This application is a national phase entry under 35 U.S.C. ยง 371 of International Patent Application PCT/CN2015/099315, filed Dec. 29, 2015, designating the United States of America and published as International Patent Publication WO 2017/088252 A1 on Jun. 1, 2017, which claims the benefit under Article 8 of the Patent Cooperation Treaty to Chinese Patent Application Serial No. 201510847654.2, filed Nov. 27, 2015.
This application relates to a rail-free hydraulic lifting platform and lifting method, which are applicable in the interior of spiral staircases.
Spiral staircases are commonly referred to helical or screw type staircases. Spiral staircases are favored widely due to their streamlined and attractive appearance, elegance, outstanding decorative effect, small footprint, and are applied more and more in large-size public buildings such as museums and stores, as well as homes with space restrictions.
As technology develops, the application of elevators brought great convenience to people's lives and has become a trend in buildings in the social architecture nowadays. Elevators play an important role in vertical transport of persons and equipment. Owing to the structural characteristics of spiral staircase, an elevator shaft cannot be installed for a spiral staircase in the same way as ordinary elevators, and usually it is unable to arrange an elevator motor room on the roof of building. Therefore, an ordinary traction elevator cannot meet the requirements. In order to meet the requirements for sight-seeing, comfortability, and convenient vertical transport of persons and articles, it is an urgent task to design a lifting platform that is applicable to a spiral staircase environment.
In order to overcome the drawbacks in the prior art, the apparatus disclosed herein provides a rail-free hydraulic lifting platform that is simple and compact in structure, safe and reliable, and can be used conveniently for vertical transport of persons and articles. In addition, the present application further provides a lifting method for a platform applicable in a spiral staircase, which is simple, easy to operate, and convenient to run and manage.
The disclosed apparatus employs the following technical solution:
Preferably, the eccentric load counterweight comprises counterweight blocks mounted on a frame, wheels are arranged on the bottom of the frame, and the wheels are laid on the supporting guide frame.
As a further improved solution of this disclosure, guardrails are provided at the landings where the lifting platform is to be docked, so as to ensure that the persons can get on and off the lifting platform safely.
As a further improved solution of the disclosed apparatus, in order to prevent the plungers of the hydraulic cylinders from being exposed to the outside, thus degrading both the aesthetics and safety, telescoping sleeve protection covers are arranged between the bottom of the lifting platform and a foundation, with the bottom part of the telescoping sleeve protection covers fixed to the foundation, and the top part of the telescoping sleeve protection covers connected to the bottom of the lifting platform.
Furthermore, in order to strengthen the stability of the parallel hydraulic cylinders, a triangular reinforcement frame is fitted over the three parallel hydraulic cylinders, and the top surface of the triangular reinforcement frame is fixedly connected to the bottom surface of the lower truss.
This disclosure further provides a lifting method of the rail-free hydraulic lifting platform, including the following steps:
The rail-free hydraulic lifting platform provided in this disclosure is disposed in a spiral staircase; in such a case, three parallel hydraulic cylinders are driven by a hydraulic pump station to move synchronously so that the lifting platform is lifted up and down; when the lifting platform reaches to a predetermined floor, the footstep assembly on the bottom of the lifting platform is pushed out by the upper electric push rod, and then the footsteps are lifted up by the footstep lifting mechanism in the footstep assembly so that they are flush with the lifting platform; next, the outward-swinging door between the lifting platform and the floor is opened to form footstep guardrails; after the actions of the footstep assembly and the outward-swinging door are completed, the annular door is opened, and the persons can move in or out safely now; the eccentric load adjusting device may be started to eliminate an eccentric load resulted from outward-extension of the footsteps from the hydraulic lifting platform or non-uniform distribution of the persons on the platform, so that the center of gravity is balanced and the eccentric load of the platform is eliminated. Compared to the prior art, the platform and method provided in this disclosure solve the problem of eccentric load resulted from outward-extension of the footsteps from the hydraulic lifting platform or non-uniform distribution of persons and cargo on the lifting platform; thus, the hydraulic lifting platform can operate more stably and reliably. The entire system is simple in structure, can be arranged in a spiral staircase, and is safe and reliable; the lifting method is simple to implement, easy to operate and maintain, convenient for transport of persons at certain scenarios and widely applicable.
In the figures: hydraulic pump station 1; parallel hydraulic cylinders 2; guardrails 3; telescoping sleeve protection covers 4; lifting platform 5; triangular fixing frame 6; handrails 5-1; bearing platform 5-2; annular door 5-3; outward-swinging door 5-4; upper truss 5-5; platform transition device 5-6; intermediate truss 5-7; lower truss 5-8; eccentric load adjusting device 5-9; vertical support plate 5-10; upper supporting guide frame 5-11; upper electric push rod 5-12; footstep assembly 5-13; servo motor 5-14; rotating platform 5-15; lower supporting guide frame 5-16; lower electric push rod 5-17; circular guide rail 5-19; roller 5-20; counterweight block 5-21; counterweighted frame 5-22; and counterweighted wheels 5-23.
Hereunder, this disclosure will be further detailed, with reference to the accompanying drawings:
As shown in
As shown in
As shown in
As shown in
Preferably, the eccentric load counterweight comprises counterweight blocks 5-21 mounted on a counterweighted frame 5-22, counterweighted wheels 5-23 are arranged on the bottom of the counterweighted frame 5-22, and the counterweighted wheels 5-23 are laid on the supporting guide frame 5-16.
As a further improved solution of this disclosure, guardrails 3 are provided at the landings where the lifting platform 5 is to be docked.
As a further improved solution of this disclosure, telescoping sleeve protection covers 4 are arranged between the bottom of the lifting platform 5 and a foundation, the bottom part of the telescoping sleeve protection covers 4 is fixed to the foundation, and the top part of the telescoping sleeve protection covers 4 is connected to the bottom of the lifting platform 5.
Furthermore, as shown in
The lifting method of the rail-free hydraulic lifting platform is as follows:
(1) In the rail-free hydraulic lifting platform according to the disclosure, the three parallel hydraulic cylinders 2 are driven by the hydraulic pump station 1 to move synchronously, the relative positions of the three parallel hydraulic cylinders are fixed by means of the triangular fixing frame 6; thus, the stability is strengthened, and the lifting platform 5 can be lifted up smoothly and steadily; the guardrails 3 ensure that the persons can move in or out safely, the bottom part of the telescoping sleeve protection covers 4 is fixed to the foundation, the top part of the telescoping sleeve protection covers 4 is connected to the bottom of the lifting platform 5 and extends or retracts as the lifting platform 5 is lifted up or lowered down, in order to prevent the plungers of the hydraulic cylinders from being exposed to the outside to degrade the aesthetics and safety.
(2) When the lifting platform 5 reaches to a predetermined floor, the footstep assembly 5-13 on the bottom of the lifting platform 5 is pushed out by the upper electric push rod 5-12, and then the footsteps are lifted up by means of the lifting mechanism in the footstep assembly 5-13 so that the footsteps are flush with the surface of the bearing platform 5-2, and, at that moment, the outward-swinging door 5-4 between the lifting platform 5 and the floor is opened to form guardrails.
(3) After the actions of the footstep assembly 5-13 and the outward-swinging door 5-4 are completed, the annular door 5-3 is opened, and the persons can walk upstairs from the lifting platform 5 via the footstep assembly 5-13; a non-uniform distribution of the persons on the bearing platform 5-2 may cause the center of gravity of the system to deviate from the center of the bearing platform 5-2; when a pressure sensor arranged on the lifting platform 5 detects deviation of the center of gravity, the eccentric load is eliminated by means of the eccentric load adjusting device 5-9. The servo motor 5-14 is started to drive the rotating platform 5-15 to rotate, so that the rotating platform 5-15 drives the lower supporting guide frame 5-16 connected to it to rotate, the rollers 5-20 on the bottom of the lower supporting guide frame 5-16 roll along the circular guide rail 5-19 fixedly connected to the lower truss 5-8, and the lower supporting guide frame 5-16 rotates around the center of rotation to an angle corresponding to a direction opposite to the deviation position of the center of gravity.
(4) The eccentric load counterweight is driven by the lower electric push rod 5-17 to move, so that the counterweight blocks 5-21 are driven by the counterweighted wheels 5-23 to move in the extending/retracting direction of the lower electric push rod 5-17, and thereby the center of gravity is balanced and the eccentric load of the bearing platform 5-2 is eliminated.
Number | Date | Country | Kind |
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2015 1 0847654 | Nov 2015 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2015/099315 | 12/29/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2017/088252 | 6/1/2017 | WO | A |
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Entry |
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PCT International Search Report, PCT/CN2015/099315, dated Sep. 1, 2016, with English Translation. |
PCT International Written Opinion, PCT/CN2015/099315, dated Sep. 1, 2016. |
Number | Date | Country | |
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20180170716 A1 | Jun 2018 | US |