LINEAR-MOTOR-DRIVEN TRACKED VEHICLE
20230039298 · 2023-02-09
Inventors
Cpc classification
B62D55/065
PERFORMING OPERATIONS; TRANSPORTING
B66B11/0407
PERFORMING OPERATIONS; TRANSPORTING
B66B9/02
PERFORMING OPERATIONS; TRANSPORTING
B66B9/003
PERFORMING OPERATIONS; TRANSPORTING
B62D55/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66B11/04
PERFORMING OPERATIONS; TRANSPORTING
B66B9/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A tracked vehicle encompassing: a load subassembly; a drive track that is retained movably on the load subassembly in order to execute a motion along a circulation path of the drive track;
a linear motor, a stator of the linear motor being arranged in stationary fashion with respect to the load subassembly, and a rotor of the linear motor being arranged for motion together with the drive track, and/or the rotor being embodied in the drive track; the rotor having permanent magnets that are arranged in the drive track and are embodied for motion together with the drive track.
Claims
1-21. (canceled)
22. A tracked vehicle encompassing: a load subassembly; a drive track that is retained movably on the load subassembly in order to execute a motion along a circulation path of the drive track; a linear motor, a stator of the linear motor being arranged in stationary fashion with respect to the load subassembly, and a rotor of the linear motor being arranged for motion together with the drive track, and/or the rotor being embodied in the drive track, wherein the rotor comprises permanent magnets that are arranged in the drive track and are embodied for motion together with the drive track.
23. The tracked vehicle according to claim 22, wherein permanent-magnet arrangements have an alternatingly opposite polarization direction being arranged one behind another in the drive track along the circulation path, each permanent-magnet arrangement comprising at least one permanent magnet, permanent-magnet arrangements that are directly successive to one another along the circulation path and are arranged in the drive track preferably being arranged with an alternatingly opposite polarization direction.
24. The tracked vehicle according to claim 22, wherein: the stator comprising, along at least a portion of the circulation path, stator windings arranged one behind another for generating a magnetic field upon energization of the stator windings; and the tracked vehicle comprising a power converter that is electrically conductively connected to the stator windings.
25. The tracked vehicle according to claim 24, further encompassing an energy reservoir for supplying the power converter with electrical energy, the energy reservoir preferably being embodied separately from the power converter.
26. The tracked vehicle according to claim 24, further encompassing a current collector for supplying the power converter with electrical energy.
27. The tracked vehicle according to claim 22, wherein the drive track encompassing a neutralization strand on which an activatable neutralization magnet arrangement of the tracked vehicle is arranged; and the neutralization magnet arrangement being configured to constitute, at the neutralization strand, a magnetic field that quantitatively weakens or neutralizes a magnetic field of at least one permanent magnet that is located in the neutralization strand.
28. The tracked vehicle according to claim 27, wherein: the drive track encompassing one supporting surface contact strand and two deflection strands, each deflection strand directly adjoining the supporting surface contact strand along the circulation path; and the neutralization strand encompassing a portion of the supporting surface contact strand directly adjacent to one of the deflection strands, and/or encompassing a portion of the drive track in a transition region between the supporting surface contact strand and a deflection strand, and/or encompassing a portion of the supporting surface contact strand or the entire supporting surface contact strand.
29. The tracked vehicle according to claim 22, wherein the tracked vehicle encompassing a plurality of drive tracks.
30. The tracked vehicle according to claim 22, wherein the drive track encompassing one supporting surface contact strand and two deflection strands, each deflection strand directly adjoining the supporting surface contact strand along the circulation path; and the stator comprising stator windings, arranged one behind another along at least a portion of the circulation path, for generating a magnetic field upon energization of the stator windings, which are arranged along at least one of the deflection strands and/or along the supporting surface contact strand and/or along a further strand of the drive track which differs from the supporting surface contact strand and is arranged between the deflection strands, and/or are arranged along the entire circulation path.
31. A vehicle system encompassing: a tracked vehicle; and a travel path arrangement, the tracked vehicle encompassing: a load subassembly; a drive track having permanent magnets embodied for motion together with the drive track, the travel path arrangement comprising a track supporting surface that is configured to come into direct contact with the drive track, and the travel path arrangement encompassing a magnetizable first carrying arrangement extends along the track supporting surface, the permanent magnets and the first carrying arrangement being embodied in such a way that a mutually attractive magnetic force acts between the permanent magnets and the first carrying arrangement as a result of a magnetic interaction between the permanent magnets and the first carrying arrangement.
32. The vehicle system according to claim 31, wherein the magnitude of the magnetic force being greater at least than 50%, preferably 75%, particularly preferably 100%, highly preferably 150% or 250%, of a weight force of a permissible total weight of the tracked vehicle.
33. The vehicle system according to claim 31, wherein the travel path arrangement comprising a travel channel whose course defines, at least in portions, a motion path of the tracked vehicle along the track supporting surface.
34. The vehicle system according to claim 33, wherein the travel channel tapering in its depth direction in a direction toward the travel channel bottom.
35. The vehicle system according to claim 31, wherein the travel path arrangement comprising projections and/or depressions arranged on the track supporting surface, and the drive track comprising depressions and/or projections arranged on a supporting surface contact surface of the drive track, in such a way that upon direct contact between the track supporting surface and the supporting surface contact surface, a positive engagement is constituted which acts substantially parallel to a portion of the circulation path which is associated with the supporting surface contact surface.
36. The vehicle system according to claim 32, wherein: the travel path arrangement encompassing: a stationary travel portion that encompasses a portion of the track supporting surface and a portion of the first carrying arrangement; a transport portion that comprises a further portion of the track supporting surface which is at least temporarily adjacent to the travel portion, and a further portion of the first carrying arrangement, the further portion of the track supporting surface and the further portion of the first carrying arrangement being arranged in stationary fashion with reference to the transport portion, and the transport portion, together with the further portion of the first carrying arrangement and the further portion of the track supporting surface, being arranged movably with reference to the travel portion.
37. The vehicle system according to claim 36, wherein the transport portion, being configured, alone and/or with the tracked vehicle arranged thereon, to be offset translationally and/or rotationally, preferably to be displaced, by means of an offset device.
38. The vehicle system according to claim 36, further encompassing a receiving space, offset and/or offsettable with respect to the travel portion, which is embodied to receive a transport portion or encompasses a transport portion.
39. The vehicle system according to claim 32, wherein the travel path arrangement encompassing a second carrying arrangement that is arranged with an offset with respect to the first carrying arrangement.
40. The vehicle system according to claim 39, wherein the first carrying arrangement being arranged on a first side of the travel path arrangement, and the second carrying arrangement on a second side, located oppositely from the first side, of the travel path arrangement, or the first carrying arrangement and the second carrying arrangement being arranged on one common side of the travel path arrangement.
41. Use of a vehicle system according to claim 32 to transport loads in and/or on a building, the travel path arrangement being arranged on and/or in a building, and the tracked vehicle encompassing an elevator cab and/or a load receiving arrangement.
42. The use according to claim 41, the vehicle system further encompassing a plurality of tracked vehicles that are moved simultaneously along a common motion path leading along the track supporting surface, in particular the motion path being embodied continuously, and preferably a distance along the motion path between two of the tracked vehicles being varied.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0072] The invention may take physical form in certain parts and arrangement of parts, a preferred embodiment of which will be described in detail and illustrated in the accompanying drawings which forms a part hereof and wherein:
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DESCRIPTION OF PREFERRED EMBODIMENTS
[0097] Referring now to the drawings wherein the showings are for the purpose of illustrating preferred and alternative embodiments of the invention only and not for the purpose of limiting the same,
[0098] When “regulation and/or control” processes are referred to in this Application, these can be executed by a regulation apparatus and/or control apparatus that is not shown, for example a microcontroller having a connected power electronics system. The regulating apparatus can be arranged in stationary fashion on load subassembly 26. The wiring of the respective subassemblies and/or elements which is required for regulation and/or control is not shown in order to ensure clarity in the Figures, but can be implemented by one skilled in the art in the context of his or her general technical ability and knowledge.
[0099] Linear motor 32a encompasses a stator 34 that is arranged on the vehicle frame in stationary fashion with respect to housing 28. A rotor 36 of linear motor 32a is constituted by permanent magnets 38 (see
[0100] As depicted in
[0101] One of permanent magnets 38 is arranged in each chain link 40, two chain links 40 that are directly adjacent along circulation path U of the drive chain comprising permanent magnets whose polarization directions are aligned alternatingly in opposite directions, as shown by the indication of the north (N) and south (S) magnetic poles. The polarization direction of the permanent magnets proceeds substantially perpendicularly to circulation path U, and preferably points in the direction from north pole N to south pole S into an internal region I of the drive track or into an external region A of the drive track located outside the drive track. In addition, at least one guidance element 48, preferably two guidance elements 48, on which slide grooves 50 and/or slide tongues 52 (which will be described later and are arranged on the load subassembly) can engage, can be embodied on one of, on a plurality of, or on all of chain links 40. A material of chain link 40 which surrounds permanent magnets 38 can be a metal or another suitable material. Alternatively, the chain link can be constituted from a permanent magnet, in particular a rare-earth permanent magnet.
[0102] Stator 34 of linear motor 32a encompasses stator windings 54a to 54d that are electrically conductively connected to a power converter 56 (embodied as a frequency converter) in order to energize stator windings 54a to 54d. Power converter 56 can be arranged and fastened on load subassembly 26. Upon energization of the stator windings, as is known, an alternating magnetic field is generated by means of which permanent magnets 38 constituting rotor 36 are caused to move. Details regarding this may be gathered by one skilled in the art, for example, from Boldea, I. and Nasar, S. (1997). Linear Electric Actuators and Generators. Cambridge: Cambridge University Press. Doi: 10.1017/CB09780511529641. In particular, the speed of linear motor 32a or 32b can be regulated and/or controlled by way of the frequency and/or phase of the alternating magnetic field generated by stator 34. Stator 34 can be referred to as a “primary” part and rotor 36 as a “secondary” part of linear motor 32a. Power converter 56 can encompass a regulation and/or control apparatus for regulating and/or controlling energization, but that regulation and/or control apparatus can also be embodied separately from power converter 56. It is preferred that stator 32 extend with its stator windings along the entire circulation path U of drive track 30a.
[0103] Power converter 56 is supplied with energy via a current collector 58 which is electrically conductively connected to it for energy delivery and which collects current, for example, via a wiper contact from a busbar or current collector rail 59. Alternatively or additionally, tracked vehicle 20 can encompass an energy reservoir 60 that is electrically connected to the power converter in order to supply it with energy, so that power converter 56 can continue to be supplied with energy even if, for example, current collector 58 is not collecting current from a busbar 59. Energy reservoir 60 can encompass a battery and/or a supercapacitor, or can be embodied thereby individually or in combination.
[0104] As is evident from
[0105] Stator 34 can encompass a plurality of separately and mutually independently controllable stator portions, a stator portion being controlled by the fact that the stator windings arranged in it are or are not individually or collectively energized. The decision as to whether windings in the respective stator portion are or are not energized can depend on the drive force required for driving the drive track. The position of drive track 30a, 30b along its circulation path relative to load subassembly 26 can also be determined using a position detection device of tracked vehicle 20; and in that case only those stator windings which are located in stator portions in whose vicinity a respective permanent magnet 38 is located can be energized. In particular, a permanent magnet 38 is located in the vicinity of a stator portion if, when viewed substantially perpendicularly to the circulation path in a direction from internal space I into external space A, the respective stator portion overlaps, in particular substantially completely overlaps, a permanent magnet 38.
[0106] In order to decide which stator portions are energized, in a first method step the position of drive track 30a, 30b relative to load subassembly 26 can be determined. Because the arrangement of permanent magnets 38 in drive track 30a, 30b is preferably substantially defined, and the arrangement of the stator portions relative to load subassembly 26 is substantially defined, in a second method step it is possible to determine, on the basis of that information, those stator portions in whose vicinity at least one of permanent magnets 38 is located. In a third method step, the stator portions in whose vicinity at least one of permanent magnets 38 is located in accordance with the second method step are energized. These steps can be repeated in a loop in order to drive drive track 30a.
[0107] As will be explained later with reference to the further system, tracked vehicle 20 shown here can contact, with each of strands 62 to 68 that are shown, a track supporting surface or also, in part, a surface being traveled on, and can travel on it. One of deflection strands shown in
[0108] As shown in
[0109] It is also possible for the entire supporting surface contact strand 62 or even the entire drive track 30a to be part of the, or a, neutralization strand. These embodiments permit release of an entire portion of drive track 30a from the track supporting surface, or contact between an entire portion of drive track 30a and the track supporting surface, for example supporting surface contact strand 62, to be implemented in a context of a weakened or neutralized magnetic field of permanent magnets 38 arranged in that portion of drive track 30a; this is advantageous in particular in the context of changes in direction, as will be described below in conjunction with
[0110] Tracked vehicle 20 described above comprises two drive tracks 30a, 30b. In a further embodiment (see
[0111] Tracked vehicle 20" can have a support direction AR pointing toward a surface to be traveled on or toward a travel path arrangement, and pairs 74a", 74b" of drive tracks can be arranged on a side of housing 28" of tracked vehicle 20" which faces away from it in direction AR. In particular, each of pairs 74a", 74b" of drive tracks can be arranged on a retaining platform 78a", 78b" that is rotatable with respect to housing 28" in a plane substantially perpendicular to support direction AR and is associated with the respective pair of working tracks. Because each retaining platform 78a", 78b" is rotatable around a rotation axis parallel to support direction AR, tracked vehicle 20" can align retaining platforms 78a", 78b" with no motion of its housing 28" relative to the surface to be traveled on or relative to a travel path arrangement (see
[0112] Frames 75i, 75ii are connected to the retaining platform 78a" and frames 75iii, 75iiii are connected to the retaining platform 78b". Each of the frames 75i, 75ii is circulated by a respective one of the pair 74a" of drive tracks, each of the frames 75i, 75ii carrying a stator of a linear motor which drives the drive track circulating this frame. A respective motion guide is attached to each of the frames 75i, 75ii guiding the drive track circulating this frame. Further, each of the frames 75iii, 75iiii is respectively circulated by a drive track of the pair 74b" of drive tracks, each of the frames 75iii, 75iiii carrying a stator of a linear motor which drives the drive track circulating this frame. A respective motion guide is attached to each of the frames 75iii, 75iiii guiding the drive track circulating this frame.
[0113] Thus, each drive track of the drive track pairs 74a", 74b" is supported in a circulating manner by a load subassembly 26i, 26ii, 26iii, 26iiii formed by a frame 75i, 75ii, 75iii, 75iiii which load subassembly also supports the stator associated with the respective drive track for magnetic interaction. In the example shown, the load subassemblies of a pair of drive tracks are structurally united forming each a common load subassembly 26a, 26b of each of the respective pair 74a", 74b" of drive tracks, the common load subassembly 26a comprising the frames 75i, 75ii and the retaining platform 78a" and the common load subassembly 26b comprising the frames 75iii, 75iiii and the retaining platform 78b". It is noted that a common load subassembly is an embodiment of a load subassembly.
[0114] As shown in
[0115] Guidance arrangement 80 can comprise in stationary fashion, in particular in locally stationary fashion, slide grooves 50 which are arranged on load subassembly 26 and are embodied, for example, in a U-profile 82 arranged in stationary fashion on load subassembly 26. The two slide grooves 50 are preferably embodied parallel to one another. Alternatively, U-profile 82 can be arranged in only locally stationary fashion on load subassembly and can encompass, as indicated by the dashed lines, segments which are movable relative to one another by way of a motion arrangement 84 and are movable in lifting directions HR. Lifting directions HR proceed substantially perpendicularly to groove extent direction NV and/or substantially perpendicularly to a conforming plane, proceeding parallel to the two slide grooves 50, of drive track 30a. Alternatively or additionally, guidance arrangement 80 can be movable relative to load subassembly 26 in lifting directions HR by means of a lifting apparatus 86. Motion arrangement 84 and/or lifting apparatus 86 can be driven mechanically, hydraulically, electrically, and/or pneumatically. Each of slide grooves 50 forms, together with the associated guidance element 48, a tongue-and-groove connection configured for sliding. A corresponding tongue can of course be arranged on U-profile 82 and a groove on chain link 40 in order to achieve a corresponding effect, this being possible on both sides of chain link 40 and of U-profile 82. In order to prevent chain links 40 from lifting away from load subassembly 26, it is sufficient to provide, instead of the groove, only a slide tongue 52 that is depicted, in the embodiment illustrated in
[0116] As shown in
[0117] This reduces the shear forces and frictional forces acting on drive track 30a, 30b, or its chain links 40, when maneuvering. Lifting strand 88"' can encompass in particular a center portion of supporting surface contact strand 62"', but in an embodiment that is not depicted, the lifting strand can be embodied in one piece or in two parts, and can be arranged at an end of supporting surface contact strand 62"' located downward with reference to a circulation direction UR of drive track 30a, and/or at an end of supporting surface contact strand 62'" located upward with reference to a circulation direction UR of drive track 30a. In a particularly simple embodiment shown in
[0118] As depicted in
[0119] In a particularly preferred embodiment, there exists between stator 34 and rotor 36 of linear motors 32a, 32b, or between the stator and the rotor of each linear motor described here, an air gap that, upon energization of the stator, is held open during operation of tracked vehicle 26 as intended (analogously to a “maglev” process) by the interaction of the magnetic fields of the stator and of the rotor, such that the air gap has a gap dimension that is greater than zero, with no assistance from further support elements such as rollers, plain bearings, or the like, as a result of the dimensioning of the magnetic fields in the rotor and in the stator.
[0120] Tracked vehicle 20 described above not only can move on a travel path arrangement, but can also be used in ordinary road traffic, for instance with energy supplied via energy reservoir 60. The provision of two drive tracks 30a, 30b each driven by a linear motor 32a, 32b makes possible, as is usual with treaded vehicles, a rotation of tracked vehicle 20, around a rotation axis passing through tracked vehicle 20, on a road pavement or on a travel path arrangement. A drive system of this kind also permits a simplified parking motion that encompasses a plurality of zigzag motions.
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[0122] A mutually attractive magnetic force, which is produced by a magnetic interaction between carrying arrangement 23, 25 and permanent magnets 38, exists between the above-described carrying arrangement 23, 25 and permanent magnets 38 that constitute rotor 36 of linear motors 32a, 32b.
[0123] The combination of carrying arrangement 23, 25 and permanent magnets 38 is selected, for example by way of the dimensioning of magnetizable plates 110 and the strength of the magnetic field constituted by permanent magnets 38, in such a way that in a context of operation of tracked vehicle 20 as intended on travel path arrangement 22, the mutually attractive magnetic force exceeds a multiple of, for example ten times, a permissible gross weight of tracked vehicle 20 of, for example, 1.5 tonnes.
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[0125] Conversely, when tracked vehicle 20 equipped with rubber elements 124 on drive track 30a, 30b is operated on a non-magnetizable substrate such as a road, rubber elements 124 then prevent contact between, for example, metallically constituted chain links 40 and that substrate, thereby protecting both the substrate and chain links 40 from wear; in particular, the magnets provided in chain links 40 are protected from wear. Grooves 112, 114 transition into inclined flanks 113, 115 that constitute a tapering of travel channel 24 toward travel channel bottom 108. Preferably one of, a plurality of, or each of projections 116 has a triangular cross-sectional area in a cross section transversely to its principal direction of extent, in which context the triangular cross-sectional area can comprise a right angle. The hypotenuse of a cross-sectional area of this kind can slope downward toward travel channel bottom 108, while a force producing the above-described positive engagement, which acts in a direction substantially parallel to that portion of circulation path U of drive track 30a, 30b which is associated with supporting surface contact surface 122, can act on the surface of projection 116 which forms the short side.
[0126] The alignment of track supporting surface 109 of travel path arrangement 22, which preferably can be constituted by the travel channel bottoms of the pairs of travel channels 24 shown in
[0127] As shown in
[0128] When tracked vehicle 20 then moves along a vertical portion of track supporting surface 109 in portion 126, as shown in
[0129] When tracked vehicle 20 moves in an opposite direction, starting on a horizontally proceeding portion of the track supporting surface of the travel path arrangement, the process of traversing transition region 130 is then similar to the process presented above, except that electromagnets 134 are used to weaken and/or neutralize the magnetic field of the permanent magnets in strands 138.
[0130] If strands 136, 138 are embodied as neutralization strands or encompassed by neutralization strands, the above-described weakening and/or neutralization of the magnetic field embodied by permanent magnets 38 arranged in strands 136, 138 can then be effected by the respective neutralization magnet arrangements, and electromagnets 132, 134 can be omitted.
[0131] A plurality of transition regions can constitute a continuous travel path arrangement. When the latter is traveled on by a tracked vehicle 20, each of its strands 62 to 68 then at least temporarily becomes a supporting surface contact strand.
[0132] As shown in
[0133] First pair 104 of travel channels 24, having the associated portions of track supporting surface 109 and those portions of first carrying arrangement 23 which are arranged in travel channels 24, together with a framework (not shown), are an embodiment of a travel portion 140. Travel portion 140 is directly adjoined by a transport portion 142 that encompasses portions 144 of travel channels 24 which in turn, as described above, constitute portions of the track supporting surface and of first carrying arrangement 23. These portions can of course also be associated with second carrying arrangement 25. In addition, a portion 146 of busbar 59 can be arranged on transport portion 142. Transport portion 142 furthermore preferably encompasses a framework (not shown).
[0134] Transport portion 142 can be embodied as a plate, displaceable mechanically, hydraulically, electrically, and/or pneumatically by means of an offset device 145, having the aforementioned portions 144 and 146.
[0135] In a first idle position of transport portion 142, portions 144 of travel channels 24 are aligned flush with the travel channels of first pair 104 of travel channels 24, and portion 146 of busbar 59 is electrically conductively connected, for example by way of a wiper contact, to that portion of busbar 59 which proceeds between travel channels 24 of first pair 104 of travel channels 24.
[0136] In a second idle position of transport portion 142, portions 144 of travel channels 24 are aligned flush with the travel channels of second pair 106 of travel channels 24, and portion 146 of busbar 59 is electrically conductively connected, for example by way of a wiper contact, to that portion of busbar 59 which proceeds between travel channels 24 of second pair 106 of travel channels 24.
[0137] When tracked vehicle 20 (for example, tracked vehicle 20 a)) moves upward along first pair 104 of travel channels 24, it can travel onto transport portion 142 that is in the first idle position. Transport portion 142 can then be moved translationally from its first idle position into its second idle position. During this motion, energy reservoir 60 can furnish electrical energy for supplying energy to power converter 56. The attractive force between permanent magnets 38 and the carrying arrangement can exist in transport portion 142 even independently of the supply of energy, so that tracked vehicle 20 does not detach from transport portion 142. A relative motion with respect to load subassembly 26 of a drive track 30a, 30b is suppressed for that purpose, preferably using a braking apparatus 147. Once transport portion 142 reaches its second idle position, braking apparatus 146 can be released, and tracked vehicle 20 can continue to move downward along second pair 106 of travel channels 24, as shown e.g. for tracked vehicle 20 c) in
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[0139] It is noteworthy that one of, a plurality of, or all of tracked vehicles 20 a) to c) can travel simultaneously on first pair 104 of travel channels 24 or on second pair 106 of travel channels 24; and because linear motors 32a, 32b are arranged in each of tracked vehicles 20 a) to c), that plurality of tracked vehicles can move simultaneously along the shared motion path, defined by first pair 104 or second pair 106 of travel channels 24, which is embodied continuously along at least first pair 104 of travel channels 24 and second pair 106 of travel channels 24. In contrast to a paternoster lift, however, the distance between the individual tracked vehicles 20 a) to c) is not defined, and the tracked vehicles can travel separately from one another to individual positions along the common motion path, limited only by collision avoidance. In addition, a tracked vehicle 20 that is located on transport portion 142' can be moved into a first receiving space 154, for example for maintenance or for storage, or a tracked vehicle 20 located on a transport portion 142" and received in first receiving space 154 can be moved into the first or second idle position of transport portion 142". If a transport portion is not present at the bottom turning point, a transport portion 142"' can be moved out of a second receiving space 156 into its first or second idle position at the bottom turning point. Transport portions can likewise be moved into second receiving space 156.
[0140] All the transport portions 142, 142', 142", and 142"' are preferably of similar or identical construction, and have respective first and second idle positions that correspond or are identical to those of transport portion 142.
[0141] A second embodiment of vehicle system 1102 shown in
[0142] Travel path arrangement 1022 encompasses a first pair 1158, arranged on a first side of travel path arrangement 1022, of travel channels 1024 proceeding in parallel, and a second pair 1160, arranged on a second side of travel path arrangement 1022, of travel channels 1024 proceeding in parallel, first side of travel path arrangement 1022 being arranged oppositely from second side of travel path arrangement 1022. Travel channels 1024 arranged on one side of the travel path arrangement encompass respective carrying arrangements. Arranged between first pair 1158 and second pair 1160 of travel channels 1024 is a retaining structure (not shown in the interest of clarity), preferably a retaining frame, on which first pair 1158 and second pair 1160 of travel channels 1024 are arranged in stationary fashion with respect to building 1148. First pair 1158 of travel channels 1024 preferably encompasses first carrying arrangement 1023, and second pair 1160 of travel channels 1024 preferably encompasses second carrying arrangement 1025. A busbar 1059 is associated with each pair 1158, 1160, but this is not shown in the Figures in the interest of clarity. Tracked vehicle 1020 comprises drive tracks which, except for a portion facing toward travel channels 1024 during operation as intended, proceed in tracked vehicle 1020 and are thus not visible in the Figures.
[0143] Vehicle system 1102 comprises, at least at the top turning point, a paternoster-lift-shaped motion path of the tracked vehicle, at least at the top turning point shown in
[0144] The rotation axis RA extends parallel to the motion path for the tracked vehicle defined by the travel path arrangement 1022, which motion path is defined in particular by the, preferably perpendicular, extension of the travel channels 1024, wherein the tracked vehicle contacts the travel path arrangement 1022 in the travel channels 1024 during travel.
[0145] Transport portion 1162 is directly adjacent to first pair 1158 and second pair 1160 of travel channels 1024, which are each embodiments of travel portions. Transport portion 1162 is preferably embodied as a plate, which is not explicitly depicted in
[0146] It is further possible also to consider each individual side of the transport portion 1162 together with the respective portions of travel channels 1024 and portions of the respective carrying arrangement 1023, 1025, each arranged on that side, as a single transport portion.
[0147] In a first idle position of transport portion 1162, first pair 1164 of portions of travel channels 1024 which proceed in parallel is aligned flush with the travel channels of first pair 1158 of travel channels 1024, and second pair 1166 of portions of travel channels 1024 which proceed in parallel is aligned flush with the travel channels of second pair 1160 of travel channels 1024. In a second idle position of transport portion 1162, first pair 1164 of portions of travel channels 1024 which proceed in parallel is aligned flush with the travel channels of second pair 1160 of travel channels 1024, and second pair 1166 of portions of travel channels 1024 which proceed in parallel is aligned flush with the travel channels of first pair 1158 of travel channels 1024.
[0148] In each of the first and the second idle position of transport portion 1162, this arrangement allows a tracked vehicle 1020 to travel from one pair from among first pair 1158 or second pair 1160 of travel channels 1024 onto the respective pair 1164, 1166 of portions of travel channels 1024 of transport portion 1162 which proceed in parallel. When transport portion 1162 is rotated from the first into its second idle position, tracked vehicle 1020 can thus leave transport portion 1162 and continue moving along the other pair from among first pair 1158 or second pair 1160 of travel channels.
[0149] As is evident from
[0150] The ring of turret arrangement 1172 can be rotated around a rotation axis RRA so that the individual transport portions 1168, preferably fastened thereon in stationary fashion, become displaced upon said rotation. Turret arrangement 1172 is preferably rotated around rotation axis RRA between defined positions in which a transport portion 1168 is aligned so that portions of travel channels 1024 which are arranged on it are aligned flush with travel channels 1024 of second pair 1160 of travel channels 1024.
[0151] The rotation axis RRA preferably extends parallel to the motion path for the tracked vehicle defined by the extension of the travel channels 1024, as explained above, and thus in particular parallel to the rotation axis RA. The rotation axis RRA or/and the rotation axis RA preferably extend perpendicularly.
[0152] A tracked vehicle 1020 can correspondingly travel via pair 1160 of travel channels onto one of transport portions 1168. A tracked vehicle 1020 can likewise travel from transport portion 1168 aligned with pair 1160 of travel channels onto pair 1160 of travel channels. Turret arrangement 1172 can be rotated between the defined positions. Tracked vehicles 1020 can thereby be parked in turret arrangement 1172, or parked tracked vehicles can be brought out from the turret arrangement onto travel path arrangement 1022. The individual transport portions 1168 each constitute offset receiving spaces.
[0153] Analogously to transport portion 140' of vehicle system 102, instead of turret arrangement 1172 (or on any floor of building 148 above the turret arrangement) a rotatable transport portion can be provided which performs the function of transport portion 1162 but at a bottom turning point of the paternoster lift-shaped motion path of the tracked vehicles.
[0154] In the exemplifying embodiment described here, travel path arrangement 1022 proceeds vertically and can be traveled on from two oppositely arranged sides. In general, travel path arrangements that can be traveled on from two oppositely arranged sides, i.e. “back to back,” can be aligned in any way, in particular horizontally.
[0155] A further embodiment of vehicle system 2102 shown in
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[0157] It is also possible, as shown in
[0158]
[0159] Each of the tracked vehicles 3020a, 3020b includes a first arrangement 3204a, 3204b including a first load subassembly 3205a, 3205b, a first drive track 3209a, 3209b, and a first linear motor, and a second arrangement 3206a, 3206b including a second load subassembly 3207a, 3207b, a second drive track 3213a, 3213b, and a second linear motor. The respective load subassemblies 3205a, 3205b, 3207a, 3207b are preferably attached to the load receiving space, in this case a cab, of the respective tracked vehicle 3020a, 3020b. The linear motors are not explicitly shown in
[0160] The first 3205a, 3205b or/and second 3207a, 3207b load subassemblies can each comprise an associated first 3217a, 3217b or second frame 3219a, 3219b, respectively, wherein the first load subassembly 3205a, 3205b can be formed by the first frame 3217a, 3217b or/and wherein the second load subassembly 3207a, 3207b can be formed by the second frame 3219a, 3219b. Preferably, the first 3205a, 3205b or/and second 3207a, 3207b load subassembly, or the frame forming this load subassembly, is bolted or/and welded or/and riveted or/and glued to the cab of the respective tracked vehicle 3020a, 3020b. On the first frame is 3217a, 3217b a stator of the first linear motor is arranged stationary with respect to the first frame 3217a, 3217b using screws or/and rivets or/and welds or/and an adhesive or/and on the second frame 3219a, 3219b a stator of the second linear motor is arranged stationary with respect to the second frame 3219a, 3219b using screws or/and rivets or/and welds or/and an adhesive.
[0161] The travel path arrangement 3022 is arranged in particular partially on a wall portion 3208 of the wall 3200, which travel path arrangement is arranged rotatably about a rotation axis RA2. The rotation axis RA2 extends preferably perpendicularly.
[0162] The portion of the travel path arrangement 3022 extending on the wall portion 3208 includes a first portion 3210 of its carrying arrangement and a first portion 3211 of its track supporting surface. The first portion 3210 of the carrying arrangement and the first portion 3211 of the track supporting surface are each disposed on a first side 3212 of the wall portion 3208, and thus each disposed on a first side of the travel path arrangement. The portion of the travel path arrangement 3022 extending on the wall portion 3208 further includes a second portion 3214 of its support assembly and a second portion 3215 of its track supporting surface. The second portion 3214 of the support assembly and the second portion 3215 of the track supporting surface are each disposed on a second side 3216 of the wall portion 3208 opposite the first side 3212, and thus each disposed on a second side of the travel path arrangement 3022 opposite the first side.
[0163] The wall portion 3208 with the above-described portions of the travel path arrangement 3022 arranged thereon at the first side 3212 form a first transport portion 3023a of the travel path arrangement, and the wall portion 3208 with the above-described portions of the travel path arrangement 3022 arranged thereon at the second side 3216 form a second transport portion 3023b of the travel path arrangement.
[0164] The rotation axis RA2 extends preferably perpendicular to the drawing plane, and thus parallel to the motion path of the tracked vehicle 3020a located in the elevator shaft 3202.
[0165] The transport portion 3023a is in an idle position and a transfer position, in which the tracked vehicle 3020a can drive onto this transport portion 3023a and can also leave it. Provided that the tracked vehicle 3020a remains in this position, the wall portion 3208 can be rotated about the rotation axis RA2, and with it the transport portions 3023a, 3023b can be rotationally displaced in such a way that the transport portion 3023a is transferred from a transfer position to a parked position and the transport portion 3023b is transferred from a parked position to a transfer position. Provided that no further tracked vehicle 3020b is arranged at the transport portion 3023b, the elevator shaft becomes free after this displacement and the position previously occupied by the tracked vehicle 3020a can be occupied by a further tracked vehicle, which is for example moving perpendicular to the drawing plane and which is not shown.
[0166] In
[0167] The wall portion 3208 described herein can form a transition of the vehicle system 3102 to the building surrounding the elevator shaft 3202, but can also form a transition from the elevator shaft 3202 to an approach position of a tracked vehicle at which a tracked vehicle can enter the vehicle shaft from the outside. At this entry, the tracked vehicle can drive onto the transport portion 3023b and can then enter the elevator shaft 3202 by rotation of the wall portion 3208 by 180° about the rotation axis RA2.
[0168] In particular, the wall portion 3208 described herein can provide a transition to the building 148 described in connection with
[0169] The wall portion 3208 is separated from the remaining portion of the wall 3200 by gaps, of which gaps 3221l, 3221r are shown in
[0170] With regard to the travel path arrangement, its parts, the interaction of the parts of the first or second arrangement, in particular for providing a drive as well as the adhesion on magnetizable surfaces or on travel path arrangements, reference is made to the description of the preceding embodiments, the features of which can also be used in the embodiment of
[0171] While considerable emphasis has been placed on the preferred embodiments of the invention illustrated and described herein, it will be appreciated that other embodiments, and equivalences thereof, can be made and that many changes can be made in the preferred embodiments without departing from the principles of the invention. Furthermore, the embodiments described above can be combined to form yet other embodiments of the invention of this application. Accordingly, it is to be distinctly understood that the foregoing descriptive matter is to be interpreted merely as illustrative of the invention and not as a limitation.