Compressed air operated fluid pump applied to oil wells
10415603 ยท 2019-09-17
Inventors
Cpc classification
F04F1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/1276
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B47/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/127
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B47/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention is constructed for use with oil field pumps. The disclosed fluid pump is an apparatus that can replace conventional mechanical jack pumps, which are often problematic and inefficient during use. The present invention is a down hole fluid pump, which carries fluid upward by means of, a two phase flow of a compressed gas, and fluid. The fluid may be an admixture of petroleum oil and water. The compressed gas is generally air, but other gases may be applied. The inventive pump comprises multiple air lines, which allow serial connectivity with multiple oil wells. Multiple donut shaped magnets comprise the inventive fluid pump assembly, which facilitate effective and efficient fluid pump operation.
Claims
1. A compressed air operated fluid pump for use in conjunction with oil wells comprising: A stainless steel housing having a top and bottom with pumping elements internally disposed within said housing, said pumping elements comprising: (1) A float having a top and a bottom for controlling air entering and exiting said pump; (2) A plurality of magnets operatively mounted for positioning said float as air enters and exits said pump; (3) A plurality of air ports to facilitate air flow entering and exiting said pump; (4) A plurality of air lines to facilitate the air flow within said pump; (5) At least one fluid channel to facilitate moving fluid out of said pump; and A foot valve attached at the bottom of said housing to control fluid entry into said pump and fluid exit from said pump, wherein said foot valve further comprises a bottom cap to facilitate retaining in place said plurality of air lines in relation to said pump.
2. The pump of claim 1 wherein said fluid channel is vertically positioned in relation to said float, is parallel to said float, and extends above said float for pushing fluid out of said pump.
3. The pump of claim 1 wherein said plurality of air lines are vertically positioned in relation to said float, are parallel to said float, and extend above said float to connect to said plurality of air ports, which facilitate the flow of air and exhaust within said pump.
4. The pump of claim 1 wherein said plurality of air ports comprise a first air-in port, a second air-in port, and an air-out port to facilitate air exhaust from said pump.
5. The pump of claim 1 wherein said pump further comprises a linkage unit internally disposed within said pump and positioned above said float to control the air flow into said pump and the air flow out of said pump, and wherein said linkage unit further comprises an exhaust channel seal attached to a top plate of said linkage unit to control exhaust flow within said pump, and wherein said linkage unit is connected to an adjacent linkage unit guide plate and has a linkage unit hinge pin that facilitates moving said linkage unit up and down during operation of said pump.
6. The pump of claim 1 wherein said foot valve comprises a one-way check valve that allows fluid to flow into said pump and prevents fluid from flowing out of said pump.
7. The pump of claim 1 wherein said foot valve further comprises a rubber O-ring seal to facilitate forming a seal at the bottom of said pump to facilitate retaining fluid within said pump and preventing fluid from exiting said pump.
8. The pump of claim 1 wherein said plurality of magnets comprise a stationary donut shaped magnet to facilitate moving said float upward and downward.
9. The pump of claim 1 wherein said plurality of magnets comprise a moveable donut shaped magnet connected to the bottom of said float, to facilitate reducing attraction of heavy metal deposits from crude oil, and to facilitate cleaning said plurality of magnets of heavy metals contained in crude oil by fluid pressure being forced downward inside said pump and over said plurality of magnets, by wiping clean said plurality of magnets of crude oil deposits during operation of said pump.
10. The pump of claim 1 wherein said plurality of magnets comprise a moveable donut shaped magnet positioned above said foot valve.
11. A compressed air operated fluid pump for use in conjunction with oil wells comprising: A stainless steel housing; having pumping elements internally disposed within said housing, said pumping elements comprising: (1) A float having a top and a bottom for controlling air entering and exiting said pump; (2) A plurality of magnets operatively mounted for positioning said float as air enters and exits said pump; (3) A plurality of air ports to facilitate air flow entering and exiting said pump, wherein said plurality of air ports comprise a first air-in port, a second air-in port, and an air-out port to facilitate air exhaust from said pump; (4) A plurality of air lines to facilitate the air flow within said pump, wherein said plurality of air lines are vertically positioned in relation to said float, are parallel to said float, and extend above said float to connect to said plurality of air ports, which facilitate the flow of air and exhaust within said pump; (5) At least one fluid channel to facilitate moving fluid out of said pump, wherein said fluid channel is vertically positioned in relation to said float, is parallel to said float, and extends above said float to facilitate pushing fluid out of said pump; and A foot valve attached to said pump to control fluid entry into said pump and fluid exit from said pump, wherein said foot valve is positioned at the bottom of said housing and comprises a one-way check valve that allows fluid to flow into said pump and prevents fluid from flowing out of said pump, and wherein said foot valve further comprises a bottom cap positioned at the bottom of said pump to facilitate retaining in place said plurality of air lines in relation to said pump; and wherein said pump further comprises a linkage unit internally disposed within said pump and positioned above said float to control the air flow into said pump and the air flow out of said pump, and wherein said linkage unit further comprises an exhaust channel seal attached to a top plate of said linkage unit to control exhaust flow within said pump, and wherein said linkage unit is connected to an adjacent linkage unit guide plate and has a linkage unit hinge pin that facilitates moving said linkage unit up and down during operation of said pump.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(24) According to the present invention, compressed air operated fluid pump assembly (10) comprises stainless steel fluid pump housing (100), serial connectivity down hole fluid pump (200), and foot valve (300).
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(28) Moveable donut magnet (252) and moveable donut magnet (240) are mounted differently to fluid pump (200) according to the present invention. More specifically in this regard, moveable donut magnet (252) terminates at the end of float (218). Stainless steel sheet metal shroud (234a) is positioned around the bottom end of float (218), and stainless steel sheet metal shroud (234b) is positioned around moveable donut magnet (252). Metal shroud (234a) and (234b) are arranged on opposite sides of float (218). Metal shroud (234a) and metal shroud (234b) are securely fastened with tube clamp (236a) and (236b). Metal shroud (234c) serves as the mount for moveable donut magnet (240).
(29) As shown in
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(32) At this point, the action starts the fluid pump (200) cycle. The presence of compressed air, or other gas, and fluid will cause a two-phase fluid flow upward out of fluid-out port (202). Compressed air or gas pressure also closes foot valve (300), an O-ring seal type, ceasing further fluid admission. The contained amount of fluid will eventually exhaust itself, and float (218) then drops. Moveable donut magnet (252) then approaches stationary donut magnet (238), and the strong magnetic attraction between moveable donut magnet (252) and stationary donut magnet (238) pulls open linkage unit guide plate (228). The check valve design of air valve (254) stops the compressed air or gas input flow, while grommet seal (226) opens the cylinder to the outside to exhaust the contained air or gas. This final action ends the cycle.
(33) According to the present invention, fluid pump assembly (10) can be used in two modes, When it is the lowest unit immersed in the fluid, it is a source pump. The plumbing at the bottom unit is different from all the upper pump units. The upper units operate in the transfer pump mode. The present design calls for multi-unit use if well depth is greater than 300 feet, air pressure at 175 psig. Each port at the bottom end cap connects through flexible hoses with the upper end cap port of the nearest lower unit only. The port connection for compressed air or gas at the top end cap is second air-in port (208). This air or gas is routed to the bottom end cap through air-in line (209). There is no need for an extra external hose to supply the compressed air or gas. The source pump is supplied at fluid-in port (308) with a short length external wire mesh tube to minimize fouling from non-fluid solid component.
(34) The foregoing is illustrative of the present invention and is not to be construed as limiting thereof. Although a few exemplary embodiments of this invention have been described, those skilled in the art will readily appreciate that many modifications are possible in the exemplary embodiments without materially departing from the novel teachings and advantages of this invention. Accordingly, all such modifications are intended to be included within the scope of this invention as defined in the claims. Therefore, it is to be understood that the foregoing is illustrative of the present invention and is not to be construed as limited to the specific embodiments disclosed, and that modifications to the disclosed embodiments, as well as other embodiments, are intended to be included within the scope of the appended claims. The invention is defined by the following claims, with equivalents of the claims to be included therein.