a second portion of the retardation energy to the first non-energy-storing retarder, then route a third portion of the retardation energy to the second non-energy-storing retarder.
15. The system of claim 14, wherein the first non-energy-storing retarder comprises an uncooled retarder.
16. The system of claim 15, wherein the uncooled retarder comprises at least one of an engine brake and an electrical retarder.
17. The system of claim 15, wherein the uncooled retarder has an uncooled retarder absorption limit, the controller configured to route the second portion of the retardation energy to the uncooled retarder up to the uncooled retarder absorption limit.
18. The system of claim 14, wherein the second non-energy-storing retarder comprises a cooled retardation device.
19. The system of claim 18, wherein the cooled retardation device comprises at least one of a transmission retarder and a friction brake.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The detailed description of the drawings refers to the accompanying figures in which:
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(7) Like reference numerals are used to indicate like elements throughout the several figures.
DETAILED DESCRIPTION
(8) At least one example embodiment of the subject matter of this disclosure is understood by referring to
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(10) The vehicle 100 of one or more embodiments includes any vehicle configured or designed for off-road or on-road use, including, in one non-limiting set of examples, a vehicle used for construction, agriculture, forestry, or mining. Vehicle 100 is illustrated as an articulated dump truck in
(11) Referring now to
(12) The controller 104 shown in
(13) An operator cab 111, as shown in
(14) Service brakes 114, as shown in
(15)
(16)
(17) Referring to the chart of
(18) The system 300 includes the controller 104 configured to route the retardation energy, or at least a first portion 320 of the retardation energy, to the energy storage device 120 up to the power absorption limit 126. The controller 104 of the system 300 is further configured to route a remaining or second portion 322 of the retardation energy, or the portion not routed to the energy storage device 120, to the non-energy-storing retarder 310. In an additional embodiment, the non-energy storing retarder 310 includes multiple non-energy storing retarders 310, such that the controller 104 of the system 300 is further configured to route the remaining portion 322 of the retardation energy, or the portion not routed to the energy storage device 120, to a first of the non-energy-storing retarder 310, a second non-energy-storing retarder 310, and, in additional embodiments, a third non-energy-storing retarder 310. The system 300 may include any number of energy-storing or non-energy-storing retarders 310 in accordance with the operation of the embodiments described herein. The system 300 of an embodiment is configured to prioritize absorption of the retardation energy of the vehicle 100 by routing the retardation energy in the order of the energy storage device 120, the non-energy-storing retarder 310, and the second non-energy-storing retarder. In a further embodiment, the system 300 is configured to prioritize absorption of the retardation energy of the vehicle 100 by routing the retardation energy in the order of the energy storage device 120, the non-energy-storing retarder 310, the second non-energy-storing retarder 310, and any additional non-energy-storing retarders.
(19) Referring to
(20) The system 300 of an embodiment gives priority to the uncooled retarder as compared to the cooled retarder for one or more reasons in particular embodiments. The cooled retarder may include wear items, such as wearable service brake pads in a non-limiting example, such that service and maintenance of the vehicle 100 is reduced with reduced use of cooled retarder(s). Further, operation of the cooled retarder(s) may require energy such that overall system energy usage may be reduced with reduced use of the cooled retarder(s).
(21) In the system 300 having a second non-energy-storing retarder, the controller 104 is configured to route a third portion of the retardation energy to the second non-energy-storing retarder. In embodiments having a third non-energy-storing retarder, the controller 104 is configured to route a fourth portion of the retardation energy to the third non-energy-storing retarder.
(22) Referring now to
(23) The method 400 of additional embodiments includes absorbing the second portion of the retardation energy with an uncooled retarder. The method 400 of additional embodiments includes absorbing the second portion of the retardation energy with an engine brake, a transmission retarder, an electrical retarder, and/or a friction brake. Absorbing the second portion of the retardation energy with the uncooled retarder, in particular embodiments, includes absorbing the second portion of the retardation energy with the uncooled retarder up to an uncooled retarder absorption limit. The method 400 of an embodiment further includes absorbing a third portion of the retardation energy with a second non-energy-storing retarder. Absorbing the third portion of the retardation energy with the second non-energy-storing retarder includes absorbing the third portion of the retardation energy with a cooled retardation device in an embodiment. Absorbing the third portion of the retardation energy with the cooled retardation device includes absorbing the third portion of the retardation energy with a friction brake in an embodiment. The method 400 includes prioritizing absorption of the retardation energy of the vehicle in the order of the energy storage device, the non-energy-storing retarder, and the second non-energy-storing retarder in an embodiment. The method 400 further includes determining the retardation energy as a desired retardation of the vehicle 100 during movement of the vehicle 100.
(24) Without in any way limiting the scope, interpretation, or application of the claims appearing below, it will be appreciated that the vehicle 100, the system 300, the controller 104, and method 400 of the embodiments of the present disclosure allow at least a portion of the retardation energy absorbed by the vehicle 100 during descent or another speed control event of the vehicle 100 to be stored and later discharged for vehicle propulsion or other use, attachment or implement use, or other use. Further, the vehicle 100, the system 300, the controller, and the method 400 allow use of the energy storage device(s) 120 with the non-energy-storing retarder(s) 310 to reduce likelihood that the operator observes sudden changes in the retardation behavior of the vehicle 100. Even further, the vehicle 100, the system 300, the controller, and the method 400 increase the efficiency and durability of the vehicle 100 by giving priority to storing the retardation energy in the energy storage device(s) 120 over wasting the energy through use of the non-energy-storing retarder(s) 310. Similarly, the vehicle 100, the system 300, the controller, and the method 400 further improve efficiency and durability and reduce wear on vehicle components by giving priority to uncooled retarder(s) 310 over utilization of cooled retarder(s) and utilizing the maximum retardation power available from uncooled retarder(s) 310.
(25) As used herein, “e.g.” is utilized to non-exhaustively list examples, and carries the same meaning as alternative illustrative phrases such as “including,” “including, but not limited to,” and “including without limitation.” As used herein, unless otherwise limited or modified, lists with elements that are separated by conjunctive terms (e.g., “and”) and that are also preceded by the phrase “one or more of,” “at least one of,” “at least,” or a like phrase, indicate configurations or arrangements that potentially include individual elements of the list, or any combination thereof. For example, “at least one of A, B, and C” and “one or more of A, B, and C” each indicate the possibility of only A, only B, only C, or any combination of two or more of A, B, and C (A and B; A and C; B and C; or A, B, and C). As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. Further, “comprises,” “includes,” and like phrases are intended to specify the presence of stated features, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and/or groups thereof.
(26) While the present disclosure has been illustrated and described in detail in the drawings and foregoing description, such illustration and description is not restrictive in character, it being understood that illustrative embodiment(s) have been shown and described and that all changes and modifications that come within the spirit of the present disclosure are desired to be protected. Alternative embodiments of the present disclosure may not include all of the features described yet still benefit from at least some of the advantages of such features. Those of ordinary skill in the art may devise their own implementations that incorporate one or more of the features of the present disclosure and fall within the spirit and scope of the appended claims.