The invention relates to an advancing assembly for underground powered shield supports, comprising at least one floor skid for supporting the powered shield support, comprising an advancing beam for pushing a winning installation and/or for drawing up the powered shield support (advancing movement) and comprising a substantially perpendicularly arranged lift cylinder for lifting the floor skid relative to the advancing beam during an advancing movement, wherein the lift cylinder has a cylinder foot supported above the advancing beam and a cylinder head buttressed on a bridge and hydraulically displaceable relative to the cylinder foot. The invention also relates to a powered shield support comprising a shield canopy, a guide bar mechanism, hydraulic legs, a gob shield and a corresponding advancing assembly.
Powered shield support assemblies are used in underground mining in order to keep open the “longwall”, in which the winning apparatuses which mine the material at a working face are arranged, during the continuous operation. In order to independently push forward a winning installation, the individual powered shield support assemblies are equipped with an advancing assembly which comprises an advancing beam, usually provided with a double-acting hydraulic pushing cylinder, in order to optionally push forward the winning installation when the powered shield support is set, i.e. is fastened between footwall and roof, or draw up a released powered shield support, i.e. while the powered shield support is not fastened between roof and footwall. In underground mining, this operation is as a rule designated as an advancing movement of a powered shield support and is effected by means of the advancing assembly with which a powered shield support is provided. For advancing assemblies of the type in question, it has been known for a long time to use a floor-skid lift cylinder (base lift cylinder) with which the floor skid can be lifted during the advancing movement. This is necessary, for example, if the floor skid has dug into soft ground (footwall) and the floor skid has to be prevented from digging deeper into the ground during an advancing movement. The lifting is effected by virtue of the fact that the base lift cylinder rests with its cylinder foot on the advancing beam and lifts the floor skid relative to the advancing beam, which remains resting on the floor or footwall (cf. DE 196 33 847 C1 or DE 203 07 907 U1).
An object of the invention is to improve a powered shield support and in particular the advancing assembly of a powered shield support.
According to the invention, it is proposed for this purpose that the lift cylinder consist of a double lift cylinder having a first cylinder stage, comprising the cylinder head, and a second cylinder stage, wherein a compression spring is arranged between the cylinder stages. The requisite construction space for the withdrawal cylinder can be considerably reduced, at the same stroke length, by the use, according to the invention, of a double lift cylinder as floor-skid lift cylinder or base lift cylinder, as a result of which powered support assemblies for small thicknesses can be provided, with which powered support assemblies the same maximum setting loads can be achieved. The compression spring at the same time ensures reliable positioning and fastening of the two cylinder stages, even if the pressure cylinder is depressurized, since the spring force of the compression spring preloads the first cylinder stage in the extension direction and to this extent keeps it fastened between the upper and lower abutment points on the powered shield support. At the same time, the compression spring additionally dampens the external forces acting on the double lift cylinder.
In an especially preferred configuration, the compression spring is supported radially over its entire length. The radial support over the entire length of the compression spring can be achieved in particular owing to the fact that, according to an especially advantageous configuration, the cylinder head is formed on a piston rod which is formed with a cavity for accommodating a spring end of the compression spring in a radially supported manner to the outside, and/or owing to the fact that the second cylinder stage is provided with a cylinder sleeve which is movable parallel to a cylinder axis and has a supporting tube arranged concentrically to the cylinder axis for radially supporting the compression spring on the inside. Furthermore, in order to achieve a minimum fitting height, it is expedient if the supporting tube has an axial length which is approximately the same as or slightly less than the axial depth of the cavity. To this end, the outside diameter of the supporting tube and the inside diameter of the cavity are adapted with clearance to the radial dimensions of the compression spring.
In the especially preferred configuration, the cylinder sleeve of the second cylinder stage is arranged in an axially displaceable manner in a cylinder housing, the base of which forms the cylinder foot. According to an advantageous configuration, the cylinder foot bears against a holding pot which is fastened to a transverse spar which is guided with play on longitudinal guides which are formed on the inner sides, facing one another, of the floor skid, e.g. on a frame structure. The transverse spar can have end pins which engage as guide pieces in the longitudinal guides. The holding pot can also be fastened with play to the transverse spar by being fastened by means of screw bolts having a free shank length. The holding pot preferably has a base plate, the underside of which runs at an angle to the cylinder axis, in order to obtain optimum support even when the cylinder axis of the lift cylinder does not run perpendicularly to the floor or the underside of the floor skid, but rather runs at a small angle of inclination of about 1° to 5°.
In order to simplify the activation of the double lift cylinder, the double lift cylinder can preferably be activated solely via connections which are arranged on the cylinder head or which are arranged on a valve housing fastened to the cylinder head. As a result, all the hydraulic hoses can be connected to the cylinder head. The piston space and annular space of the double lift cylinder are then hydraulically supplied solely via the cylinder head, via the cavity of the piston rod and by passages in the piston rod wall. Furthermore, at least one non-return valve and/or a pressure relief valve can be arranged in the cylinder head.
These and other objects, aspects, features, developments and advantages of the invention of this application will become apparent to those skilled in the art upon a reading of the Detailed Description of Embodiments set forth below taken together with the drawings which will be described in the next section.
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 form a part hereof and wherein:
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 same, shown overall by reference numeral 1 in
Reference will now be made to
The double lift cylinder 10 is shown in different extension positions in
The piston rod 14 is guided inside the cylinder sleeve 36 via a guide collar 45 at the lower end of the piston rod 14 and via a guide collar 46 on the inner circumference of the cylinder sleeve 36. The two guide collars 45, 46 are also provided with locating grooves for sealing rings or sealing collars. The guide collars 45, 46 at the same time ensure that the individual annular spaces 35, 38 can be subjected to flow via the axial passages 37 and 39, respectively. The guide collars 45, 46 are in each case detachably fastened to the piston rod 14 and the cylinder sleeve 36, respectively. The cylinder sleeve 36 is guided inside the cylinder housing 19 via a lower, wider guide section 36A, which is integrally formed on the cylinder sleeve 36 and on which further locating grooves for seals are formed, and via a third, detachable guide collar 47 which is fastened, in particular fixedly screwed, to the inner circumference of the cylinder housing 19. The guide collar 47, too, has locating grooves for sliding seals on its inner side. Since the mechanical construction of a double lift cylinder with guide collars is known from the prior art, further description is not given here.
An overflow valve or pressure relief valve, for example, can be arranged in the third connection 32 of the cylinder head 13 in order to allow hydraulic fluid to flow off from the piston space between the first and the second cylinder stages and the cylinder housing or else from the respective annular spaces in the event of an overload. The arrangement of all the piston connections 30, 31 and 32 in the cylinder head simplifies the running of hoses.
For the person skilled in the art, numerous modifications which are to come within the scope of protection of the attached claims emerge from the above description. Depending on the requisite stroke length and the requisite lifting pressure, the piston spaces and the annular spaces can have different area relationships.
Further, 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.
Number | Date | Country | Kind |
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20 2009 011 083.4 | Sep 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB2010/054340 | 9/27/2010 | WO | 00 | 3/28/2012 |