The invention relates to the field of air conditioning for vehicles.
The vehicle's engine wheel 18 transmits its torque by a belt 24A or other means moving along rotational direction 22A, to a wheel 30B of an alternator 34, for producing alternating electric power (shown in
Rotation of wheel 30B of alternator 34 produces alternating voltage (such as of three phase), being rectified to direct current (DC) supplied to the vehicle's battery 66.
However, activating the air-conditioner is not available without operating the engine, while operation of the engine without being at the site is regarded dangerous to the public and to the vehicle.
There is a long felt need to provide a solution to the above-mentioned and other problems of the prior art.
A vehicle air-conditioning system, including a DC-to-AC inverter, for rotating the alternator wheel, and mechanical connection between the alternator wheel and the air-conditioner wheel, thereby allowing operating the air-conditioner separated from the engine.
Embodiments, features, and aspects of the invention are described herein in conjunction with the following drawings:
The drawings are not necessarily drawn to scale.
The invention will be understood from the following detailed description of embodiments of the invention, which are meant to be descriptive and not limiting. For the sake of brevity, some well-known features are not described in detail.
The reference numbers have been used to point out elements in the embodiments described and illustrated herein, in order to facilitate the understanding of the invention. They are meant to be merely illustrative, and not limiting. Also, the foregoing embodiments of the invention have been described and illustrated in conjunction with systems and methods thereof, which are meant to be merely illustrative, and not limiting.
According to one embodiment of the invention, engine wheel 18 transmits its torque by belt 24A or other means moving along rotational direction 22A, to a wheel 30A, for transferring it to wheel 30B of alternator 34, for producing electric power (shown in
In contrast to the prior art vehicle, air-conditioner wheel 28 directly receives its torque from wheel 30B of alternator 34 through a belt 24B along rotational direction 22B.
Engine wheel 18 transmits its torque by belt 24A or other means moving along rotational direction 22A, to wheel 30A.
Wheel 30B of alternator 34 and wheel 30A are connected one to the other through a one-directional bearing 54, providing that rotation of wheel 30A along rotational direction 22A rotates wheel 30B.
Engine wheel 18 transmits its torque by belt 24A or other means moving along rotational direction 22A, to wheel 30A of alternator 34.
According to one embodiment, one-directional bearing 54 is applied by rotation 22A of wheel 30A pressing a lever 33 of one-directional bearing 54, which rotates wheel 30B of alternator 34.
Referring again to
Rotation of wheel 30B of alternator 34 further produces alternating voltage (such as of three phase), being rectified to direct current (DC) supplied to vehicle's battery 66.
While the vehicle's engine is off, i.e., engine wheel 18 does not rotate, the user may communicate with an air-conditioning operating element 62, for rotating air-conditioner wheel 28.
The passenger compartment may have a camera 82 and a temperature sensor 84, readings thereof for being communicated to the transmitting device 12.
Thus, the user may leave an infant in the vehicle while parking, turn on the air-conditioner as a function of the indoor temperature, and watch the infant.
The term “DC to AC inverter” is a device that inverts direct current (DC) to alternating current (AC).
Referring again to
Operation of DC to AC inverter 60 inverts DC current supplied by battery 68, to AC current supplied to alternator 34, as depicted by schematic alternating switch 72, thus turning alternator 34 to an electric motor, for rotating wheel 30B thereof.
Wheel 30B of alternator 34 rotates in rotational direction 22B.
As described in
However, one-directional bearing 54, provides that rotation of wheel 30B along rotational direction 22B does not rotate wheel 30A along rotational direction 22A, thus not rotating engine wheel 18.
Wheel 30B of alternator 34 and wheel 30A are connected one to the other through one-directional bearing 54.
According to one embodiment, wheel 30B rotating along rotational direction 22B presses lever 33 of one-directional bearing 54 against spring 56 thereof, thus not applying any pressure on wheel 30A, thus not rotating engine wheel 18.
Thus, in one aspect, the invention is directed to a vehicle air-conditioning system (10), including a DC-to-AC inverter (60), for supplying alternating current to the alternator (34) of the vehicle (86) from a battery (66, 68), for rotating the wheel (32B) of the alternator (34) and a mechanical connection (24B, 80) between the alternator wheel (32B) and a wheel (28) of the air-conditioner (36) of the vehicle (86), the mechanical connection (24B, 80) being separable from the engine wheel (18), thereby allowing operating the air-conditioner (36) separated from the engine wheel (18).
The vehicle air-conditioning system (10) may further include a one-directional bearing (54), for transferring the rotation of the engine wheel (18) to the alternator wheel (32B) and not vice versa, thereby powering of the air-conditioner wheel (28) by the battery (66, 68) does not rotate the engine wheel (18), even though allowing powering of the air-conditioner wheel (28) by the engine wheel (18).
The mechanical connection (24B, 80) between the alternator wheel (32B) and the air-conditioner wheel (28) may be applied by a first belt (24B), and the connection to the engine wheel (18) may be applied by a second belt (24A), thereby separating the connections one from the other.
The battery (66, 68) rotating the alternator wheel (32B) may be additional to the main battery (66) igniting the vehicle (86).
The alternator (34) may be electrically connected both to the battery (66, 68) rotating the alternator wheel (32B) and to the battery (66) igniting the vehicle (86), for recharging both.
The vehicle air-conditioning system (10) may further include a transmitting device (12), for communicating with the operating element (62), thereby wirelessly (16) operating the air-conditioner (36).
The operation of the air-conditioner (36) separated from the engine wheel (18) allows turning off the vehicle's engine (38) including the engine wheel (18), for allowing safe leaving of an infant in the vehicle while parking.
The engine (38) including the engine wheel (18), may be an internal combustion engine and an electric engine.
In the figures and/or description herein, the following reference numerals (Reference Signs List) have been mentioned:
The foregoing description and illustrations of the embodiments of the invention have been presented for the purpose of illustration, and are not intended to be exhaustive or to limit the invention to the above description in any form.
Any term that has been defined above and used in the claims, should to be interpreted according to this definition.
The reference numbers in the claims are not a part of the claims, but rather used for facilitating the reading thereof. These reference numbers should not be interpreted as limiting the claims in any form.
This application claims the benefit of priority from U.S. Provisional Application No. 62/531,364, filed Jul. 12, 2017, the disclosure of which is incorporated herein by reference.
Number | Name | Date | Kind |
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20160258409 | Marthaler | Sep 2016 | A1 |
20180162371 | Colavincenzo | Jun 2018 | A1 |
Number | Date | Country | |
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20190016193 A1 | Jan 2019 | US |
Number | Date | Country | |
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62531364 | Jul 2017 | US |