METHOD FOR INSTALLING AN ELEVATOR SYSTEM
20210316959 · 2021-10-14
Inventors
Cpc classification
International classification
Abstract
A method for installing an elevator system in an elevator shaft of a building in its construction phase uses a machine platform displaceable in the shaft along car guide rails and having a drive machine for moving a suspended elevator car to adapt a usable lifting height of the elevator car to an increasing height of the building by lifting the machine platform to a higher level. The method includes lowering a pre-assembled elevator unit into the shaft by a lifting device, using guide devices that are either mounted on the elevator unit and cooperate with stationarily fixed alignment elements in the shaft, or are fixed in the shaft and cooperate with alignment elements on the elevator unit, to align the unit in a position suitable for fitting guide shoes on the elevator unit and the car guide rails into one another.
Claims
1-13. (canceled)
14. A method for installing an elevator system in an elevator shaft of a building in its construction phase, the elevator system including an elevator car guided along the elevator shaft on car guide rails and a machine platform having a drive machine, the machine platform being displaceable along the elevator shaft on the car guide rails and adapted to be temporarily fixed in the elevator shaft, wherein the elevator car is suspended from the machine platform via suspension means and is moved in the elevator shaft by the drive machine, wherein a usable lifting height of the elevator car is adapted from time to time to an increasing height of the building by lifting the machine platform to a higher level in the elevator shaft, the method comprising the steps of: lowering a pre-assembled elevator unit by a lifting device into the elevator shaft having the car guide rails; using guide devices cooperating with alignment elements to align the elevator unit when lowered into the elevator shaft in a position for fitting guide shoes of the elevator unit and associated ones of the car guide rails into one another, wherein either the guide devices are mounted on the elevator unit and the alignment elements are fixed in the elevator shaft, or the guide devices are fixed in the elevator shaft and the alignment elements are mounted on the elevator unit; supporting the elevator unit, at an end of the lowering, in a region of the elevator shaft equipped with the car guide rails in the position for fitting the guide shoes and the associated car guide rails into one another; and bringing at least one of the guide shoes into engagement with the associated car guide rail and fastening the at least one guide shoe to the elevator unit.
15. The method according to claim 14 including after lowering the elevator unit into the elevator shaft, dismantling at least part of the guide devices and reusing the at least part of the guide devices in an installation of another elevator system.
16. The method according to claim 14 wherein each of the guide devices includes a first guide element and a second guide element that are arranged to cooperate, during the lowering of the elevator unit, with the associated alignment element to align the elevator unit.
17. The method according to claim 14 wherein at least one of the alignment elements is rod-shaped having two parallel side faces and an end face perpendicular to the side faces.
18. The method according to claim 14 wherein at least one of the alignment elements is one of the car guide rails fixed to an elevator shaft wall of the elevator shaft.
19. The method according to claim 14 wherein at least one of the alignment elements is an alignment rail mounted on the elevator unit and cooperating with one of the guide devices fixed in the elevator shaft.
20. The method according to claim 14 wherein each of the guide devices includes a first guide element and a second guide element that are arranged to cooperate, during the lowering of the elevator unit, with an associated one of the alignment elements to align the elevator unit in the elevator shaft, the first and second guide elements being arranged symmetrically with respect to a vertical plane of symmetry to form a V-shaped guide channel that, during the lowering of the elevator unit, cooperates with the associated alignment element and, in a region of a narrowest point between the first and second guide elements, the guide channel has a distance corresponding to a horizontal width of the associated alignment element.
21. The method according to claim 20 wherein at least one of the alignment elements is rod-shaped having two parallel side faces and an end face perpendicular to the side faces and the first and second guide elements of the guide device associated with the at least one alignment element have rectangular guide surfaces arranged with respect to the side faces and the end face of the associated alignment element whereby the guide surface of the first guide element faces parallel to a first one of the side faces and the guide surface of the second guide element faces parallel to a second one of the side faces and the guide surfaces at least partially cover the side faces, wherein horizontal center lines of the rectangular guide surfaces are perpendicular to the end face and rising center lines of the guide surfaces are arranged pivoted by a predetermined guide angle in opposite pivoting directions with respect to the side faces, wherein the guide surfaces are arranged symmetrically with respect to a plane of symmetry lying between the side faces, and wherein a smallest distance between the guide surfaces corresponds to a distance between the side faces of the associated alignment element.
22. The method according to claim 21 wherein the first and second guide elements are arranged such that the guide angles between the rising center lines of the guide surfaces and the side faces of the associated alignment element are between 10 degrees and 70 degrees.
23. The method according to claim 21 wherein the first and second guide elements are arranged such that the guide angles between the rising center lines of the guide surfaces and the side faces of the associated alignment element are between 20 degrees and 60 degrees.
24. The method according to claim 21 wherein the first and second guide elements are arranged such that the guide angles between the rising center lines of the guide surfaces and the side faces of the associated alignment element are between 30 degrees and 50 degrees.
25. The method according to claim 21 wherein when the guide devices are attached to the elevator unit, the associated guide device is arranged such that the V-shaped guide channel opens downwards.
26. The method according to claim 21 wherein when the guide devices are fixed in the elevator shaft, the associated guide device is arranged such that the V-shaped guide channel opens upwards.
27. The method according to claim 21 wherein the associated guide device includes a third guide element having a third guide surface arranged perpendicular to the side faces of the at least one alignment element and pivoted by another predetermined guide angle with respect to the end face of the at least one alignment element.
28. The method according to claim 14 wherein the elevator unit is one of: the machine platform; the elevator car; and a lifting platform temporarily fixed in the elevator shaft and used as a support structure for lifting the machine platform as the construction phase progresses.
Description
DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0051]
[0052] Furthermore, the elevator unit 1 comprises a counterweight 8 guided on counterweight guide rails which are not shown here. The elevator car 10.2 and the counterweight 8 are suspended from the machine platform 10.1 via an arrangement of suspension means 15, with the suspension means 15 being guided over a traction sheave 12 of the elevator drive machine 11 in such a manner that the elevator car 10.2 and the counterweight 8 can be driven in opposite directions by the elevator drive machine 11 via the suspension means 15. Preferably, wire ropes, synthetic fiber ropes or belt-like traction means reinforced with wire ropes or synthetic fiber ropes are used as suspension means. As can be seen from
[0053] The elevator system 1 is designed in such a manner that the usable lifting height of the elevator car 10.2 can be adapted to the increasing height of the building or elevator shaft 2 during the construction phase in that, on the one hand, the machine platform 10.1 is lifted by at least one floor height in the elevator shaft 2 by means of a construction crane 25 or another lifting device and is fixed at a new position—preferably at the level of a floor sill 27 of the building—and in that, on the other hand, an extension of the vertical suspension means portions 15.1-15.5 of the arrangement of suspension means 15 is carried out depending on the increase of the usable lifting height. The suspension means supply required for such an extension of the mentioned vertical sections of the suspension means is preferably kept ready in the rope storage device 23 and is fed into the arrangement of suspension means 15 in the respective required quantity when the machine platform is lifted for the purpose of increasing the usable lifting height. In order to carry out the extension of the suspension means, the counterweight 8 is preferably moved to its lower travel limit before the machine platform 10.1 is lifted, and then the elevator car 10.2 is coupled to the machine platform so that the suspension means are largely unloaded. The clamping of the suspension means clamping device 20 is now released, whereupon the machine platform 10.1 is lifted to its intended new position with the aid of the construction crane. While the machine platform and the elevator car 10.2 suspended therefrom are being lifted, the required quantity of suspension means is fed from the rope storage devices 23 via the deflection pulleys 21 and the opened suspension means clamping device 20 into the arrangement of suspension means 15. After the machine platform 10.1 has been fixed at its new level in the elevator shaft 2, the suspension means 15 are blocked again in the suspension means clamping device 20, and the coupling between the elevator car 10.2 and the machine platform 10.1 is released. The elevator system 1 is now substantially ready for elevator operation with an increased usable lifting height. The described procedure for increasing the usable lifting height of the elevator car can be repeated until the building or elevator shaft 2 has reached a final height. Preferably, the machine platform 10.1 is then definitely fixed in the elevator shaft as the final machine room floor of the elevator system 1.
[0054] In order to be able to raise the machine platform 10.1 along the elevator shaft 2 and then lock it again in the elevator shaft, the machine platform is equipped with retractable or extendable support elements 30. The machine platform 10.1 is preferably locked in place by extending the support elements 30 after the machine platform has been lifted so that they can be supported in recesses 50 in an elevator shaft wall 2.2 or in the region of a shaft door opening 28 on the floor sill 27.
[0055] To protect the assembly personnel as well as components of the elevator system from falling objects, the machine platform 10.1 is provided with a protective roof 32.
[0056] Both the machine platform 10.1 and the elevator car 10.2 are guided in vertically displaceable manner by means of upper and lower guide shoes 35.1, 35.2 on the car guide rails 6 provided in the final elevator system for guiding the elevator car 10.2.
[0057] As mentioned above, the elevator system 1 comprises a group of elevator units 10 guided by means of guide shoes 35.1, 35.2 on car guide rails 6, which group includes the vertically displaceable machine platform 10.1, the elevator car 10.2 and a lifting platform 10.3 used for lifting the machine platform (shown in
[0058]
[0059] The machine platform 10.1, which was pre-assembled outside the elevator shaft 2, is shown in
[0060] As already mentioned, during lowering of the elevator unit 10 formed here by the machine platform 10.1 into the elevator shaft 2, two guide devices 45 are attached to the lower ends of the two guide shoe carriers 41 of the machine platform 10.1 instead of lower guide shoes 35.2. When the machine platform is lowered into the elevator shaft, these guide devices 45 cooperate with associated alignment elements 5 stationarily fixed in the elevator shaft—here with the car guide rails 6 serving as alignment elements 5—in such a manner that the at least one elevator unit 10 which is suspended on the rope of the lifting device 25 and is formed by the machine platform 10.1 is aligned in a position in which the upper and lower guide shoes 35.1, 35.2 of the elevator unit and the respective associated car guide rails 6 can be fitted into one another after the machine platform 10.1 has been supported in the elevator shaft 2 in the correct horizontal position. After the machine platform has been supported, the guide devices 45 are first dismantled. Subsequently, the guide shoes 35.1, 35.2 and the respective associated car guide rails 6 are fitted into one another, whereupon the guide shoes are fastened to the guide shoe carriers 41 of the elevator unit 10 formed by the machine platform 10.1.
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[0062] In the case of a guide device 45 mounted on an elevator unit positioned in the elevator shaft 2—in
[0063] Moreover, it can be seen in
[0064] The above description of the guide device and the alignment element cooperating with the guide device is also applicable to the guide devices and alignment elements described in connection with the other Figs. In this context, the guide devices can be attached to the at least one elevator unit or to elevator shaft walls in such a manner that the V-shaped guide channels of the guide devices open downwards or upwards. The alignment elements can be designed as car guide rails or as alignment rails attached to the elevator unit.
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[0066] The embodiment according to
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[0070] In the embodiment of the method described in
[0071] The machine platform 10.1 forming the at least one elevator unit 10, which was pre-assembled outside the elevator shaft 2, is shown in
[0072] Before the elevator unit 10, formed here by the machine platform 10.1, is lowered into the elevator shaft 2, in each case one vertically oriented alignment element 5 formed by an alignment rail 7 is mounted on two opposite sides of the machine platform on the outside of the support frame 40, and in each case one guide device 45 aligned with in each case one of the alignment elements 5 is fixed to each of two elevator shaft walls 2.2 parallel to the mentioned sides of the machine platform 10.1. In doing so, the guide devices are mounted at a height at which it is ensured that, when the elevator unit is lowered into the elevator shaft, the lower ends of the alignment rails 7 forming the alignment elements 5 are already aligned by the guide elements 47.1, 47.2, 47.3 of the guide devices 45 before the lower ends of the guide shoe carriers 41 have reached the upper ends of the already installed car guide rails 6. The elevator unit can then be lowered further without the car guide rails already fixed to the elevator shaft walls colliding with the guide shoe supports 41 or with supports provided thereon for fixing the guide shoes. During further lowering of the elevator unit 10 formed by the machine platform 10.1, the guide devices 45 fixed stationarily in the elevator shaft 2 cooperate with the respective associated alignment elements 5 mounted on the elevator unit 10 in such a manner that the at least one elevator unit suspended from the rope of the hoisting device 25 remains in the aligned position. After the machine platform 10.1 forming the elevator unit 10 here has been supported in the elevator shaft 2 in the correct horizontal position shown in
[0073]
[0074] The guide devices 45 and the alignment rails 7 are positioned relative to one another in the vertical direction in such a manner that during the lowering of the machine platform 10.1 into the elevator shaft 2, the lower ends of the alignment rails are already aligned and guided by the guide devices before the lower guide shoes 35.2 of the machine platform have reached the currently upper ends of the car guide rails 6. Upon further lowering of the machine platform 10.1, which has been aligned by the cooperation of the guide devices 45 with the alignment rails 7, the lower guide shoes 35.2 of the machine platform first engage with the car guide rails 6—which are preferably slightly chamfered at their upper ends. Upon further lowering of the aligned machine platform 10.1, the upper guide shoes 35.1 also come into engagement with the car guide rails 6. In order to ensure that the upper ends of the car guide rails 6 can be inserted into the upper guide shoes 35.1 of the machine platform 10.1 even if the machine platform is not exactly in a horizontal position, auxiliary guide devices 48 can be arranged on the guide shoe supports 41 of the machine platform 10.1 below the mentioned upper guide shoes 35.1. Such auxiliary guide devices 48, which are difficult to dismantle in the arrangement shown, are preferably made of plastics or hardwood or are formed by welded parts integrated into the guide shoe supports 41. After both the lower and upper guide shoes 35.2, 35.1 of the elevator unit 10 formed here by the machine platform 10.1 have engaged with the car guide rails 6, the elevator unit can be lowered to their intended position and supported in the elevator shaft.
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[0077] The advantage of this embodiment is that for the lifting of the machine platform 10.1 to be carried out from time to time, no construction crane with a lifting force sufficient for lifting the machine platform needs to be available. For the lifting of the substantially lighter lifting platform 10.3 required before each lifting of the machine platform 10.1, a light lifting device (not shown in
[0078] Of course, before each lifting of the lifting platform 10.3, the light lifting device and the associated supporting element must also be placed correspondingly further up in the elevator shaft. If no construction crane is available for lifting the light lifting device at the given time of lifting the lifting platform, both the carrying element and the light lifting device can be transported to a higher level via the stairwell, for example.
[0079] The lifting platform 10.3 described above, which can be lifted in the elevator shaft 2, is also guided on the car guide rails 6 by guide shoes 35 mounted on the lifting platform. After the insertion of the elevator car 10.2, the counterweight 8 and the machine platform 10.1 into the elevator shaft 2 has been carried out in the first phase of the installation method proposed here, the lifting platform 10.3 in the embodiment described here is also inserted into the elevator shaft 2 in the pre-assembled state by means of a construction crane, lowered to an intended level in the elevator shaft and supported there via support elements 30 in the elevator shaft. In order to bring the guide shoes 35 of the lifting platform 10.3 forming a further elevator unit into engagement with the car guide rails 6 with minimal effort and risk of accident, the mentioned lifting platform 10.3 is also aligned in the elevator shaft during the lowering by the cooperation of guide devices and corresponding alignment elements. The different variants of the alignment process and the guide devices and alignment elements used for this purpose are the same as described above in connection with
[0080] At least the guide devices 45 attached to the elevator shaft walls 2.2 or to the elevator units 10—but preferably also the alignment rails 7 serving as alignment elements 5 and fixed to the elevator units 10—are each dismantled after the elevator units have been lowered into the elevator shaft and the guide shoes 35.1, 35.2 of the elevator units have been brought into engagement with the car guide rails 6. The dismantled elements are reused when lowering further elevator units in the same building or when lowering elevator units in other elevator systems.
[0081] Advantageously, at least the guide elements 47.1-47.3 of the guide devices 45 are made of an impact-absorbing and/or friction-reducing material, or at least the guide surfaces 47.1.1-47.3.1 of the guide elements 47.1-47.3 are coated with such a material. In this manner it is achieved that during the lowering of the at least one elevator unit 10 into the elevator shaft 2 and the alignment process taking place in the course of this, the alignment effect is improved and the alignment elements 5, which cooperate with the guide devices 45 and are formed by car guide rails 6 or alignment rails 7, are not damaged.
[0082] In accordance with the provisions of the patent statutes, the present invention has been described in what is considered to represent its preferred embodiment. However, it should be noted that the invention can be practiced otherwise than as specifically illustrated and described without departing from its spirit or scope.
TABLE-US-00001 Reference list 1 Elevator system 2 Elevator shaft 2.1 Elevator shaft pit 2.2 Elevator shaft wall 5 Alignment element 6 Car guide rail 6.1, 6.2 Side face of car guide rail 6.3 End face of car guide rail 7 Alignment rail 7.1, 7.2 Side face of alignment rail 7.3 End face of alignment rail 8 Counterweight 10 Elevator unit 10.1 Machine platform 10.2 Elevator car 10.3 Lifting platform 11 Elevator drive machine 12 Traction sheave 15 Suspension means 15.1-15.5 Suspension means portions 16 Rope fixing point 17 Car support pulley 18 Diverter pulley 19 Counterweight support pulley 20 Suspension means clamping device 21 Deflection pulley 22 Recess (in shaft wall) 23 Rope storage device 25 Construction crane 27 Floor sill 28 Shaft door opening 30 Support element 32 Protective roof 35 Guide shoe 35.1 Upper guide shoe 35.2 Lower guide shoe 40 Support frame 41 Guide shoe carrier 45 Guide device 45.1 Guide channel 46 Base plate 47.1 First guide element 47.2 Second guide element 47.3 Third guide element 47.1.1 First guide surface 47.2.1 Second guide surface 47.3.1 Third guide surface 48 Auxiliary guide device 50 Recess (in elevator shaft wall) 60 Lifting device