Pneumatic elevator with pressure regulator
12001229 ยท 2024-06-04
Inventors
- Juan Carlos G. de Ledebur (Key Biscayne, FL, US)
- Stefan A. Gruber (Miami, FL, US)
- Patrick Andrew G. de Ledebur (Miami, FL, US)
Cpc classification
B66B1/3492
PERFORMING OPERATIONS; TRANSPORTING
B66B9/04
PERFORMING OPERATIONS; TRANSPORTING
B66B1/3453
PERFORMING OPERATIONS; TRANSPORTING
G05D7/005
PHYSICS
F16K3/0209
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B66B1/34
PERFORMING OPERATIONS; TRANSPORTING
B66B11/04
PERFORMING OPERATIONS; TRANSPORTING
B66B9/04
PERFORMING OPERATIONS; TRANSPORTING
F16K3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A pressure regulator includes a fluid transfer chamber defining one or more apertures. A flow control element is disposed within the fluid transfer chamber and is movable with respect to the fluid transfer chamber. An actuator is secured to the flow control element and is operable to move the flow control element with respect to the fluid transfer chamber to control fluid flow through the apertures in the fluid transfer chamber.
Claims
1. A pneumatic vacuum elevator, comprising: an elevator shaft; a cabin disposed within and movable within the elevator shaft; a vacuum source in fluid communication with the elevator shaft above the cabin; a pressure sensor in fluid communication with the elevator shaft above the cabin for measuring pressure within the elevator shaft above the cabin; a vent in fluid communication with the elevator shaft below the cabin for allowing fluid passage to and from the elevator shaft below the cabin; a pressure regulator including a fluid transfer chamber and a flow control element in fluid communication with a point exterior to the elevator shaft and the elevator shaft above the cabin, wherein the pressure regulator controls fluid flow to the elevator shaft above the cabin; and a controller in electrical communication with the pressure sensor and the pressure regulator, the controller causing the pressure regulator to adjust fluid flow in response to a pressure measurement from the pressure sensor; the fluid transfer chamber having a planar face that defines a plurality of apertures; the flow control element disposed within the fluid transfer chamber, the flow control element including a planar face that defines a plurality of apertures and that is slidably disposed within the fluid transfer chamber, the plurality of apertures of the flow control element are offset laterally from the plurality of apertures of the fluid transfer chamber, and the planar face of the flow control element is in a spaced-apart relationship with the planar face of the fluid transfer chamber; and an electrical solenoid secured to the flow control element and operable to move the flow control element with respect to the fluid transfer chamber.
2. The pneumatic vacuum elevator of claim 1, further comprising: a cabin sensor that measures movement of the cabin with respect to the elevator shaft, the cabin sensor in communication with the controller, the controller causing the pressure regulator to adjust fluid flow in response to sensed movement of the cabin.
3. The pneumatic elevator of claim 1, further comprising: a fluid flow sensor in fluid communication with the pressure regulator for measuring fluid flow through the pressure regulator, the fluid flow sensor in communication with the controller, the controller causing the pressure regulator to adjust fluid flow in response to sensed fluid flow through the pressure regulator.
4. The pneumatic vacuum elevator of claim 1, further comprising: a cabin sensor that measures movement of the cabin with respect to the elevator shaft, the cabin sensor in communication with the controller, the controller causing the pressure regulator to adjust fluid flow in response to sensed movement of the cabin; and a fluid flow sensor in fluid communication with the pressure regulator for measuring fluid flow through the pressure regulator, the fluid flow sensor in communication with the controller, the controller causing the pressure regulator to adjust fluid flow in response to sensed fluid flow through the pressure regulator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete understanding of the present invention, and the attendant advantages and features thereof, will be more readily understood by reference to the following detailed description when considered in conjunction with the accompanying drawings wherein:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8) Referring now to
(9)
(10) A vacuum source 22, such as a turbine, is in fluid communication with the elevator shaft 16 (upper plenum 18) above the cabin. The vacuum source can be positioned at the top of the shaft as shown, or remote from the shaft. A pressure sensor 24 is in fluid communication with the elevator shaft 16 above the cabin for measuring pressure within the elevator shaft above the cabin. A vent 26 is in fluid communication with the elevator shaft 16 below the cabin for allowing fluid passage to and from the elevator shaft below the cabin. The vent can take many forms including one or more holes, slots, tubes, or ducts.
(11) A pressure regulator 28 is in fluid communication with a point exterior to the elevator shaft and the elevator shaft above the cabin (upper plenum 18). The pressure regulator 28 controls fluid (air) flow to the elevator shaft above the cabin 14 and is described in more detail with respect to
(12) Continuing to refer to
(13) Thus, in operation, to cause the cabin 14 to rise within the shaft 16, the pressure regulation components described above operate to allow air to enter the lower plenum 20 as the turbine 22 withdraws air from the upper plenum 18 (creating or applying a vacuum force). When descent of the cabin is desired, the turbine 22 lessens or stops applying a vacuum force to the upper plenum 18 until the weight of the cabin overcomes the pressure in the lower plenum allowing the cabin to descend. The pressure within the lower plenum is reduced by allowing air to flow from the vents 26. The speed of the cabin movement can be monitored by the speed sensor 32. To increase or decrease the rate of descent, the airflow through the pressure regulator 28 and the vents 26 can be increased or decreased by the controller.
(14) Turning now to
(15) While the above discussion relates to control of fluid flow, wherein the fluid is air, the pressure regulator 28 can be used as a valve for control of fluids, wherein the fluids are liquids or combinations of liquids and gas. Exemplary liquids include oil, petrol, and water. The operation of the pressure regulator 28 is the same as described above, but the context or application may be different. For example, the pressure regulator 28 (valve) can be placed in-line in a system of pipe and tanks to control the flow of liquid through the pipes, to and from the tanks, etc. as desired by covering and uncovering in whole or in part the apertures in the fluid transfer chamber.
(16) Referring now to
(17)
(18) As with the embodiment shown in
(19) The flow control element can be disposed directly on the planar face of the fluid transfer chamber (or in a spaced apart relationship) so that the apertures of the flow control element are aligned or misaligned (laterally offset) with the apertures of the fluid transfer chamber when the flow control element is moved to a first position.
(20) It should be understood that various aspects disclosed herein may be combined in different combinations than the combinations specifically presented in the description and accompanying drawings.
(21) It will be appreciated by persons skilled in the art that the present invention is not limited to what has been particularly shown and described herein above. In addition, unless mention was made above to the contrary, it should be noted that all of the accompanying drawings are not to scale. A variety of modifications and variations are possible in light of the above teachings without departing from the scope and spirit of the invention, which is limited only by the following claims.