The present invention relates to a crane, in particular a tower crane, with a crane jib from which a load hook can be raised and lowered via a hoisting cable, and with an electric power supply to the load hook and/or to a trolley that may be provided and that is movable along the crane jib.
For certain hoisting operations, it is necessary or at least helpful to have an electric power supply available on the load rigging or load hook such as electrical hoist magnets which allow magnetic hoisting operations, or to have other attachment devices, for example with electrical servomotors on the load hook. If the crane has a trolley on the jib, as is the case, for example, on tower cranes, it is also sometimes necessary or helpful to have a power connection on the trolley, either to forward the power from the trolley to the load hook via a spring cable reel, or to supply other consumers on the trolley with power, such as spotlights or other electrical devices.
It has already been suggested to provide the trolley and/or the load hook with a power connection by means of transporting electrical energy with trailing cables, first to the trolley and then via spring cable reels down to the load hook. However, such an installation of trailing cables and spring cable reels on the jib is very bulky and suitable only for stationary cranes where space requirements and easy assembly do not play a major role. In the case of fast-erecting cranes or so-called taxi cranes—which are often assembled on a day-to-day basis or even several times a day, and which are seldom assembled and disassembled on a weekly basis—it is of great importance that they can be easily collapsed and folded for road transport and that there are no weight problems for the jig. With such fast-erecting and fast-response cranes, the above described electrical supply solutions for electrical devices on the trolley or on the load hook are not satisfactory.
It is therefore the object of the present invention to provide an improved crane of the kind described above, which does not have the disadvantages of the state of the art and develops the crane advantageously. In particular, the invention is to achieve a simple and efficient way to provide electrical energy to the load hook and/or the trolley of the crane without compromising the ease of installation and without requiring excessive space for bulky components on the jib.
According to the invention, the said object is achieved by means of a crane according to Claim 1. Preferred embodiments of the invention are the object of the sub-claims.
It is therefore suggested to integrate the power supply in a running cable of the crane leading to the movable component where the power connection is needed, and to use the running cable simultaneously for power transmission, in addition to its actual purpose. Due to this double function of the running cable, bulky components can be eliminated, and installation can be made easier. According to the invention, the electric power supply to the load hook and/or to the trolley is provided partly by a running cable which transmits tractive forces as required for the crane operation. The cable is designed as an electric traction cable which can simultaneously transmit tractive forces and conduct electric power.
In a further development of the invention, where the crane has a trolley movable along the jib, a trolley cable that moves the trolley can be electrically conductive to supply a power connection provided on the trolley. Advantageously, especially an inner trolley rope, which connects the trolley with an inner jib end usually linked to the tower, or with a deflection pulley, can be electrically conductive as indicated above or designed as an electric traction cable, such that the power connection or current collector on the trolley can be supplied with electric power via the inner trolley cable with which the trolley can be pulled or moved to the inner end of the jib.
Alternatively or additionally, an outer trolley cable that connects the trolley with an outer projecting jib end can always be designed as an electric traction cable as well, to provide the trolley with electricity. In an advantageous further development of the invention, the outer trolley cable can be designed as a conventional traction cable instead of an electric traction cable, in which case the outer trolley cable can be thinner and lighter than an electric traction cable, which has the advantage that the outer jib half, which is critical for the moment load, would be lighter.
Advantageously, the power input into the electrically conductive trolley cable can be in the region of the trolley cable winch. The trolley cable can be connected to the trolley winch with power input means which preferably can comprise a slip ring transmitter. Advantageously, the trolley cable can be connected to the trolley winch and connected by its at least one electric conductor to a power connection that rotates with the winch which can be supplied via the said slip ring transmitter.
To conduct the electric power from the trolley to the load hook, an electric cable can be provided between the trolley and the load hook or a power connector attached to the load hook, and this cable can by means of a spring cable reel either follow or equalize the changes in distance caused by the raising and lowering of the load hook. In an advantageous further development of the invention, the said spring cable reel is not provided on the trolley, but on the load hook or on an attachment connected thereto. This eliminates the need for space required by the relatively bulky spring cable reel in the trolley region, which is especially important for fast-erecting cranes which do not have much room to spare in the collapsible transport mode. Furthermore, the spring cable reel can simply be taken off and used only in cases when it is really needed.
Advantageously, a plug-in connection, for example in the form of a socket or plug, to connect the electric cable leading to the load hook, can be provided on the trolley.
Alternatively or additionally, a power connection provided or required in the area of the load hook can also be supplied with electricity directly via the hoisting cable leading to the load hook. In a continued development of the invention, the hoisting cable can also be electrically conductive or designed as an electric traction cable comprising at least one electrical conductor.
A power supply to the load hook directly via the hoisting cable is of advantage in particular when the jib of the crane from which the load can be raised or lowered, is an adjustable jib, for example in the form of a luffing jib that can be luffed up and down and/or a telescoping jib and/or in connection with a single-cable reeving system and/or a multi-cable reeving system in which a hoisting cable is attached to the load hook and/or with an attachment connected thereto.
If the hoisting cable is designed as an electric traction cable, electricity can be advantageously supplied in the region of the hoisting cable winch. In the region of the hoisting cable winch, the hoisting cable can be connected with power input means which may comprise a slip ring transmitter. In that respect, the power input can also be transferred to the trolley cable as explained above.
Below, the invention is described in detail with reference to preferred embodiments and to the associated drawings, where
As
The jib 3 can be braced by a bracing 6 whereby the bracing 6 can be of adjustable design to luff the jib 3 up and down, as shown in
In particular, crane 1 can be designed as a fast-erecting crane whose tower 2 can be telescoped and whose jib 3 can be collapsed or telescoped such that the tower and the jib can be folded into a transport mode for road transport.
As
Advantageously the inner trolley cable 8i can be electrically conductive or designed as an electric fraction cable to conduct the electrical current to a power connection 11 on trolley 7. Power can be supplied to the trolley cable 8 on the trolley winch 9, whereby the power can be supplied by means of suitable power input means on the pulley winch, for example in the form of a slip ring transmitter.
Advantageously an appropriate electrical installation with residual current circuit breaker 12 is provided and connected to the trolley cable 8, for example in the region of the power input means on the trolley winch 9.
To conduct the electric current trolley 7 to a power connection or electrical device on load hook 13, an electric cable 14 can be provided between trolley 7 and load hook 13, whereby that cable's end on the trolley side can, for example, be connected to the trolley cable with power connection 11, for example via an appropriate plug/socket connection or other detachable power connection means.
To be able to follow or equalize the lowering and raising motions of load hook 13, a spring cable reel 16 can be provided on load hook 13 or advantageously to an attachment 15 connected thereto; see
As shown in
Advantageously, the power input into hoisting cable 18 can be on the hoisting cable winch 19, whereby—as described for the trolley winch—the power input means can, for example, be provided with a slip ring transmitter. Corresponding electrical installations can be provided with a residual current circuit breaker 12.
As shown in
As shown in
Number | Date | Country | Kind |
---|---|---|---|
10 2013 006 108.3 | Apr 2013 | DE | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2014/000734 | 3/18/2014 | WO | 00 |