LANDING LEVER ASSEMBLY OF A PNEUMATIC VACUUM ELEVATOR AND METHOD TO OPERATE THE SAME
20230137945 · 2023-05-04
Inventors
Cpc classification
B66B9/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A landing lever assembly of a pneumatic vacuum elevator is disclosed. The assembly includes a landing lever plate coupled on a roof of an elevator cabin. The assembly also includes a locking plate coupled to the landing lever plate using a plurality of support plates. The assembly further includes a solenoid valve disposed on the landing lever plate and mechanically coupled to the locking plate using a guide pin, where the guide pin is configured to actuate the locking plate by sliding within the solenoid valve, in at least one operational mode, based on an activation signal received from a magnetic sensor.
Claims
1. A landing lever assembly of a pneumatic vacuum elevator comprising: a landing lever plate coupled on a roof of an elevator cabin; a locking plate coupled to the landing lever plate using a plurality of support plates; and a solenoid valve disposed on the landing lever plate and mechanically coupled to the locking plate using a guide pin, wherein the guide pin is configured to actuate the locking plate by sliding within the solenoid valve, in at least one operational mode, based on an activation signal received from a magnetic sensor.
2. The assembly as claimed in claim 1, wherein the locking plate is rested on a guide rail in an elevator cylinder assembly via a cut-out.
3. The assembly as claimed in claim 1, wherein the magnetic sensor is coupled to the guide pin, wherein the magnetic sensor is placed on the elevator cylinder assembly at each landing position.
4. The assembly as claimed in claim 1, wherein the locking plate is coupled to the plurality of support plates using a hex bolt, at least two washers and a locking nut.
5. The assembly as claimed in claim 1, wherein the solenoid valve is coupled to the landing lever plate using a plurality of screws.
6. The assembly as claimed in claim 1, wherein the solenoid valve require power to engage the locking plate during locking operation, wherein the power is unneeded for unlocking operation.
7. A method comprising: providing a locking plate coupled to a landing lever plate using a plurality of support plates; providing a solenoid valve disposed on the landing lever plate and mechanically coupled to the locking plate using a guide pin; and actuating the locking plate by sliding the guide pin within the solenoid valve, in at least one operational mode, based on an activation signal received from a magnetic sensor.
8. The method as claimed in claim 8, wherein actuating the locking plate comprises actuating the locking plate in a forward direction by sliding the guide pin in the forward direction based on an activation signal received from a magnetic sensor.
9. The method as claimed in claim 8, wherein actuating the locking plate comprises actuating the locking plate in a backward direction by sliding the guide pin in the backward direction based on an activation signal received from a magnetic sensor.
10. A pneumatic vacuum elevator comprising: an elevator cabin configured to carry one or more users between one or more levels of a structure; and a landing lever assembly mechanically coupled to the elevator cabin, wherein the landing lever assembly comprises: a landing lever plate coupled on a roof of the elevator cabin; a locking plate coupled to the landing lever plate using a plurality of support plates; and a solenoid valve disposed on the landing lever plate and mechanically coupled to the locking plate using a guide pin, wherein the guide pin is configured to actuate the locking plate by sliding within the solenoid valve, in at least one operational mode, based on an activation signal received from a magnetic sensor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The disclosure will be described and explained with additional specificity and detail with the accompanying figures in which:
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[0018] Further, those skilled in the art will appreciate that elements in the figures are illustrated for simplicity and may not have necessarily been drawn to scale. Furthermore, in terms of the construction of the device, one or more components of the device may have been represented in the figures by conventional symbols, and the figures may show only those specific details that are pertinent to understanding the embodiments of the present disclosure so as not to obscure the figures with details that will be readily apparent to those skilled in the art having the benefit of the description herein.
DETAILED DESCRIPTION
[0019] For the purpose of promoting an understanding of the principles of the disclosure, reference will now be made to the embodiment illustrated in the figures and specific language will be used to describe them. It will nevertheless be understood that no limitation of the scope of the disclosure is thereby intended. Such alterations and further modifications in the illustrated system, and such further applications of the principles of the disclosure as would normally occur to those skilled in the art are to be construed as being within the scope of the present disclosure.
[0020] The terms “comprises”, “comprising”, or any other variations thereof, are intended to cover a non-exclusive inclusion, such that a process or method that comprises a list of steps does not include only those steps but may include other steps not expressly listed or inherent to such a process or method. Similarly, one or more devices or sub-systems or elements or structures or components preceded by “comprises . . . a” does not, without more constraints, preclude the existence of other devices, sub-systems, elements, structures, components, additional devices, additional sub-systems, additional elements, additional structures or additional components. Appearances of the phrase “in an embodiment”, “in another embodiment” and similar language throughout this specification may, but not necessarily do, all refer to the same embodiment.
[0021] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this disclosure belongs. The system, methods, and examples provided herein are only illustrative and not intended to be limiting.
[0022] In the following specification and the claims, reference will be made to a number of terms, which shall be defined to have the following meanings. The singular forms “a”, “an”, and “the” include plural references unless the context clearly dictates otherwise.
[0023] Embodiments of the present disclosure relates to a landing lever assembly of a pneumatic vacuum elevator and a method to operate the same. The assembly includes a landing lever plate coupled on a roof of an elevator cabin. The assembly also includes a locking plate coupled to the landing lever plate using a plurality of support plates. The assembly further includes a solenoid valve disposed on the landing lever plate and mechanically coupled to the locking plate using a guide pin, where the guide pin is configured to actuate the locking plate by sliding within the solenoid valve, in at least one operational mode, based on an activation signal received from a magnetic sensor.
[0024]
[0025] Furthermore, the assembly 10 includes a solenoid valve 80, where bottom side of the solenoidal valve 80 is disposed on the landing lever plate 20. The solenoid valve 80 includes a hollow portion which is adapted to receive a guide pin 90 via two holes 95 on each side of the solenoid valve 80. In one embodiment, the solenoid valve 80 may use power to engage the locking plate 40. The locking plate 40 does not require power to have it released. The locking plate 40 is mechanically coupled to the solenoid valve 80 using the guide pin 90. In one embodiment, the solenoid valve 80 and the guide pin 90 may be composed of metal. The guide pin 90 actuates the locking plate 40 by sliding within the solenoid valve 80, in at least one mode, based on an activation signal received from a magnetic sensor (not shown in
[0026]
[0027] In addition, the assembly 10 includes the solenoid valve 80 which is coupled to the bottom of the landing lever plate 20 using multiple screws 150. In a specific embodiment, the solenoid valve 50 may be coupled to the landing lever plate 20 using four pan head screws. As used herein, the pan head screws are machine screws with heads that are flat on top and rounded. on the sides. The solenoid valve 80 includes two holes 160 on each on left and right side of the solenoid valve 80. The two holes 160 are adapted to receive the guide pin 90. The guide pin 90 may slide within the solenoid valve 80 based on the activation signal received from the magnetic sensor. One end of the guide pin 90 is coupled to the locking plate 40. The guide pin 90 slides within the solenoid valve 80 upon receiving the activation signal to actuate the locking plate 40 to control the movement of the elevator cabin 30.
[0028]
[0029] Subsequently, the second portion 180 of the landing lever plate 20 includes four slots 210 of a second predefined size. The assembly 10 includes the solenoid valve 80 which is fixed in the four slots 210 of the landing lever plate 20. The second portion 180 of the landing lever plate 20 includes a side plate 220 which is coupled at the end of the landing lever plate 20.
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[0034] The method 300 also includes providing a solenoid valve disposed on the landing lever plate and mechanically coupled to the locking plate using a guide pin in step 320. In one embodiment, the solenoid valve is coupled to the landing lever plate using screws. The solenoid valve includes two holes on each on left and right side of the solenoid valve. The two holes are adapted to receive the guide pin. In such an embodiment, the guide pin and the solenoid valve may be composed of metal.
[0035] Furthermore, the method 300 includes actuating the locking plate by sliding the guide pin within the solenoid valve, in at least one operational mode, based on an activation signal received from a magnetic sensor in step 330. In a specific embodiment, the at least one operational mode may include a lock applied condition or a lock released condition. In one embodiment, actuating the locking plate may include actuating the locking plate in a forward direction by sliding the guide pin in the forward direction based on an activation signal received from a magnetic sensor. in another embodiment, actuating the locking plate may include actuating the locking plate in a backward direction by sliding the guide pin in the backward direction based on an activation signal received from a magnetic sensor.
[0036] Various embodiments of the landing lever assembly as described above enables safety lock for an enclosed pneumatic vacuum elevator cabin provides a simple mechanism for setting the elevator landing door safety locking plate. The landing lever assembly allows control over the energy supplied to the motor and so enabled the elevator to be accurately positioned
[0037] It will be understood by those skilled in the art that the foregoing general description and the following detailed description are exemplary and explanatory of the disclosure and are not intended to be restrictive thereof.
[0038] While specific language has been used to describe the disclosure, any limitations arising on account of the same are not intended. As would be apparent to a person skilled in the art, various working modifications may be made to the method 250 in order to implement the inventive concept as taught herein.
[0039] The figures and the foregoing description give examples of embodiments. Those skilled in the art will appreciate that one or more of the described elements may well be combined into a single functional element. Alternatively, certain elements may be split into multiple functional elements. Elements from one embodiment may be added to another embodiment. For example, order of processes described herein may be changed and are not limited to the manner described herein. Moreover, the actions of any flow diagram need not be implemented in the order shown; nor do all of the acts need to be necessarily performed. Also, those acts that are not dependent on other acts may be performed in parallel with the other acts. The scope of embodiments is by no means limited by these specific examples.