High-voltage battery powered heating unit for vehicle and heating unit powering method
11071409 · 2021-07-27
Assignee
Inventors
Cpc classification
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
Y02E60/10
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
H01M10/655
ELECTRICITY
H01M2220/20
ELECTRICITY
A47J2037/0777
HUMAN NECESSITIES
A47J37/0623
HUMAN NECESSITIES
B62D33/0273
PERFORMING OPERATIONS; TRANSPORTING
B60P3/32
PERFORMING OPERATIONS; TRANSPORTING
B60L58/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60L58/10
PERFORMING OPERATIONS; TRANSPORTING
H01M10/655
ELECTRICITY
B60P3/32
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A vehicle assembly includes, a traction battery and a heating unit. The heating unit is disposed within a cargo bed of a vehicle and selectively powered by the traction battery. A heating unit powering method includes powering a heating unit within a cargo bed of a vehicle using a traction battery of the vehicle.
Claims
1. A vehicle assembly, comprising: a traction battery; and a heating unit disposed within a cargo bed of a vehicle and selectively powered by the traction battery; and a side shelf that is moveable between an extended position where the side shelf extends from a tailgate and a retracted position where the side shelf is retracted within the tailgate, wherein the side shelf covers the heating unit when in the retracted position and reveals the heating unit when in the extended position.
2. The vehicle assembly of claim 1, further comprising a cover movable between a closed position that covers the heating unit and an open position that exposes the heating unit.
3. The vehicle assembly of claim 2, wherein the heating unit is disposed within a tailgate of the cargo bed.
4. The vehicle assembly of claim 3, wherein the tailgate has a first cross-vehicle width and the cover has a second cross-vehicle width that is fifty percent or less of the first cross-vehicle width.
5. The vehicle assembly of claim 2, further comprising an interlock configured to transition between a locked position that holds the cover in the open position and an unlocked position that permits movement of the cover to the closed position in response to a thermal energy level.
6. The vehicle assembly of claim 1, further comprising an inverter that converts direct current from the traction battery to alternating current for use by the heating unit.
7. The vehicle assembly of claim 1, wherein the heating unit is an electric stove.
8. The vehicle assembly of claim 1, wherein the traction battery selectively powers an electric drivetrain of the vehicle.
9. The vehicle assembly of claim 1, wherein the traction battery is mounted to the vehicle and disposed outside of a tailgate of the cargo bed.
10. The vehicle assembly of claim 1, wherein the vehicle is a plug-in hybrid vehicle configured to recharge the traction battery using a grid power source, wherein the traction battery is configured to power the heating unit while recharging from the grid power source.
11. A heating unit powering method, comprising: powering a heating unit within a cargo bed of a vehicle using a traction battery of the vehicle; housing the heating unit within a tailgate of the vehicle; and extending a side shelf laterally from the tailgate to reveal the heating unit, and retracting the side shelf to cover the heating unit.
12. The heating unit powering method of claim 11, wherein the heating unit is an electric stove.
13. The heating unit powering method of claim 11, further comprising charging the traction battery from a grid power source during the powering.
14. The heating unit powering method of claim 11, further comprising, during the powering, converting direct current from the traction battery to alternating current for use by the heating unit.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) The various features and advantages of the disclosed examples will become apparent to those skilled in the art from the detailed description. The figures that accompany the detailed description can be briefly described as follows:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) This disclosure relates generally to a heating unit powered by a traction battery of a vehicle. The heating unit can be an electric stove disposed within a cargo bed of the vehicle, such as within a tailgate of the vehicle. The heating unit can enable a user to, for example, cook food at a cookout. The traction battery powering the heating unit provides a substantial power source enabling the heating unit to attain and maintain relatively high cooking temperatures.
(8)
(9) Generally, the cargo bed 14 is provided by a floor 18, sidewalls 22, a front wall 26, and a tailgate 30. The cargo bed 14 establishes a cargo area for storing and hauling cargo with the vehicle 10. The example cargo bed 14 is rearward of a passenger cabin 34 of the vehicle.
(10) In the example, vehicle 10 is an all-electric vehicle having an electric drivetrain that includes a traction battery 38, at least one electric machine 42, and a plurality of drive wheels 46. When powered, the electric machine 42 can drive the drive wheels 46 to move the vehicle 10. The electric machine 42 can receive electric power from the traction battery 38. The electric machine 42 converts the electric power to torque to drive the drive wheels 46.
(11) The traction battery 38 is a traction battery since the traction battery 38 is used to provide motive power for the vehicle 10. The traction battery 38 is a relatively high-voltage battery. Generally, batteries over 50 to 60 Volts can be considered high-voltage. The traction battery 38 can be from 200 to 400 Volts in some examples. In other examples, the traction battery 38 could be as high as 800 Volts.
(12) Although described as an all-electric vehicle, the vehicle 10 could be another type of electrified vehicle that includes a traction battery—a hybrid electric vehicle, for example. A hybrid electric vehicle can selectively drive wheels using torque provided by an internal combustion engine instead of, or in addition to, the electric machine powered by a traction battery.
(13) The traction battery 38 of the vehicle 10 can be selectively recharged using a grid power source 50. To charge the traction battery 38 from the grid power source 50, a charger 54 is electrically coupled to the vehicle 10 through a charge port 58. Electrical energy can then move from the grid power source 50, through the charger 54, to the traction battery 38 of the vehicle 10. The electrical energy from the grid power source 50 recharges the traction battery 38. Due to the charge port 58 being engageable with the grid power source 50, the example vehicle 10 is considered a plug-in electrified vehicle.
(14) With reference now to
(15) A cover 66 is moveable between a closed position shown in
(16) To utilize the heating unit 62, a user moves the tailgate 30 from the closed tailgate position of
(17) The cover 66 can hingeably connect to the tailgate 30 via a hinge 70. The cover 66 can include a back cover 74 and side covers 78. The side covers 78 may hingeably connect to the back cover along hinged connection points 82. The side covers 78 can and fold inward toward the back cover 74 to permit the back cover 74 to move from the open position of
(18) The heating unit 62, in this example, is an electric stove that includes a plurality of burners 86 and controls 90. At a tailgating event, for example, the user can warm food by placing a pan with food on one of the burners 86. The controls 90 can be used to turn on the burners 86 and to adjust thermal energy levels provided by the burners 86.
(19) The controls 90 and the burners 86 are covered by the cover 66 when the cover 66 is in the closed position of
(20) The cover 66 is made of a durable and robust material that can withstand normal use of the tailgate 30 and surrounding cargo bed 14 area. The cover 66 can be made of the material similar to a truck bed liner material. The material of the cover 66 can be polymer-based, for example, and can be selected to withstand thermal energy generated by the burners 86 of the heating unit 62 when the cover 66 is in the open position.
(21) In some examples, an interlock 92 can be incorporated into the heating unit 62, the cover 64, or both. The interlock 92 can prevent the user from moving the cover 66 to the closed position of the
(22) For example, the interlock 92 can move between a locked position that locks the cover 66 in the open position of
(23) When the heating unit 62 is powered, or when the burners 86 have not sufficiently cooled after cutting power to the heating unit 62, the interlock 92 is automatically maintained in the locked position to prevent the user from closing the cover 66 on burners 86 that have not cooled. A person having skill in this art and the benefit of this disclosure could understand an interlock that transitions in response to a sensed thermal energy level.
(24) The tailgate 30 has a cross-vehicle width represented by W.sub.T. The heating unit 62 has a cross-vehicle width represented by W.sub.CU. The cover 66 has a cross-vehicle width generally corresponding to the width W.sub.CU of the heating unit 62.
(25) In this example, the width W.sub.CU of the heating unit 62 is fifty percent or less of the width W.sub.T of the tailgate 30. This can ensure that the user has access A to the cargo bed 14 even when the heating unit 62 is being used and the cover 66 is in the open position of
(26) The exemplary heating unit is shown as the electric stove, other heating units could be used in other examples, such as a microwave, other inductive heating mechanisms, etc.
(27) Notably, the heating unit 62 is powered by the traction battery 38 of the vehicle 10. The vehicle 10 can include a Direct Current (DC) to Alternating Current (AC) inverter 98 that converts DC from the traction battery 38 to AC for powering by the heating unit 62. The converted AC from the inverter 98 can additionally be used to power outlets 102 of the vehicle 10. An example of the outlets 102 is shown in the sidewall 22 of the vehicle 10. In another example, the heating unit 62 is DC powered directly from the traction battery 38 and the converting of DC to AC for the heating unit 62 is omitted.
(28) Due to the high-voltage of the traction battery 38, the traction battery 38 can provide relatively high amounts of electrical energy to the heating unit 62, which can generate substantial amounts of thermal energy used for cooking for extended periods of time.
(29) In some examples, if a charge level of the traction battery 38 drops below a threshold level, the vehicle 10 can draw power from the grid power source 50 through the charger 54 that recharges the traction battery 38. The recharging of the traction battery 38 can occur as the traction battery 38 is powering the heating unit 62. This provides the heating unit 62 with, effectively, an unlimited supply of electrical energy.
(30) With reference now to
(31) The side shelf 106 can provide the user with an additional work surface when utilizing the heating unit 62. The side shelf 106 can be a cutting board material to provide a surface suitable for food preparation, or could be another type of material. The side shelf 106 can be cantilever supported thereby eliminating the need for any external support post extending downward from the side shelf 106.
(32) In the exemplary non-limiting embodiment of
(33) In this exemplary embodiment, the side shelf 110 provides a work surface in addition to the side shelf 106. The side shelf 110 also acts as a cover for the heating unit 62 when the side shelf 110 is in a retracted position. Incorporating the side shelf 110 can eliminate the need for the cover 66.
(34) When the side shelf 110 is in the extended position of
(35) The heating unit 62 can be slightly recessed relative to a vertically uppermost surface of the tailgate 30 when in the open position of
(36) The side shelves 106 and 110 can move between the extended and retracted positions via tracks or rails. The side shelves 106 and 110 may lock into the extended position or the retracted position with latch-type mechanisms. Additionally, when the tailgate 30 is moved to a closed position, the sidewalls 22 of the cargo bed 14 could hold the side shelves 106 and 110 in the retracted position.
(37) Although the side shelves 106 and 110 are shown extending from opposing lateral sides of the tailgate 30, the side shelves could instead extend vertically rearward from a surface 114 of the tailgate 30. One or more of the side shelves extending from the surface 114 could provide a cover to the heating unit 62 when in the retracted position.
(38) Features of the disclosed examples include a heating unit incorporated into a cargo bed of a vehicle. The heating unit is powered by a traction battery of the vehicle. Powering the heating unit with the traction battery can provide a more stable and powerful source of electrical energy than heating units that receiving electrical energy from other, lower power, power supplies.
(39) The preceding description is exemplary rather than limiting in nature. Variations and modifications to the disclosed examples may become apparent to those skilled in the art that do not necessarily depart from the essence of this disclosure. Thus, the scope of legal protection given to this disclosure can only be determined by studying the following claims.