The invention relates to a magnetic levitation railway of the species mentioned in the preamble of claim 1.
The on-board energy of usual magnetic levitation vehicles is usually generated in a contactless manner by the aid of linear generators which are integrated into the magnet poles of at least one magnet arrangement destined for carrying and/or guiding the magnetic levitation vehicle and which, for example, co-act with a long stator (e.g. DE 34 10 119 A1). The transmission of energy depends on the speed of the magnetic levitation vehicle which is the reason why prior art devices cover the full energy demand of the magnetic levitation vehicle, necessary e.g. for the functions “carrying”, “guiding”, and “braking”, only from speeds of approximately 100 km/h on. Therefore, additional energy sources are required where the speed of a magnetic levitation vehicle is less or zero (e.g. in railway stations). This includes powerful batteries carried along in the magnetic levitation vehicle on the one hand and external means on the other hand, e.g. contact rails laid along slow speed sections of the track, to which contact rails current collectors mounted on the magnetic levitation vehicle are assigned to. The latter might make it necessary to stop the magnetic levitation vehicle in case of operating failures only where such an external power supply is available. Moreover, the financial expenditure on such devices is comparably substantial. Finally, these devices require constant maintenance due to discharging procedures in the batteries or due to mechanical wear and tear, so that they do not work with adequate safety. A failsafe onboard energy supply is therefore not ensured even if several redundant onboard networks are provided for in the magnetic levitation vehicle.
A particular interference with the energy supply as described above is caused by the buffer batteries. In terms of their volume, weight, cost and maintenance expenditure they entail substantial drawbacks that have an adverse effect on economic efficiency in particular.
Besides, it is generally known for traffic systems to provide a contactless transmission of energy from the guideway to a vehicle by the aid of conductor loops which are mounted to the guideway, to which high-frequent alternating voltages are applied and to which a pick-up loop mounted on the vehicle is assigned serving for coupling out the energy. A safe supply of energy by these means alone has not been possible up to now.
Therefore, the technical problem underlying the present invention is to provide a magnetic levitation railway with a largely failsafe energy (power) supply unit which in particular makes it possible to operate without hitherto unavoidable buffer batteries in the vehicles and even without additional linear generators or the like, if required.
The characteristic features outlined in claim 1 serve to solve this problem.
The invention proceeds from the idea of providing the device for contactless power transmission with electronically working means instead of linear generators or even in addition to the latter, which means ensure an adequate transmission of energy from the guideway to the vehicle in those track sections where the demand for onboard energy cannot be covered or not completely be covered through linear generators or other means. These means are not only effective at slow speeds and even during a standstill of the magnetic levitation vehicles, but they are also redundant, which is the reason why one can completely dispense with alternative measures, e.g. buffer batteries in the vehicles, power rails along the guideway or the like. The desired redundancy can in principle be rated at any optional level without thereby substantially increasing the volume, weight, cost and maintenance expenditure in the vehicle.
Other advantageous features of the present invention become evident from the subclaims.
The invention is explained in greater detail as set forth below by means of an embodiment and based on the drawings enclosed hereto, wherein:
For a proper guidance of the magnetic levitation vehicle 1 on the track, the guideway plates 3 are provided with laterally affixed guide rails 8, which are faced by guiding magnets 9 also mounted to the vehicle 1 and serving for maintaining a gap corresponding to gap 7 between itself and the guiding rail 8 during operation of the vehicle.
According to
The magnet arrangement 9 comprises e.g. twelve magnet poles 11 arranged one behind the other, whose windings 12 and cores 14 electrically connected in series as schematically indicated in
Magnetic levitation vehicles 1 and their magnet arrangements are generally known to an expert, e.g. through printed publications U.S. Pat. No. 4,698,895, DE 39 28 277 C1, PCT WO 97/30504 A1, and ZEVrail Glasers Annalen, special edition Transrapid October 2003, pages 34 to 87 which for the sake of simplicity are made a part of the present disclosure by reference.
A power supply unit schematically shown in
Generating on-board energy by the aid of linear generators 17 works only in those track sections where the speed of the magnetic levitation vehicle 1 achieves a certain minimum value. In other track sections, the energy is therefore generated by the aid of contact rails laid at the track and to which mechanical or mechanical-pneumatic current collectors are assigned to.
Since contact rails and mechanical current collectors are not always desired because of their propensity to wear and tear, particularly at high speeds, the invention provides for effecting the transmission of energy from the guideway 2, 3 to the magnetic levitation vehicle 1 additionally through means shown in
For example, according to
Instead of the power collector, a receiver or pick-up coil 27 is mounted at the magnetic levitation vehicle 1. It is preferably so configured that it does not encompass the primary conductor 24, but stands opposite to it at a small distance. Thereby it is possible to accommodate the receiver coil 27 in the magnet back box 15 within a covering 28 which covers box 15 and consists of an electrically isolating material.
According to a particularly preferred embodiment example, the holders 25 are of such a hinged configuration that the primary conductor 24 is mounted in such a manner that it can be folded to the top or to the bottom at support 2 and can be swung off section-wise. It can be avoided thereby that the primary conductor 24 must be fully dismantled during a work to which it poses an obstacle.
Each receiver coil 27a, 27b illustrated by a thick line in
The receiver coils 27, 27a, and 27b are preferably manufactured as a pre-fabricated modular group together with the necessary contact elements, e.g. plug connectors, and so mounted at the magnet back box 15 or the covering 28 that they form integral parts of the autonomous module formed by magnet arrangement 9.
The invention is not limited to the described embodiment that can be diversified in a plurality of ways. In particular this applies to the number of receiver coils 27 totally existing per magnetic levitation vehicle and to the number of primary conductors 24 existing at the guideway and connected to a separate high-frequency voltage source 26, each. It is considered expedient to install the voltage sources 26, in the usual known substructures 40 which are mounted in spaced relationship along the guideway 2, 3, and which for example accommodate the inverters 42 and the like needed to feed the long-stator windings. Simple lead-acid storage batteries 44, referred to interchangeably herein as buffer batteries are connected and/or connectable to the primary conductors 24, and are expediently arranged in the same substructures 40 to serve as buffer batteries in case of emergency or the like. DC/AC converters 46 covert the direct current (DC) from the buffer batteries 44 to alternating current (AC) to supply the high frequency voltage source 26 in each substructure 40. Moreover, for the sake of redundancy, it is particularly advantageous to provide two or more separated onboard networks 16, 16a and/or 16b in each magnetic levitation vehicle that are connected to at least one separate receiver coil 27 each as is intended to be indicatively shown by way of further blocks 30e, 30f and 30g in
Parts 24, 27 in
A further increase in redundancy is obtained, if the receiver coils 27a, 27b shown in
The redundancy with regard to the receiver coils 27 can still be increased substantially with usual magnetic levitation vehicles, because they usually are provided with a plurality of magnet arrangements 9, which all can be provided with receiver coils 27 in the manner described above. Thereby it can be ensured that buffer batteries for the onboard network 16 become superflous and can simply be omitted. An emergency power supply, if required, could then be assured by simple lead storage batteries arranged on the guideway side.
Besides, the primary conductors 24 expediently extend over the entire length of the guideway. In this case, the magnetic levitation vehicles can be stopped in any area of the guideway, regardless of the function of the linear generators. It follows therefrom that it would be possible to entirely dispense with the vehicle batteries as well as with the linear generators or the like, provided the design is correct and redundancy of the energy supply according to this invention is sufficient, thus reducing the expenditure on installation required in the vehicles substantially as corresponds to the an embodiment of the invention currently considered to be the best one.
The invention is not limited to the described embodiment that can be diversified in a plurality of ways. In particular this applies to the number of receiver coils 27 totally existing per magnetic levitation vehicle and to the number of primary conductors 24 existing at the guideway and connected to a separate high-frequency voltage source each. It is considered expedient to install the voltage sources in the usual substructures which are mounted in spaced relationship along the guideway and which for example accommodate the inverters and the like needed to feed the long-stator windings. Simple lead-acid storage batteries connected and/or connectable to the primary conductors 24 are expediently arranged in the same substructures to serve as buffer batteries in case of emergency or the like. Moreover, for the sake of redundancy, it is particularly advantageous to provide two or more separated onboard networks 16, 16a and/or 16b in each magnetic levitation vehicle that are connected to at least one separate receiver coil 27 each as is intended to be indicatively shown by way of further blocks 30e, 30f and 30g in
Number | Date | Country | Kind |
---|---|---|---|
10 2004 013 996 | Mar 2004 | DE | national |
10 2004 018 308 | Apr 2004 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/DE2005/000457 | 3/12/2005 | WO | 00 | 10/3/2008 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2005/091476 | 9/29/2005 | WO | A |
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3863574 | Thomas | Feb 1975 | A |
4636667 | Holzinger et al. | Jan 1987 | A |
4698895 | Miller et al. | Oct 1987 | A |
5467718 | Shibata et al. | Nov 1995 | A |
5904101 | Kuznetsov | May 1999 | A |
6397990 | Brien et al. | Jun 2002 | B1 |
6629358 | Setiabudi et al. | Oct 2003 | B2 |
6651566 | Stephan et al. | Nov 2003 | B2 |
Number | Date | Country |
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1 190 618 | Jul 1985 | CA |
2 306 292 | Aug 1974 | DE |
32 37 373 | May 1983 | DE |
34 10 119 | Oct 1985 | DE |
39 28 277 | Dec 1990 | DE |
9730504 | Aug 1997 | WO |
Entry |
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Gert Schwindt: “Die Systemtechnik Des . . . ” In Zevrail Glasers Annalen—Sonderheft Transrapid, 2003, pp. 34-67 (With English Abstract). |
Karsten Blank et al: “Antrieb Und Energieversorgungs Des . . . ” In Zevrail Glasers Annalen—Sonderheft Transrapid, 2003, pp. 70-87 (With English Abstract). |
Number | Date | Country | |
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20090205531 A1 | Aug 2009 | US |