A CONNECTION DEVICE FOR ESTABLISHING A CONNECTION BETWEEN A VEHICLE AND A FLUID OR ENERGY DISTRIBUTION SYSTEM
20190291826 ยท 2019-09-26
Inventors
Cpc classification
International classification
Abstract
A connection device for establishing a connection between a vehicle (12) and a fluid or energy distribution system (14) comprises: a main support structure (16); a connector head (18), for releasably connecting to a connection facility (20) on the vehicle; a support beam (22) having a longitudinal axis (24), a front-end supporting the connector head (18) and a rear end; and a support mechanism (26). This support mechanism (26) supports the rear end of the support beam (22) in the main support structure (16), so that the support beam (22) is movable along its longitudinal axis (24) and has two translational degrees of freedom that are perpendicular to its longitudinal axis (24). An articulation (52) with three rotational degrees of freedom is connected between the front-end of the support beam (22) and the connector head (18).
Claims
1. A connection device for establishing a connection between a vehicle and a fluid or energy distribution system, said connection device comprising: a main support structure; a connector head, for releasably connecting to a connection facility on said vehicle; a support beam having a longitudinal axis, a front-end supporting said connector head and a rear end; a support mechanism supporting said rear end in said main support structure, so that said support beam is movable along its longitudinal axis and has two translational degrees of freedom that are perpendicular to its longitudinal axis; and an articulation with three rotational degrees of freedom connected between said front-end of said support beam and said connector head.
2. The device as claimed in claim 1, wherein said support mechanism comprises a three-dimensional parallelogram mechanism having a rear end link supported by said main support structure and a movable front-end link supporting said support beam, wherein said support beam remains parallel to itself when said front-end link is moved out of a home position.
3. The device as claimed in claim 2, wherein: said home position is defined by springs and by gravity forces.
4. The device as claimed in claim 2, wherein said front-end link of said three-dimensional parallelogram mechanism supports a guide channel in a cantilevered way, said rear end of said support beam being guided by said guide channel so that said support beam is movable in a guided way along its longitudinal axis.
5. The device as claimed in claim 4, wherein: said rear end of said support beam includes wheels that are guided in rails of said guide channel.
6. The device as claimed in claim 4, further comprising: a reversible drive for driving said support beam in a forward movement and a backward movement along said guide channel.
7. The device as claimed in claim 6, wherein: said drive is a linear drive, preferably a chain drive, more preferably an endless chain drive with a servo or stepper motor.
8. The device as claimed in claim 1, wherein said articulation connected between said front-end of said support beam and said connector head is a cardan joint including: an inner ring with two inner ring pivots, which are spaced by 180, and two inner ring slotted holes, which are circumferentially extending and located at 90 from the two inner ring pivots; an outer ring with two outer ring pivots, which are spaced by 180, and two outer ring slotted holes, which are circumferentially extending and located at 90 from the two outer ring pivots; wherein: said outer ring is mounted about said inner ring so that both rings are coaxial with a common central axis and can rotate relative to one another, and said inner ring pivots are circumferentially guided in said outer ring slotted holes, and said outer ring pivots are circumferentially guided in said inner ring slotted holes; wherein; said outer ring and said inner ring cooperate provide a first rotational degree of freedom; said outer ring pivots and inner ring pivots cooperate with said front-end of said support beam and said connector head, to define two further rotational degrees of freedom.
9. The device as claimed in claim 1, wherein each of said three rotational degrees of freedom of said articulation connected between said front-end of said support beam and said connector head, is mechanically limited to less than +/10.
10. The device as claimed in claim 1, wherein the vehicle is a ship, said device further comprising: a floating body supporting said main support structure.
11. The device as claimed in claim 1, wherein said connector head comprises: a front side; and a connector or a connector arrangement arranged on said front side.
12. The device as claimed in claim 11, wherein said connector head further comprises: at least four guide rolls or four guide roll arrangements arranged symmetrically around said connector or connector arrangement.
13. The device as claimed in claim 11 or 12, wherein said connector head further comprises: two guide pins or two guide tubes or a guide pin and a guide tube arranged around said connector or said connector arrangement.
14. A connection system for establishing a connection between a vehicle and a fluid or energy distribution system, said connection system comprising: a connection device as claimed in claim 1; and a funnel-shaped connection facility on said vehicle; wherein for establishing a connection between said vehicle and said fluid or energy distribution system, said connection head is introduced into said funnel-shaped connection facility.
15. The connection system as claimed in claim 14, wherein said connector head comprises at least four guide rolls or four guide roll arrangements arranged symmetrically around said connector or connector arrangement; and wherein: said funnel-shaped connection facility has an inlet section that has the shape of a truncated pyramid with four surfaces, each of these surfaces being capable of cooperating with one of said four guide rolls or one of said four guide roll arrangements for centring said connection head in said funnel-shaped connection facility.
16. The connection system as claimed in claim 14, wherein said connector head comprises two guide pins or two guide tubes or a guide pin and a guide tube arranged around said connector or said connector arrangement, and wherein said funnel-shaped connection facility has at least one guide pin that cooperates with a guide tube on said connector head and/or at least one guide tube that cooperates with a guide pin on said connector head.
17. A connection device for establishing a connection between a vehicle and a fluid or energy distribution system, said connection device comprising: a main support structure; a connector head, for releasably connecting to a connection facility on said vehicle; a support beam having a longitudinal axis, a front-end supporting said connector head and a rear end; and a support mechanism supporting said rear end in said main support structure, so that said support beam is movable along its longitudinal axis and has two translational degrees of freedom that are perpendicular to its longitudinal axis; an articulation with three rotational degrees of freedom connected between said front-end of said support beam and said connector head; wherein said support mechanism comprises a three-dimensional parallelogram mechanism having a rear end link supported by said main support structure and a movable front-end link supporting said support beam, wherein said support beam remains parallel to itself when said front-end link is moved out of a home position, wherein said front-end link of said three-dimensional parallelogram mechanism supports a guide channel in a cantilevered way, said rear end of said support beam being guided by said guide channel so that said support beam is movable in a guided way along its longitudinal axis, and wherein the connection device comprises a reversible drive for driving said support beam in a forward movement and a backward movement along said guide channel.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0018] The afore-described and other features, aspects and advantages of the invention will be better understood with regard to the following description of preferred embodiments of the invention and upon reference to the attached drawings, wherein:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION
[0025]
[0026] While this device 10 has been especially developed for connecting an electrically powered ferry to an electric power distribution system, for recharging the batteries of the ferry, the vehicle 12 may also be: a land vehicle (as for example: a car, a truck, a bus, a movable working machine, . . . ); a railed vehicle (as for example: a train, a tram, a crane, . . . ); a watercraft vehicle (as for example: a ships, a boat, a submarine, . . . ); or an aircraft vehicle (as for example: a plane).
[0027] The distribution system 14, to which this vehicle is to be connected, may also be a distribution system for: a liquid (as for example: water, liquid fuel, hydraulic oil, or any liquid transported by the vehicle); a gas (as for example: pressurized air, gaseous fuel, or any gas transported by the vehicle); or even a pneumatically or hydraulically conveyable solid/fluid or solid/gas mixture.
[0028] The connection device 10 comprises an outer casing and main support structure 16, which advantageously comprises a closed casing protecting the mechanisms inside against harsh environments. In
[0029] In a preferred embodiment, the mechanism 26 comprises a three-dimensional parallelogram mechanism. This mechanism has a fixed rear end link or frame link 28, which is formed by (respectively supported by) the main support structure 16, and a movable front-end link formed by a front plate 30. Four parallel connection links 32.sub.i (i=1 to 4), which all have the same length, connect the movable front plate 30 to the rear end link 28, wherein eight cardan joints 34.sub.i (i=1 to 8), each of them having two rotational degrees of freedom, form the four joints between the parallel connection links 32.sub.i and the front plate 30, respectively the four joints between the parallel connection links 32.sub.i and the rear end link 28. The front plate 30 can consequently be moved vertically up and down (i.e. parallel to reference axis X) and sideways to the left and to the right (i.e. parallel to reference axis Y), wherein the three-dimensional parallelogram mechanism 26 ensures that the movable front plate 30 remains always parallel to itself.
[0030] Two suspension springs 36.sub.1, 36.sub.2 are connected between the upper connection links 32.sub.1,2 and the outer casing 16, so as to resiliently oppose a downward and sideward movement of the front plate 30. In a section that is perpendicular to the plane of
[0031] The front plate 30 supports an elongate guide structure 38 in a cantilevered manner in the space between the four parallel connection links 32.sub.i. The three-dimensional parallelogram mechanism 26 consequently ensures that the elongate guide structure 38 can be moved vertically up and down (i.e. a movement parallel to reference axis X) and sideways to the left and to the right (i.e. a movement parallel to reference axis Y), while always remaining parallel to itself (i.e. parallel to the reference axis Z). In the elongate guide structure 38, the rear end of the support beam 22 is guided so as to be solely movable in a translation movement along its longitudinal axis 24, i.e. parallel to the reference axis Z. In a preferred embodiment, the elongate guide structure 38 has the form of a guide channel 38 in which the rear end of the support beam 22 is slidingly received. To achieve a smooth linear guidance of the support beam 22 along its longitudinal axis 24, the rear end of the support beam 22 is preferably equipped with two pairs of wheels 40 guided in two pairs of rails 42, but other kinds of guidance systems, with or without wheels and/or rails, are not excluded. To move the support beam 22 along its longitudinal axis 24 forward and backward parallel to the reference axis Z, the support beam 22 is connected to a reversible linear drive 44, preferably an endless chain drive equipped with a reversible motor 46, preferably a servo motor or a stepper motor. Alternatively, a reversible motor may also be mounted on the support beam 22 and be equipped with a toothed wheel engaging with a toothed rail or with a chain, which are fixed on the guide channel 38. As a further alternative, a linear motor may be used for driving support beam 22.
[0032] The front plate 30 is arranged behind a front opening 48 in the outer casing 16. Through this front opening 48, the support beam 22 can push the connector head 18 out of the casing 16, in the direction of reference axis Z, or retract it back into a frontal cavity 50 of the outer casing 16. When the device 10 is not used, the support beam 22 is entirely retracted, wherein the connector head 18 is located in the frontal cavity 50, which is then advantageously closed by means of e.g. a sliding door, a hatch or a rolling shutter (not shown). In
[0033] Still referring to
[0034]
[0035]
[0036] Referring now to
[0037] Alternatively, the connection facility 20 may be equipped with an arrangement of electrical connectors, which are in this case mechanically and electrically complementary to an arrangement of electrical connectors supported by the connector head 18, so that the connectors of both arrangements may be axially plugged together to create a temporary electrical connection. It remains to be noted that the plug and socket connectors 74, 94 shown in
[0038] Reference numbers 96.sub.1 and 96.sub.2 identify two guide pins, which are symmetrically arranged with regard to the electrical connector 94 and complementary to the guide tubes 80.sub.1 and 80.sub.2 on the connector head 18. A sliding door, a hatch or a rolling shutter (not shown) can be provided to close the inlet funnel 82 or, alternatively, the front opening of the connector chamber 88, when the connection facility 20 is not used.
[0039] For establishing a connection to the vehicle 12, the connector head 18 must be brought by an axial forward movement of the support beam 22 in the direction of reference axis Z into the inlet opening 84 of the inlet funnel 82. If, when it penetrates into the inlet funnel 82, the connector head 18 is not perfectly aligned with the inlet funnel 82, a first of the guide roll 78.sub.i will contact one of the two inclined walls 86.sub.i that are parallel to reference axis X (respectively parallel to reference axis Y). When the connector head 18 penetrates deeper into the inlet funnel 82, the inclined wall 86.sub.i, which is in contact with this first guide roll 78.sub.i, will push the connector head 18 in the direction of reference axis Y (respectively of reference axis X) towards the centre of the inlet funnel 82, wherein the support beam 22 will follow this translation movement, due to its translational degree of freedom along reference axis Y (respectively along reference axis X), and hereby remain parallel to itself. As the connector head 18 further penetrates into the inlet funnel 82, a second of the guide rolls 78.sub.i will contact one of the two inclined walls 86.sub.i that are parallel to reference axis Y (respectively parallel to reference axis X). When the connector head 18 still further progresses into the inlet funnel 82, the inclined wall 86.sub.i, which is in contact with this second guide roll 78.sub.i, will push the connector head 18 in the direction of reference axis X (respectively of reference axis Y) towards the centre of the inlet funnel 82, wherein the support beam 22 will follow this translation movement, due to its translational degree of freedom along reference axis X (respectively along reference axis Y), and hereby remain parallel to itself. Thus the connector head 18 will be urged by the inclined walls 86.sub.i into the connector chamber 88. The dimensions of the cross-section of this connector chamber 88 are only slightly bigger than the dimensions of a rectangle exactly circumscribing the four guide rolls 78.sub.i in a plane perpendicular to the longitudinal axis 24 (or the reference axis Z), to ensure that the connector head 18 enters without problem into the connector chamber 88 but is nevertheless sufficiently centred therein to achieve a swift connection progress. In particular, the centring of the connector head 18 in the connector chamber 88 has to be sufficient to ensure that the guide pins 96.sub.1, 96.sub.2 penetrate with their cone-shaped ends into the guide tubes 80.sub.1, 80.sub.2, as the connector head 18 penetrates into the connector chamber 88. The cone-shaped ends of the guide pins 96.sub.1, 96.sub.2 will then provide a fine-tuning of the centring of the connector head 18 in the connector chamber 88, before the electrical connector 74 comes into mechanical contact with the electrical connector 94.
[0040] The three rotational degrees of freedom of the articulation 52 allow to compensate angular misalignments between the mating parts on the connector head 18 and in the connector chamber 88. Due to the three rotational degrees of freedom of the articulation 52, all initial angular misalignments between parts on the connector head 18 mating with parts in the connector chamber 88 will indeed disappear as soon as the guide pins 96.sub.1, 96.sub.2 sufficiently penetrate into the guide tubes 80.sub.1, 80.sub.2. Once, the guide pins 96.sub.1, 96.sub.2 have fully engaged the guide tubes 80.sub.1, 80.sub.2, the connector head 18 will be firmly blocked in the connector chamber 88 in the direction of reference axes X and Y. If the vehicle 12, for example in case of a ship, is subjected to small vertical and/or horizontal movements during its connection to the connection device 10, the support beam 22 can easily follow these movements, due its two translational degrees of freedom that are perpendicular to its longitudinal axis 24. Small angular movements of the vehicle 12 (i.e. a rolling, pitching and yawing), during its connection to the connection device 10, will be absorbed in the articulation 52, so that they will not affect the support beam 22.
[0041] It will be noted that instead of having two guide tubes 80.sub.i on the connector head 18 and two guide pins 96.sub.i in the connector chamber 88, one may also have two guide pins on the connector head 18 and two guide tubes in the connector chamber 88 or one guide tube and one guide pin on the connector head 18 and in the connector chamber 88. Furthermore, while the guide tubes 80.sub.i are the preferred solution for cooperating with the guide pins 96.sub.i, it is not excluded to replace such a guide tube 80.sub.i simply with a bore in a structural element of the connector head 18 or the connector chamber 88. Finally, instead of or in addition to having cone-shaped ends on the guide pins, one may also have guide tubes 80.sub.i with funnel-shaped inlet sections.
[0042] Referring again to
[0043]
[0044] To be able to compensate for bigger differences of the height of the connection facility 20 with regard to water level 108 (for example, in case of different ship sizes or the same ship size with a different ballasted condition), the connection device 10 may be supported on the floating body 104 by means of an auxiliary support structure 110 that is adjustable in height. Alternatively or additionally, the floating body 104 may also be equipped with ballast tanks (not shown) that can be filled with more or less water and pumped empty to adjust the height of the connection device 10 above water level 108. Furthermore, instead of being fixed to the dock 102, the articulated link mechanism 106 can of course be fixed to a vehicle (not shown), in particular a rail-guided vehicle, that moves along the dock 102. Finally, if the ship, in particular a ferry, is connected to the dock 102 by means of a ramp with a king-pin, or similar, for holding the ferry in position, the connection device 10 may of course be directly supported on this ramp.
REFERENCE SIGNS LIST
[0045]
TABLE-US-00001 10 connection device 12 vehicle or outer vehicle wall 14 energy or fluid distribution system 16 main support structure (outer casing) 18 connector head 20 connection facility on 12 22 support beam 24 longitudinal axis of 22 26 support mechanism (three- dimensional parallelogram mechanism) 28 fixed rear end link or frame link 30 movable front-end link, front plate 32.sub.i parallel connection links 34.sub.i cardan joints 36.sub.i suspension springs 37 supporting rod 38 elongate guide structure (guide channel) 40 two pairs of wheels 42 two pairs of rails 44 reversible linear drive 46 reversible motor 48 front opening in 16 50 frontal cavity 52 articulation 54 base plate 56 end plate 58 inner ring 60 inner ring pivots 62 inner ring slotted holes 64 outer ring 66 outer ring pivots 68 outer ring slotted holes 70 brackets 72 brackets 74 electrical connector 76 contact elements on 74 78.sub.i guide rolls 80.sub.1,2 guide tubes 82 inlet funnel 84 inlet opening of 82 86.sub.i four inclined walls 88 connector chamber 90.sub.i four lateral walls of 86 92 base plate of 86 94 electrical connector 96.sub.1,2 guide pins 100 ship 102 dock 104 floating body 106 articulated link mechanism 108 water level 110 auxiliary support structure