Contact charging method and contact charging system for electric vehicle
10889194 ยท 2021-01-12
Assignee
Inventors
Cpc classification
B60L53/18
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
B60L53/35
PERFORMING OPERATIONS; TRANSPORTING
B60L5/36
PERFORMING OPERATIONS; TRANSPORTING
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/12
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
B60L5/40
PERFORMING OPERATIONS; TRANSPORTING
B60L5/08
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/14
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
Y02T10/7072
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
International classification
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
B60L53/18
PERFORMING OPERATIONS; TRANSPORTING
B60L53/35
PERFORMING OPERATIONS; TRANSPORTING
B60L5/40
PERFORMING OPERATIONS; TRANSPORTING
B60L5/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
During travel of the electric vehicle, the charging arm is extended in the vehicle width direction, a positive electrode overhead line of the power supply device and a positive electrode power reception unit of the charging arm are brought into contact at the same time that a negative electrode overhead line of the power supply device and a negative electrode power reception unit of the charging arm are brought into contact, and a power storage device for driving the electric vehicle is charged. A charging head that is the tip section of the charging arm is held within a V-shaped groove to which the positive electrode overhead line and the negative electrode overhead line are attached, thereby minimizing the loss of contact even if the charging arm shakes in the vertical direction as a result of the condition of the road surface, brake operation, or the like.
Claims
1. An electric vehicle comprising a charging arm accommodated in a side portion of the electric vehicle and having a charging head including an electrode power reception unit at a position facing toward a corresponding power line of a power supplying device, the charging arm being configured to extend out in a vehicle widthwise direction so that the electrode power reception unit contacts with the corresponding power line of the power supplying device provided at a position facing the side portion of the electric vehicle along a running direction of the electric vehicle to charge an electrical storage device for driving in the electric vehicle, wherein the charging head of the charging arm is attached to a front end of an arm member configured to extend in the vehicle widthwise direction, the charging head of the charging arm is joined to the arm member through a first suspension formed of springs attached respectively to upper and lower sides of the arm member, the electrode power reception unit is partially covered by a casing, and the charging head comprises a third suspension elastically deformable in the vehicle widthwise direction such that the third suspension urges the charging head outwardly in the vehicle widthwise direction, and the electrode power reception unit has only a positive electrode power reception unit and a negative electrode power reception unit for power reception.
2. The electric vehicle according to claim 1, wherein the arm member is configured to rotate about a shaft positioned on the side portion of the electric vehicle and extend in the vehicle widthwise direction, and a second suspension elastically deformable in upper and lower directions is provided to the shaft.
3. The electric vehicle according to claim 1, wherein the first suspension is provided at one end of the charging head on a side of the arm member.
4. The electric vehicle according to claim 3, wherein the charging head is fixed through an attachment member to a bracket formed at a distal end of the arm member.
5. A contact charging system for an electric vehicle comprising a power supplying device and the electric vehicle having an electrical storage device for driving to be charged with an electric power from the power supplying device, wherein the power supplying device faces toward a side portion of the electric vehicle and includes a power line fixed along a running direction of the electric vehicle, the electric vehicle includes a charging arm accommodated in the side portion of the electric vehicle and having a charging head including an electrode power reception unit at a position facing toward the corresponding power line of the power supplying device, the charging arm being configured to extend out in a vehicle widthwise direction, the charging head of the charging arm is attached to a front end of an arm member configured to extend in the vehicle widthwise direction, the charging head of the charging arm is joined to the arm member through a first suspension formed of springs attached respectively to upper and lower sides of the arm member, the electrode power reception unit is partially covered by a casing, and the charging head comprises a third suspension elastically deformable in the vehicle widthwise direction such that the third suspension urges the charging head outwardly in the vehicle widthwise direction, and the electrode power reception unit has only a positive electrode power reception unit and a negative electrode power reception unit for power reception.
6. The contact charging system according to claim 5, wherein the arm member is configured to rotate about a shaft positioned on the side portion of the electric vehicle and extend in the vehicle widthwise direction, and a second suspension elastically deformable in upper and lower directions is provided to the shaft.
7. The contact charging system according to claim 5, wherein the first suspension is provided at one end of the charging head on a side of the arm member.
8. The contact charging system according to claim 7, wherein the charging head is fixed through an attachment member to a bracket formed at a distal end of the arm member.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(16) Below, descriptions will be given concerning embodiments of the present invention with reference to the accompanying drawings.
Common Structures
(17) In
(18) The electric vehicle 10 is a vehicle in which there are mounted an electric motor 110 for vehicle propulsion (shown only in
(19) The contact charging system 12 basically is constituted from a power supplying device 26 equipped with a power line retaining part 14 made of an insulating material, and the electric vehicle 10, which is equipped with a charging arm 18 on a side portion 10s of a vehicle body 11. The charging arm 18 may be disposed on both side portions of the electric vehicle 10.
(20) The power supplying device 26 is disposed at a length of a predetermined region on the shoulder of a road (including a high speed expressway) that forms a travel path 70, or on the shoulder of a travel path 70 of an automobile race track, etc. The length of the predetermined region is set to a length within which it is possible for the electric vehicle 10 having a predetermined electrical consumption to be charged with an amount of charge that enables traveling from the position of one power supplying device 26 to the position of a next power supplying device 26.
(21) The electric vehicle 10 travels along the power supplying device 26 on the travel path 70 on which the power supplying device 26 is arranged, and while traveling, charges the electrical storage device 100 from the power supplying device 26 through the charging arm 18.
(22) The power line retaining part 14 extends along the length of the predetermined region, and the rear side thereof is fixed at a predetermined interval on a guard post 20 (see
(23) Power lines 24, which are made up from a positive electrode power line 24p of a conductive material to which a DC high voltage is applied from an external power supply apparatus (not shown) and a negative electrode power line 24n of a conductive material, are fixed to the front side of the power line retaining part 14 like a rail. The voltage may be an AC voltage instead of a DC voltage.
(24) On a charging head 34 that forms the distal end part of the charging arm 18, a power reception unit 36 is attached, which is made up from a positive electrode power reception unit 36p that contacts the positive electrode power line 24p, and a negative electrode power reception unit 36n that contacts the negative electrode power line 24n. Both the positive electrode power reception unit 36p and the negative electrode power reception unit 36n are rolling wheels.
(25) For the sake of convenience, the respective constituent elements of the electric vehicle 10 shown in
(26) In
(27) In
(28) In
(29) In
(30) In
(31) Below, with reference to
(32) As shown in
(33) The slider crank mechanism 30 is constituted from an arm member 19 that extends between the bracket 53 and a pin 32 (shaft) that is disposed on the vehicle body of the electric vehicle 10, a spring damper 39a, one end of which is attached rotatably to the middle of the arm member 19 and the other end of which is attached rotatably to an actuator 38 that slides on a slide rail 37 in the directions of the arrow p, and a spring damper 39b, one end of which is fixed to the vehicle body and the other end of which is fixed to the actuator 38.
(34) The actuator 38 is biased so as to move on the slide rail 37 in the direction of the arrow p1, whereby the arm member 19 is moved in the direction of the arrow q1 about the center of rotation of the pin 32 through the spring damper 39a, which functions as a lever that swings within a limited range, and the power reception unit 36 of the charging head 34 is urged by the spring dampers 39a, 39b into a state of contact with the power lines 24.
(35) In this manner, the charging arm 18 is extended out (deployed or tilted) toward the side of the power supplying device 26 from the side portion 10s of the electric vehicle 10. More specifically, the charging arm 18 is extended in a lateral outward direction of the vehicle body 11.
(36) On the other hand, by urging the actuator 38 on the slide rail 37 in the direction of the arrow p2, the arm member 19 is moved in the direction of the arrow q2, and the charging head 34 is returned to the home position of the vehicle body 11.
(37) The charging head 34 is attached on one end of the bracket 53 to a head main body 41 through an attachment member (see
(38) As discussed above, the power supplying device 26 includes the power line retaining part 14, and a bottom portion of the power line retaining part 14 is fixed to a bottom portion 60d of a channel-shaped induction recess 60 (see
(39) In addition to the bottom portion 60d thereof, the induction recess 60 is constituted from guide members 60a, 60b, and 60c. The upper and lower guide members 60c extend in a horizontal direction toward the side of the travel path 70 (road) from upper and lower ends of the bottom portion 60d. The vertical interval between the upper and lower guide members 60c is formed by an interval having a redundancy with respect to the outer diameter of a casing 35 (see
(40) On the front side of the power line retaining part 14, there is provided a V-shaped groove 23 that opens in upper and lower directions UL of the side portion 10s of the electric vehicle 10, and is formed to extend in the running directions RD of the electric vehicle 10.
(41) A rear surface of the positive electrode power line 24p from among the power lines 24 is fixed to one inner surface of the V-shaped groove 23, and a rear surface of the negative electrode power line 24n from among the power lines 24 is fixed to another inner surface of the V-shaped groove 23. The positive electrode power line 24p and the negative electrode power line 24n are fixed by portions thereof being embedded in the power line retaining part 14 at positions to maintain an insulation distance mutually therebetween. Sides of the positive electrode power line 24p and the negative electrode power line 24n that come into contact with the charging head 34 are in the form of a V-shape.
(42) On the other hand, the charging head 34 is equipped with the power reception unit 36 having at upper and lower locations thereof the positive electrode power reception unit (positive electrode roller) 36p and the negative electrode power reception unit (negative electrode roller) 36n, both of which are rolling wheels (rotating rollers), respectively. The positive electrode power reception unit 36p and the negative electrode power reception unit 36n are formed in the shape of truncated cones, respective bottom surfaces of which vertically face one another, and which are symmetrical with respect to the axis of the charging head 34 (arm member 19). More specifically, the contact portions thereof are formed in the shape of wedges that make line contact with the V-shaped groove 23.
(43) The power reception unit 36 is engaged with bearings 40, 42 (see
(44) The charging head 34 is fixed by the bracket 53 that is formed on the other end of the arm member 19 through an attachment member 54 that constitutes part of the suspension 50 (see
(45) In the contact charging system 12 according to the first embodiment, which is equipped with the charging arm 18 according to the first example and the power supplying device 26 according to the first example that are constructed basically as described above, when the electric vehicle 10 during traveling thereof reaches a position in the vicinity of the power supplying device 26, the charging arm 18 is urged outwardly in the vehicle widthwise direction WD, and the charging head 34 is guided through the induction recess 60 to the power lines 24, whereupon as shown in
(46) In this manner, the charging arm 18, on which the positive electrode power reception unit 36p and the negative electrode power reception unit 36n are provided above and below on the distal end thereof, is extended out in a lateral or sideways direction of the vehicle body 11, and by being placed in contact with the power lines 24 that are disposed along the running directions RD of the travel path 70, the electrical storage device 100 for driving, which is mounted in the electric vehicle 10, can be charged during traveling.
(47) More specifically, a configuration is provided in which the positive electrode power reception unit 36p of the charging arm 18 and the positive electrode power line 24p of the power supplying device 26, and the negative electrode power reception unit 36n of the charging arm 18 and the negative electrode power line 24n of the power supplying device 26, wherein the positive electrode power line 24p is fixed to one inner surface and the negative electrode power line 24n is fixed to another inner surface of the V-shaped groove 23 that faces toward the side portion 10s of the electric vehicle 10 and is formed to open in upper and lower directions UL of the electric vehicle 10 and to extend along the running directions RD of the electric vehicle 10, are brought into contact simultaneously, and the electrical storage device 100 for driving of the electric vehicle 10 is charged. Therefore, even if the charging arm 18 swings or rocks in upper and lower directions UL due to road conditions of the travel path 70 or braking operations or the like, the charging head 34 that defines the distal end part of the charging arm 18 is retained inside the V-shaped groove 23 under the action of the suspension 50, etc., and contact is prevented from not being secured.
(48) Further, because the positive electrode power line 24p and the negative electrode power line 24n are fixed above and below on inner surfaces of the V-shaped groove 23, both the power supplying device 26 and the charging arm 18 can be made smaller in scale, and as a result, it is possible for the contact charging system 12 as a whole to be made smaller in scale.
(49) Moreover, as shown in
(50) Below, descriptions will be given concerning second through fourth embodiments. In the drawings to be referred to below, the same features or corresponding features to those shown in
Second Embodiment
(51) In
(52) The charging head 134 is equipped with a power reception unit 136 made up from a positive electrode power reception unit 136p and a negative electrode power reception unit 136n having halves of truncated conical shapes, which are embedded with the exception of front surfaces thereof by way of resin molding in a resin material head main body 141. The positive electrode power reception unit 136p and the negative electrode power reception unit 136n do not undergo rolling, unlike the positive electrode power reception unit 36p and the negative electrode power reception unit 36n of the charging head 34 shown in
(53) A rolling wheel 74 is attached to a bearing 72 on the distal end of the charging head 134. The rolling wheel 74 is adapted to roll in the running directions RD along a surface of the power line retaining part 114, in which a groove-shaped bottom portion of a V-shaped groove 123 is in the form of a U-shaped groove.
(54) In the power line retaining part 114, on one inner surface of the V-shaped groove 123, there is fitted a rear surface side projection of a positive electrode power line 124p having a gourd shape in cross section (a shape generally in the form of an oval with a constricted or narrowed center portion), and on the other inner surface thereof, there is fitted a rear surface side projection of a negative electrode power line 124n. The front sides of the positive electrode power line 124p and the negative electrode power line 124n are formed with semicircular shapes in cross section (i.e., with a rounded bar shape with respect to the running directions RD).
(55) While the rolling wheel 74 of the charging arm 118 rolls along the U-shaped groove of the groove-shaped bottom portion of the V-shaped groove 123, the positive electrode power line 124p of the power line retaining part 114 and the positive electrode power reception unit 136p of the charging head 134 undergo sliding contact by way of point contact, and together therewith, the negative electrode power line 124n of the power line retaining part 114 and the negative electrode power reception unit 136n of the charging head 134 undergo sliding contact by way of point contact, whereby the electrical storage device 100 for driving of the electric vehicle 10 is charged from a power supplying device 126 through the power lines 124 and the charging arm 118.
Third Embodiment
(56) In
(57)
(58) A power reception unit 236 made up from a positive electrode power reception unit 236p and a negative electrode power reception unit 236n, which are cylindrically shaped rolling wheels, are attached to the offset upper and lower retaining members 238a, 238b. By the positive electrode power reception unit 236p and the negative electrode power reception unit 236n sliding in line contact while rolling respectively on the positive electrode power line 24p and the negative electrode power line 24n, the electrical storage device 100 for driving of the electric vehicle 10 is charged from the power supplying device 26 through the charging head 234.
(59) Because the positive electrode power reception unit 236p and the negative electrode power reception unit 236n are attached in an offset manner in forward and rearward directions of the running directions RD, compared with the charging head 234 of the example of
Fourth Embodiment
(60) In
(61) The charging head 334 includes a base section 348 shaped in the form of a triangular prism. An attachment member 354 is mounted on one side surface of the base section 348, and rolling wheels 352 are attached through attachment members 350 to ends on upper and lower surfaces (in directions perpendicular to the sheet in
(62) Further, attachment plates 358 to which a power reception unit 336 is attached are disposed in parallel on both remaining side surfaces of the base section 348. The power reception unit 336 includes a positive electrode power reception unit 336p and a negative electrode power reception unit 336n, which are biased respectively through springs 356 toward a side of the positive electrode power line 124p and toward a side of the negative electrode power line 124n.
(63) The attachment plates 358 are biased by the springs 356 toward the sides of the power lines 124 about respective supporting shafts disposed between facing surfaces of the attachment members 350 on the sides of the rolling wheels 352.
(64) More specifically, the attachment plates 358 are urged in the directions of the arrows r, together with movement thereof being regulated by spring mechanisms 95 made up from the springs 356, pins 94, regulating members 93, and pins 92.
(65) In the charging head 334 according to the fourth example, while the rolling wheels 352 roll along a U-shaped groove of the V-shaped groove 123 in which the groove-shaped bottom portion thereof is in the form of a U-shaped groove, the positive electrode power reception unit 336p is kept in contact by a compression force of the spring 356 with respect to the positive electrode power line 124p, and together therewith, the negative electrode power reception unit 336n is kept in contact by a compression force of the spring 356 with respect to the negative electrode power line 124n, whereby the electrical storage device 100 for driving of the electric vehicle 10 is charged from the power supplying device 126 through the charging head 234.
Summary of Embodiments
(66) As described above, according to the aforementioned embodiments, for example as shown in
(67) Further, because the positive electrode power line 24p and the negative electrode power line 24n are fixed above and below on inner surfaces of the V-shaped groove 23, both the power supplying device 26 and the charging arm 18 can be made smaller in scale, and as a result, it is possible for the contact charging system 12 as a whole to be made smaller in scale.
(68) The present invention is not limited to the above-described embodiments, and it goes without saying that various configurations could be adopted therein, based on the content disclosed in the present specification.