1. Field of the Invention
The present invention relates to an elevator, and more particularly to a double screw elevator.
2. Description of the Prior Art
Nowadays, elevators have become indispensable to our daily life, and most of the conventional elevators are driven by steel rope. However, the steel rope elevators require frequent and regular maintenance, otherwise, the steel rope may break, causing injury or death.
Another screw type elevator 10, for example the one disclosed in TW Pt 543649, as shown in
The present invention has arisen to mitigate and/or obviate the afore-described disadvantages.
The primary object of the present invention is to provide a simply structure double screw elevator which is easy to manufacture and can improve rate of utilization.
To achieve the above object, a double screw elevator in accordance with the present invention comprises: a double screw driving unit, a limit rail, a carrying unit, an elevator car, a suspension unit and an assembling device.
The double screw driving unit includes a driving shaft assembly connected to a rotation power source, the driving shaft assembly is provided on an outer surface thereof with a first helical thread and a second helical thread in such a manner that the first helical thread of the first screw and the second helical thread of the second screw extend in opposite helical directions, the rotation power source is connected to the driving shaft assembly for driving the driving shaft assembly to rotate.
The limit rail is disposed in parallel to the driving shaft assembly.
The carrying unit includes a nut fixed to one side of a carrying seat, the nut is screwed with the first thread of the first screw, while one side of the carrying is slidably received in the limit rail, and the limit rail restricting a freedom of rotation of the carrying unit.
The elevator car is detachably disposed on the carrying seat of the carrying unit.
The suspension unit includes a nut fixed to one side of a suspension rack, the nut of the suspension unit is screwed with the second thread of the second screw, and one side of the suspension rack is slidably received in the limit rail, and the limit rail restricts a freedom of rotation of the suspension unit. The assembling device is used to combine the elevator car and the suspension rack together. The double screw elevator in accordance with the present invention is simply structured, easy to assemble, and the length of a single screw of the elevator is shortened, making it easier to manufacture the screw. Furthermore, the screw driving elevator reduces the occurrence of accident whiling improving the rate of utilization.
The present invention will be clearer from the following description when viewed together with the accompanying drawings, which show, for purpose of illustrations only, the preferred embodiment in accordance with the present invention.
Referring to
The double screw driving unit 20 includes a driving shaft assembly connected to a rotation power source 21. The driving shaft assembly includes a first screw 22, a second screw 23 and a connecting rod 24 which are connected to one another. The first screw 22 and the second screw 23 are formed on their outer surfaces with a first helical thread 221 and a second helical thread 231, respectively, in such a manner that the first helical thread 221 of the first screw 22 and the second helical thread 231 of the second screw 23 extend in opposite helical directions. The connecting rod 24 is located between the first and second screws 22, 23 to connect the two screws together. The rotation power source 21 is connected to one end of the driving shaft assembly, and in this embodiment, the rotation power source 21 is connected to one end of the first screw 22, so that it can drive the driving shaft assembly to rotate.
The limit rail 30 is disposed in parallel to the driving shaft assembly of the double screw driving unit 20.
The carrying unit 40 includes a nut 41 and a carrying seat 42. The nut 41 is screwed with the first helical thread 221 of the first screw 22, while the carrying seat 42 is fixed to the nut 41 and located between the driving shaft assembly of the double screw driving unit 20 and the limit rail 30. A limit member 421 is disposed at one side of the carrying seat 42 facing the limit rail 30 and slidably received in the limit rail 30, and the limit member 421 in this embodiment is a roller.
The elevator car 50 includes a receiving space 51 and is disposed on the carrying seat 42 of the carrying unit 40.
The suspension unit 60 includes a nut 61 and a suspension rack 62. The nut 61 is screwed with the second helical thread 231 of the second screw 23, and the suspension rack 62 is fixed on the nut 61 and located between the driving shaft assembly of the double screw driving unit 20 and the limit rail 30. A limit member 621 is disposed at one side of the suspension rack 62 facing the limit rail 30 and slidably received in the limit rail 30, and the limit member 621 in this embodiment is a roller.
The assembling device 70 includes an upper assembling member 71, a lower assembling member 72 and a power source assembly. The upper assembling member 71 is assembled to the suspension rack 62, and the lower assembling member 72 is assembled to the elevator car 50. The power source assembly includes a power source 73 and an assembling portion 74. The power source 73 includes a retractable central shaft 731 with one end to be connected to the assembling portion 74. The assembling portion 74 includes a first shaft 741 and a second shaft 742. The upper assembling member 71 and the lower assembling member 72 are disposed in an upper and lower positional relation, the upper assembling member 71 is formed with a first inserting hole 711 for insertion of the first shaft 741, while the lower assembling member 72 is formed with a second inserting hole 721 for insertion of the second shaft 742. The power source 73 employs the central shaft 731 to drive the assembling portion 74, making the first shaft 741 and the second shaft 742 insert into the first and second inserting holes 711, 721, respectively, and thus the elevator car 50 is connected to the suspension rack 62.
For a better understanding of the present invention, reference should be made to
Referring then to
If the rotation power source 21 is controlled to produced a reverse rotation power, and the first and second screws 22, 23 are driven to rotate in a reverse direction, the carrying unit 40 and the suspension unit 60 will be moved away from each other, namely, the carrying unit 40 will moves toward the bottom of lower end of the first screw 22, and the suspension unit 60 moves toward the top of the second screw 23. Since the elevator car 50 has been fixed to the suspension unit 60 by the assembling device 70, the suspension unit 60 can drive the elevator car 50 to move upward, and thus the elevator car 50 is lifted.
Referring then to
It is understood from the above description that the driving shaft assembly of the double screw elevator in accordance with the present invention consists of two screws whose helical threads extend in opposite helical directions, and each of the screws is provided with a nut, so that the suspension unit 60 and the carrying unit 40 on the nuts can be driven to move close to or away from each other, thus achieving the function of lifting or lowering the elevator car. The double screw elevator in accordance with the present invention is simply structured, easy to assemble, and the length of a single screw of the elevator is shortened, making it easier to manufacture the screw. Furthermore, the screw driving elevator reduces the occurrence of accident whiling improving the rate of utilization.
While we have shown and described various embodiments in accordance with the present invention, it is clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.