1. Field Of The Invention
The present invention relates to an apparatus for guiding cooling air into a hoisting machine.
2. Brief Description Of The Related Art
Due to the ever greater required performance of hoisting machines, growing demands are made with respect to cooling the electrical devices located in the rope carriers, such as drives or generators. Solutions have already been suggested, such as a hollow axle for feeding cooling air, on which axle the rope carrier is mounted, as well as guiding in and out of cooling air via the sides of the rope carriers by air hoods or stationary flow rings on the axle of the hoisting machine.
With performance of hoisting machines increasing all the time, the so far existing measures reach their limits economically and technically. Thus, in the case of a hollow axle, the inside diameter through which cooling air can flow is limited by excessive production costs among other things. In the case of stationary flow rings on the axle of the hoisting machine e.g. the bearings of the rope carrier disposed on the flow rings will necessarily have an ever increasing diameter in order to make an increased flow cross-section possible. This increase of the bearing diameter disadvantageously results in a cost increase of the bearings, and, in the case of a failure, to a prolonged reacquisition time of a replacement bearing. Further, when the performance of the hoisting machine increases and the flow cross-section of the hitherto existing solutions is limited, it can become necessary to additionally cool and/or climatize the fed cooling air, which causes further costs with regard to assembly and operation, and greater space requirements of the installation.
It is consequently the object of the invention to provide an improved cooling-air guidance for hoisting machines, in order to counteract the above-mentioned disadvantages in hoisting machines with increased performance. This is achieved by an apparatus for guiding cooling air according to the features of the independent claim 1.
According to the invention, the rope carrier or the drum is air-cooled with forced ventilation, wherein the air is fed into and/or withdrawn from the rope carrier or the drum by means of an apparatus for guiding cooling air and one or a plurality of ventilators or blowers. This apparatus comprises at least one first air duct rotating along with the rope carrier and at least one second air duct that is static with reference to the rope carrier. The two air ducts are configured in mutually communicating fashion for air exchange or for guiding an air flow.
In order to cool the interior of the rope carrier as good as possible, it is desirable that the air blown into the interior of the rope carrier by ventilators or blowers on the one side of the rope carrier via the two air ducts is extracted or withdrawn by suction on the other side of the rope carrier via two further ones of the air ducts, utilizing at least one further ventilator or blower. For cost reasons, an one-sided air feed or extraction by means of the invention is likewise conceivable; in this case, the cooling air would flow in or out without support on one of the sides of the rope carrier.
According to the invention, the first and second air ducts can be configured in the form of rings running within each other. These are concentric rings, the diameter of which is chosen such that one ring fits into the other ring with a narrow gap on the outsides. Either of the first air duct and the second air duct can have the larger outside diameter. To improve the efficiency and/or reduce the loss of the air flow, all suitable seals can be used, such as by geometric configuration of the air ducts (e.g. labyrinth seals) or also by a seal attached to or inserted between the rings and in this case guided on one of the rings or several seals, as well as combinations of different types of seals. Further, preferably the rotating ring can be formed of a Z profile or a double-L profile, such that a chamber is created at the rope carrier, the chamber representing an additional volume for compensating pressure variations of the cooling air.
For the purpose of guiding the cooling air in and out, ventilation openings are provided in the lateral drum plates or side shields and in the side plates of the rope carriers surrounding the elements to be cooled. These ventilation openings can be covered by the first air duct, such that a permeable connection is established between the first air duct, the side shield and the interior of the rope carrier. Consequently, cooling air fed into the second (static) air duct can flow or be blown through this second air duct into the rotating first air duct, reaching the interior of the rope carrier and thus the elements to be cooled from there. Via ventilation openings in the opposite or second side shield the cooling air can thus flow out of or be withdrawn by suction from the rope carrier again. When it is intended to withdraw the cooling air in likewise guided fashion from the rope carrier, the cooling air enters a further, rotating-along air duct from the rope carrier through ventilation openings in the opposite or second side shield, flowing from said air duct into a further air duct associated with the rope carrier. The heated cooling air can then be guided away from this static air duct, possibly through the intermediary of a blower or ventilator.
The cooling air can be fed into the stationary air ducts via any type of inlet that is adapted to the ambient conditions. These can be air channels, tubes, pipes, etc. Also ventilators and/or blowers installed directly in the direct surroundings of the air ducts are conceivable.
Further characteristics and advantages of the invention may be taken from the following, purely descriptive and in no way limiting description of various embodiments of the invention with reference to the attached drawings. In particular, the characteristics of the various embodiments can also mutually be combined. In the attached drawings there is shown respectively:
The subsequent description addresses embodiments of the invention which describe details of the region X more exactly. The characteristics stated in the description for
Through the Z shape or double-L shape of the first air duct 30 a compensation space 60 is created between the first air duct 30 and the side plate 20. This compensation space 60 helps compensate pressure variations of the cooling air that is fed via the second air duct 25.
It is applicable to the above said that all structures which are described as ventilating or for blowing the cooling air into the rope carrier 15 can likewise be provided in mirror-image fashion on the other side of the rope carrier 15, in order to withdraw the heated cooling air from the rope carrier 15 again by suction. Further, in mutually independent fashion, a different embodiment of the invention can be used both on the feed side and on the extraction side. Moreover, it is possible to either blow in cooling air or withdraw the heated air by suction only on one side of the rope carrier 15 by means of one of the embodiments. For this purpose, it is only required to provide ventilation openings so that air can flow in or out. The features of the different embodiments can also be combined with each other independently.
Further, it is conceivable to configure the ventilation openings 10 geometrically such that, through the rotation of the rope carrier 15, they help feed the air to or extract the air from the interior of the rope carrier e.g. by structures like on a bucket wheel or turbine wheel.
Moreover, both the compensation space 60 and the seal 45 are characteristics which are not necessarily required for any of the embodiments.
Number | Date | Country | Kind |
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10 2013 001 949.4 | Feb 2013 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/050820 | 1/16/2014 | WO | 00 |