The invention concerns the field of exchanging a power supply battery for an electric traction motor of a vehicle of the fully electric or hybrid type.
The object of the invention is more particularly a device for installing and uninstalling such a battery on a vehicle.
Certain motor vehicles, such as electric or hybrid vehicles, comprise a power supply container for an electric drive motor, such as an electricity-supply battery. In the description which follows, the term “battery” will be used for simplicity to designate, in the widest sense, any electricity-supply container for an electric drive motor of a vehicle. It may be useful to exchange this battery, when its energy level is low, for a new charged battery. This can be done in an exchange station, such as for example a station similar to a service station for filling the tanks associated with internal combustion engines.
Document US 2010/145717 discloses an exchange station for electricity-supply batteries for an electric drive motor of an electric vehicle and a method for performing such an exchange. The exchange station described comprises a lift table carrying an element for locking and unlocking the battery on the vehicle.
One difficulty in establishing such a battery exchange concept is the fact that there are a multitude of motor vehicles which may comprise batteries of different types which are fixed to the motor vehicle in different ways. It is not economically feasible to multiply the systems for installing and uninstalling these different types of batteries, nor to establish a manual solution because of the cost and weight of the batteries. The solution described in document US 2010/145717 does not satisfactorily solve this problem of flexibility of the battery exchange solution, in particular because of a lack of robustness.
No solutions known at present solve the problem of flexibility while presenting a simple design, with limited space requirement and reasonable cost.
To allow easy development of battery exchange solutions, it is necessary to make the functioning of these solutions reliable, simple, robust, flexible and universal, while limiting their cost and space requirement.
The object of the present invention is to provide a solution for exchanging a supply battery of an electric traction motor of a vehicle of the fully electric or hybrid type, which solves these problems.
Therefore a device is proposed for installing and uninstalling a battery on the underside of an electric or hybrid vehicle, the underside of the vehicle lying in a first substantially horizontal plane, the device comprising a lift table which vertically moves an engaging member able to interact with the underside of the vehicle. The engaging member is brought by the lift table into mechanical contact with the underside of the vehicle, the top of the member then lying in a second substantially horizontal plane in a state which does not allow said member to interact with the underside of the vehicle because of a relative inclination between the first and second planes. The lift table is raised by means of at least two cables, the elasticity of which allows compensation for the relative inclination of the two planes in order to enable the member to interact with the underside of the vehicle.
The elasticity of the cables may allow compensation for the relative inclination of the two planes within the limit of deformability of said cables.
The cables may be arranged symmetrically on either side of the lift table and be driven by the same motor and/or via pulleys.
The device may also comprise a position correction element allowing the vehicle to be placed in the first substantially horizontal plane.
As the engaging member comprises an actuator element for a mechanism for locking and/or unlocking the battery on the underside of the vehicle, wherein the mechanism comprises a plurality of latches, and the elasticity of the cables may allow compensation for the relative inclination between the planes in order to enable the actuation of the latches.
One of the main advantages of the invention is that it is robust, flexible and universal, since the engaging member can easily be adapted to the type of vehicle while retaining a simple design, with limited space requirement and reasonable cost.
Other advantages and characteristics will arise more clearly from the description below of particular embodiments of the invention, given as non-limitative examples and shown in the attached drawings in which:
In
The lift table 11 therefore carries an engaging member which is able to interact with the underside of the vehicle. The engaging member can comprise an element for relative positioning of the lift table 11 in relation to the vehicle and/or for correction of the vehicle position. This positioning element may be intended to compensate for horizontal offsets between the table 11 and the vehicle, and optionally to cause a raising of the vehicle by lifting the table 11 to a predetermined height in order to compensate for height differences between the different types of existing vehicles. The position correction element may consist of a carrier with several contact points with the vehicle, wherein all the points of the carrier can be brought into contact with the vehicle by a raising of the vehicle at the same time as or after that corresponding to the relative positioning of the vehicle/table. These positioning and/or position correction elements may be associated with the table by a removable assembly, allowing removal of said elements in relation to the lift table as required.
In addition or instead, the engaging member may comprise a support element for the battery 10 during its storage and/or electric recharging, thus ensuring the support of the battery when unloaded from the table 11 of the installing and uninstalling device. Such a support element, such as a pallet or of a type which may for example be known as a “slide”, can in particular be intended to facilitate handling and storage of the battery outside the installing/uninstalling device.
Therefore the mobility of the lift table 11 in the vertical direction Z, as well as allowing it to fulfill its function of lifting the batteries, also allows the engaging member described above to interact with the underside of the vehicle, for example in the form of approach and/or placing of the engaging member against the vehicle so that the constituent elements thereof (positioning and/or position correction element and/or battery support element during storage and/or electric charging of the battery) can fulfill their functions.
The installing and uninstalling device comprises a trolley 12 on which the lift table 11 is mounted and which is configured so as to move the assembly consisting of the lift table 11 and the engaging member in at least one substantially horizontal movement direction. To move this assembly, a possibility may be provided for horizontal translation of the trolley 12 in the first movement direction X and where applicable a possibility of horizontal movement of the lift table 11 in relation to the trolley 12 in a second movement direction Y. In other words, the trolley 12 in the latter case is configured so as to move the lift table 11 relative to itself in the second direction Y. As a variant however, it is possible for the trolley 12 to be designed so as to move in both directions X and Y which are for example perpendicular to each other. The first and second embodiments thus provide movement of the trolley 12 in the first direction X, while only the first embodiment provides horizontal movement of the table 11 in the second direction Y, for example using the movement of the table relative to the trolley 12 on which it is mounted.
As the lift table 11 can thus be moved horizontally by action of the trolley 12, it can advantageously change position from the area of installing/uninstalling batteries on vehicles, in order for example to be able to participate in other operations necessary for managing the battery exchange, at different working heights, such as operations of battery cleaning and/or operations of installation and removal of the batteries in and from the cells for storage and/or electric recharging.
Also, the engaging member carried by the lift table 11 may optionally comprise an actuator element 18 for a mechanism for locking a battery on the vehicle. Such a locking mechanism is thus able to shift between a locked state which spatially immobilizes the battery, with which it cooperates in a mounted position, inside the housing cell of the vehicle, and an unlocked state which spatially releases the battery from its mounted position. The actuator element can thus be designed such that a suitable maneuver of the latter controls passage of the locking mechanism from one state to the other, this maneuver taking place via the underside of the vehicle for example.
As an example showing the advantage of its rapidity and ease of implementation, the locking mechanism fitted to a vehicle can be configured such that, for operation, the mechanism must be force-operated in order to achieve its release, then at least one latch (for example, four in number) must be rotated (for example through 90°) in order to obtain the locking and/or unlocking of the mechanism. It is also possible that the actuator element 18 is flexible in the sense that it can be adjusted or changed in order to adapt to the different types of locking mechanism which may be fitted to different vehicle types. For this, the element 18 can advantageously comprise a standard interface and a number of standard and modular components, in order to obtain an element 18 suitable for intervention on all types of battery and all motor vehicles. Such an actuator element 18 is also known as a “toolbox”, as described for example in the application published under number FR2952334.
The horizontal movement of the table 11 by action of the trolley 12 therefore advantageously allows a possible change of position of the actuator element 18 from the zone of installing/uninstalling batteries on vehicles, in order for example to be able to use this element 18 as a substitute for the support element previously described, or even to use this element 18 for installing and/or removing a battery into or from a storage cell of a structure for storage and/or recharging, in the case where the cell is itself advantageously fitted with a locking mechanism corresponding to that of the housing cell of the vehicle.
As
The trolley 12 may also comprise a lifting platform 14 which is vertically movable in the Z direction and linked to the rolling element 13 by any means of relative lifting between these two parts. For example the vertical movement in direction Z of the platform 14 relative to the rolling element 13 can be obtained by a pair of lift forks 15 offset in direction X, each of the forks being actuated in vertical movement by at least one cable 16, the extension of which is controlled for example by a corresponding motor 17 mounted on the rolling element 13. Advantageously, as illustrated by the embodiment in
The lift table 11 is mounted on the lifting platform 14 by a linking means which may include a means of relative vertical movement between the lift table 11 and the lifting platform 14, and/or a means of relative horizontal movement between the lift table 11 and the platform 14 along the direction Y, which is not the case in the first embodiment. This latter eventuality is advantageously provided in the case where the rolling element 13 is not mounted movably in the direction Y. Secondly the means of relative vertical movement between table 11 and platform 14 has the advantage of giving a vertical global movement to the table 11 in relation to the rolling element 13 which is telescopic, i.e. with an optional first vertical component (see arrow F1 in
The horizontal movement of the table 11 in the Y direction is itself useful for example in the case where the table 11 participates in the operations of installation and removal of batteries into and from the structure for storage and/or electric recharging, allowing this structure to be installed remotely in relation to the trajectory of the trolley 12 in the direction X. The possibility of horizontal movement in direction Y of table 11 in relation to the platform 14 may be replaced by or combined with a possibility of relative movement in direction Y of the platform 14 in relation to the rolling element 13.
As indicated above, the embodiment of
In a manner not shown, each installing/uninstalling device of the two embodiments can comprise at least two independent lift tables 11 arranged offset in direction Y. As a variant, it is possible to provide that the trolley 12 is configured so as to provoke a rotation of the single lift table 11 around a vertical pivot axis.
An installing and uninstalling device as mentioned above may therefore be used in operation of a battery exchange station for an electric or hybrid motor vehicle. The installation of an example of such a station is shown diagrammatically in a top view in
This station can be configured such that the assembly (table 11 and engagement member) moves from or to a transfer zone 22 in which a removed battery is transferred from the installing and uninstalling device to a handling device which is separate from the installing and uninstalling device, or vice versa. This handling device, which may have any design suitable for its function, is able to move the battery between the transfer zone 22 and a storage and/or charging zone 23 for batteries. In this case it is possible to arrange the installing and uninstalling device in a pit 24 provided in the ground, the transfer zone 22 then being provided at the edge of the pit 24 such that the handling device and the storage and/or charging zone 23 are arranged outside the pit 24, further limiting the general space required for the battery exchange solution.
From reading the above, it is clear that a battery exchange process allowed by the installing and uninstalling device is such that it comprises a step of moving the assembly, consisting of the lift table and the member engaging with the vehicle, in at least one substantially horizontal direction of movement. In the case where the direction of movement X of the assembly is perpendicular to the track 21, the direction X is substantially perpendicular to the longitudinal axis of the vehicle on which the battery is exchanged when parked in the installing/uninstalling zone 20. However, depending on the needs and possibilities for arranging the various constituent elements of the station, in particular with regard to the choice of location of the storage and/or charging zone relative to the installing and uninstalling zone, it remains possible that the direction of movement X of the assembly is substantially parallel with the longitudinal axis of the vehicle.
In the description above and with reference to
Finally the solution described achieves the object desired and has the following advantages:
Number | Date | Country | Kind |
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12 50219 | Jan 2012 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FR2012/053046 | 12/21/2012 | WO | 00 | 8/15/2014 |