Not applicable to this application.
Example embodiments in general relate to a downhole pump gas eliminating seating nipple system for preventing and eliminating the collection of gas such as a foam barrier during operations of a downhole pump assembly.
Any discussion of the related art throughout the specification should in no way be considered as an admission that such related art is widely known or forms part of common general knowledge in the field.
Downhole pump assemblies have been used for many decades in the production or mining of various substances such as oil. Generally, a pumping jack is positioned on a ground surface above a well hole extending into the ground surface. The pumping jack is connected to a sucker rod which is drawn upwardly and downwardly to perform upstrokes and downstrokes. A plunger attached to the sucker rod functions to draw mined substances up through the well hole to be retrieved at the surface.
While downhole pump assemblies have become increasingly efficient over the years, there remains the significant risk of adverse conditions such as “gas locking” or “gas interference”. Gas locking or gas interference is caused by the induction of free gas during the pumping process. Gas locking or gas interference can occur when dissolved gas that is released from the solution during the upstroke of the plunger crops up as free gas below the downhole pump's intake, within and below the seating nipple of the downhole pump. It is also acknowledged that gas locking and gas interference may occur between the valves of the downhole pump assembly. In some extreme situations, the upstroke will not have sufficient vacuum within the downhole pump assembly to reach the requisite vacuum for opening of the standing valve and allowing substances to enter the downhole pump assembly. Thus, the mined substances do not leave or enter the downhole pump, resulting in the downhole pump being “gas locked” or having a condition known as “gas interference”.
Gas locking or gas interference can seriously impact the operation of the downhole pump assembly, leading to loss of production time and the requirement for costly and timely operations to release the gas lock or gas interference condition. Seating nipples which are commonly used to hold down the downhole pump assembly are particularly culpable in causing gas locking or gas interference, as conventional seating nipples have been known to allow gas to collect within or underneath the seating nipple. Such gas collection will very often lead to a gas locked or gas interfered pump.
An example embodiment is directed to a downhole pump gas eliminating seating nipple system. The downhole pump gas eliminating seating nipple system includes a seating nipple including an upper end, a lower end, and a channel extending between the upper and lower ends. The channel includes a beveled edge below the upper end, a locking lip above the lower end, and is defined by an upper portion, a lower portion, and a central portion intermediate the upper and lower portions. A plurality of upper gas eliminators are positioned below the beveled edge. A plurality of lower gas eliminators are positioned below the locking lip. One or more of the plurality of upper gas eliminator comprise elongate upper gas eliminators having an elongate length that is substantially equivalent to a length of the central portion of the channel. Each of the gas eliminators are angled upwardly from inlet to outlet so as to prevent accumulation of gasses within or below the seating nipple, which can lead to gas locking or interference of a pump. In an alternative embodiment, each of the gas eliminators are angled downwardly from inlet to outlet to reduce the likelihood that grains or debris of a particulate material will roll up through the gas eliminators.
There has thus been outlined, rather broadly, some of the embodiments of the downhole pump gas eliminating seating nipple system in order that the detailed description thereof may be better understood, and in order that the present contribution to the art may be better appreciated. There are additional embodiments of the downhole pump gas eliminating seating nipple system that will be described hereinafter and that will form the subject matter of the claims appended hereto. In this respect, before explaining at least one embodiment of the downhole pump gas eliminating seating nipple system in detail, it is to be understood that the downhole pump gas eliminating seating nipple system is not limited in its application to the details of construction or to the arrangements of the components set forth in the following description or illustrated in the drawings. The downhole pump gas eliminating seating nipple system is capable of other embodiments and of being practiced and carried out in various ways. Also, it is to be understood that the phraseology and terminology employed herein are for the purpose of the description and should not be regarded as limiting.
Example embodiments will become more fully understood from the detailed description given herein below and the accompanying drawings, wherein like elements are represented by like reference characters, which are given by way of illustration only and thus are not limitative of the example embodiments herein.
An example downhole pump gas eliminating seating nipple system generally comprises a body comprising an upper end 21, a lower end 22, an upper opening 24, a lower opening 25, and an outermost circumference 23. A channel 30 extends through the body between the upper opening 24 and the lower opening 25, with the channel 30 having an inner surface 32, an upper portion 35, a lower portion 39, and a central portion 37 intermediate the upper portion 35 and the lower portion 39. A beveled edge 36 is formed on the inner surface 32 of the channel 30 below the upper end 21 of the body. A locking lip 38 is formed on the inner surface 32 of the channel 30 above the lower end 22 of the body. A plurality of upper gas eliminators 70a, 70b, 70c, 70d extend from the inner surface 32 of the channel 30 to the outermost circumference 23 of the body. Each of the plurality of upper gas eliminators 70a, 70b, 70c, 70d is positioned below the beveled edge 36. Each of the plurality of upper gas eliminators 70a, 70b, 70c, 70d comprises an upper gas eliminator inlet and an upper gas eliminator outlet, with each of the plurality of upper gas eliminators 70a, 70b, 70c, 70d being angled upwardly between the upper gas eliminator inlet and the upper gas eliminator outlet. At least one of the plurality of upper gas eliminators 70a, 70b, 70c, 70d comprises an elongate upper gas eliminator having an elongate length that is substantially equivalent to a length of the central portion 37 of the channel 30.
The body may be comprised of a circular cross-section and may comprise a cylindrical shape. The plurality of upper gas eliminators 70a, 70b, 70c, 70d are comprised of a first upper gas eliminator 70a on a first side 26a of the seating nipple 20, a second upper gas eliminator 70b on a second side 26b of the seating nipple 20, a third upper gas eliminator 70c on a third side 26c of the seating nipple 20, and a fourth upper gas eliminator 70d on a fourth side 26d of the seating nipple 20. The first upper gas eliminator 70a is horizontally aligned with the third upper gas eliminator 70c and the second upper gas eliminator 70b is horizontally aligned with the fourth upper gas eliminator 70d. Each of the plurality of upper gas eliminators 70a, 70b, 70c, 70d extends upwardly at a 45 degree angle between the upper gas eliminator inlet and the upper gas eliminator outlet.
A plurality of lower gas eliminators 44a, 44b, 44c, 44d extend from the inner surface 32 of the channel 30 to the outermost circumference 23 of the body. Each of the plurality of lower gas eliminators 44a, 44b, 44c, 44d are positioned below the locking lip 38. Each of the plurality of lower gas eliminators 44a, 44b, 44c, 44d comprises a lower gas eliminator inlet and a lower gas eliminator outlet. Each of the plurality of lower gas eliminators 44a, 44b, 44c, 44d is angled upwardly between the lower gas eliminator inlet and the lower gas eliminator outlet. Each of the plurality of lower gas eliminators 44a, 44b, 44c, 44d is vertically aligned with one of the plurality of upper gas eliminators 70a, 70b, 70c, 70d.
The plurality of lower gas eliminators 44a, 44b, 44c, 44d are comprised of a first lower gas eliminator 44a on a first side 26a of the seating nipple 20, a second lower gas eliminator 44b on a second side 26b of the seating nipple 20, a third lower gas eliminator 44c on a third side 26c of the seating nipple 20, and a fourth lower gas eliminator 44d on a fourth side 26d of the seating nipple 20. The first lower gas eliminator 44a is horizontally aligned with the third lower gas eliminator 44c and the second lower gas eliminator 44b is horizontally aligned with the fourth lower gas eliminator 44d. Each of the plurality of lower gas eliminators 44a, 44b, 44c, 44d extends upwardly at a 45 degree angle between the lower gas eliminator inlet and the lower gas eliminator outlet.
The upper end 21 of the body comprises an upper connector 28 and the lower end 22 of the body comprises a lower connector 29. The upper connector 28 and the lower connector 29 are each comprised of a threaded connector. The upper connector 28 may be comprised of a male or female threaded connector and the lower connector 29 may be comprised of a male or female threaded connector such as shown in
As shown throughout the figures in both the first and second example embodiments, the downhole pump gas eliminating seating nipple system includes a seating nipple 20 which is utilized to hold or maintain a downhole pump assembly 50 in place as a sucker rod 52 moves a plunger 53 inside of the downhole pump assembly 50 to produce various mined substances such as oil, gas, and water. The use of the systems and methods described herein may result in significant increases in downhole pump efficiencies by decreasing gas locking or gas interference hindrances. As shown throughout the figures, the seating nipple 20 will generally comprise a mechanical seating nipple 20 which is configured to prevent gasses 56 from being trapped inside, or below, the seating nipple 20. The collection of such gasses 56, particularly inside the seating nipple 20, can considerably hinder the operation of a downhole pump assembly 50.
It should also be appreciated that the dimensions of the seating nipple 20 may vary in different embodiments to suit different types and sizes of downhole pump assemblies 50. For example, the length of the seating nipple 20, defined as the distance between its upper end 21 and its lower end 22, may vary in different embodiments to suit different downhole pump assemblies 50. Further, the diameter of the seating nipple 20 may vary in different embodiments to suit different downhole pump assemblies 50. Additionally, the diameter of the upper and lower openings 24, 25, as well as the diameter of the channel 30 extending through the interior of the seating nipple 20, may vary in different embodiments to suit different downhole pump assemblies 50. Thus, the scope should not be construed as limited to the particular dimensions shown in the exemplary figures.
The seating nipple 20 may be comprised of various materials, but will generally be comprised of various types of metals or metal alloys. However, in some embodiments, certain plastics may be utilized for the seating nipple 20. Thus, the scope should not be construed as limited to any particular type of material. In a preferred embodiment, the seating nipple 20 may be comprised of stainless steel, such as 316, or 304, stainless steel. In other embodiments, the seating nipple 20 may be comprised of materials such as carbon steel, titanium, or other metals/metal alloys.
The seating nipple 20 may be comprised of a single, unitary, integral member of a single type of material. In other embodiments, the seating nipple 20 may be comprised of discrete, interconnected members. In such embodiments, the seating nipple 20 may comprise multiple material types rather than being uniformly comprised of a single material such as stainless steel.
With reference to the first example embodiment illustrated in
With reference to the second example embodiment illustrated in
As best shown in
As best shown in
As shown in
Continuing to reference
The length of the upper and lower connectors 28, 29 as a ratio to the overall length of the seating nipple 20 (defined as the distance between its upper and lower ends 21, 22) may vary in different embodiments. Thus, the respective lengths of the upper and lower connectors 28, 29 may vary in different embodiments. As best shown in
As best shown in
The channel 30 is defined by an inner surface 32 such as shown in
As best shown in
The first beveled edge 36 is best shown in
The first beveled edge 36 is adapted to serve as a seal or pump seat for the downhole pump assembly 50. In a typical downhole pump assembly 50, the pump seal ring of the downhole pump assembly 50 matches up to the seating nipple 20 at the first beveled edge 36, which functions as a seal. Thus, the first beveled edge 36 may function as a standard mechanical hold down bevel when the seating nipple 20 is installed as part of a downhole pump assembly 50.
As best shown in
As shown in
As shown in
In the first and second example embodiments shown in the figures, it can be seen that the central portion 37 of the channel 30 is of a smaller width or diameter than the upper and lower portions 35, 39 of the channel 30. The width or diameter of the channel 30 is thus reduced between the upper and central portions 35, 37 of the channel 30, and then increased between the central and lower portions 37, 39 of the channel 30.
As best shown in
Continuing to reference
The shape and size of the locking lip 38 may vary in different embodiments and thus should not be construed as limited by the exemplary figures. The locking lip 38 will generally comprise a ring member which extends for the entire circumference of the inner surface 32 of the channel 30, extending into the channel 30 a distance. The distance by which the lip 38 extends into the channel 30 from the inner surface 32 thereof may vary in different embodiments to suit different types of downhole pump assemblies 50 and sucker rods 52. The lip 38 functions as a hold down for the downhole pump assembly 50 such that the downhole pump assembly 50 remains seated within the seating nipple 20 during both upstrokes and downstrokes.
a. First Example Embodiment.
As shown in
The arrangement and positioning of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d may vary in different embodiments. In the exemplary embodiment best shown in
It should be appreciated that the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d may be shifted into any configuration or pattern on the seating nipple 20 to achieve similar gas eliminating conditions or benefits. Further, additional gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d may be added to the seating nipple 20, which can be comprised of any size opening to allow the escape of trapped gasses 56. The arrangement and positioning of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d shown in the figures provides maximum strength to the body of the seating nipple 20.
Continuing to reference
As shown in
The use of such gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d stop or eliminates gas build-up which can significantly hamper operation of a downhole pump assembly 50. In previous designs of seating nipples 20, gas has been allowed to build up within the seating nipple 20 at various locations. The seating nipple 20 described herein does not allow for any such gas buildup, with any gasses being expelled through the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d as discussed herein.
The area between the first beveled edge 36 and locking lip 38 can allow for the accumulation of gasses 56 during operation of the downhole pump assembly 50. Thus, the positioning of the upper gas eliminators 40a, 40b, 40c, 40d and central gas eliminators 42a, 42b, 42c, 42d between the first beveled edge 36 and the locking lip 38 of the seating nipple 20 functions to expel such gasses 56 during operation of the downhole pump assembly 50 from an area in which the gasses 56 would otherwise collect, thus preventing gas locking of the downhole pump assembly 50.
As best shown in
With reference to
Each of the upper gas eliminators 40a, 40b, 40c, 40d is illustrated as extending through the seating nipple 20, between its outermost circumference 23 and the inner surface 32 of the channel 30, at an angle. Thus, the inlet of each upper gas eliminator 40a, 40b, 40c, 40d is comprised of an opening in the inner surface 32 of the channel 30 and the outlet of each upper gas eliminator 40a, 40b, 40c, 40d is comprised of an opening in the outermost circumference 23 of the seating nipple 20. More specifically, the upper gas eliminators 40a, 40b, 40c, 40d are illustrated as being angled upwardly from their inlets on the inner surface 32 of the channel 30 to their outlets on the outermost circumference 23 of the seating nipple 20. Thus, each of the upper gas eliminators 40a, 40b, 40c, 40d is shown with an inlet which is lower than its outlet.
The figures illustrate an exemplary embodiment in which the upper gas eliminators 40a, 40b, 40c, 40d are angled upwardly from inlet to outlet at a 45 degree angle. It should be appreciated, however, that other angles may be utilized. In some embodiments, the angle by which the upper gas eliminators 40a, 40b, 40c, 40d extend with respect to an axis extending between the upper and lower ends 21, 22 of the seating nipple 20 may be greater than, equal to, or less than 45 degrees.
Continuing to reference
In the exemplary embodiment shown in the figures, four central gas eliminators 42a, 42b, 42c, 42d are shown, with a first central gas eliminator 42a positioned on the first side 26a of the seating nipple 20, a second central gas eliminator 42b positioned on the second side 26b of the seating nipple 20, a third central gas eliminator 42c positioned on the third side 26c of the seating nipple 20, and a fourth central gas eliminator 42d positioned on the fourth side 26d of the seating nipple 20. As shown in
Each of the central gas eliminators 42a, 42b, 42c, 42d is illustrated as extending through the seating nipple 20, between its outermost circumference 23 and the inner surface 32 of the channel 30, at an angle. Thus, the inlet of each central gas eliminator 42a, 42b, 42c, 42d is comprised of an opening in the inner surface 32 of the channel 30 and the outlet of each central gas eliminator 42a, 42b, 42c, 42d is comprised of an opening in the outermost circumference 23 of the seating nipple 20. More specifically, the central gas eliminators 42a, 42b, 42c, 42d are illustrated as being angled upwardly from their inlets on the inner surface 32 of the channel 30 to their outlets on the outermost circumference 23 of the seating nipple 20. Thus, each of the central gas eliminators 42a, 42b, 42c, 42d is shown with an inlet which is lower than its outlet.
The figures illustrate an exemplary embodiment in which the central gas eliminators 42a, 42b, 42c, 42d are angled upwardly from inlet to outlet at a 45 degree angle. It should be appreciated, however, that other angles may be utilized. In some embodiments, the angle by which the central gas eliminators 42a, 42b, 42c, 42d extend with respect to an axis extending between the upper and lower ends 21, 22 of the seating nipple 20 may be greater than, equal to, or less than 45 degrees.
Continuing to reference
In the exemplary embodiment shown in the figures, four lower gas eliminators 44a, 44b, 44c, 44d are shown, with a first lower gas eliminator 44a positioned on the first side 26a of the seating nipple 20, a second lower gas eliminator 44b positioned on the second side 26b of the seating nipple 20, a third lower gas eliminator 44c positioned on the third side 26c of the seating nipple 20, and a fourth lower gas eliminator 44d positioned on the fourth side 26d of the seating nipple 20. As shown in
Each of the lower gas eliminators 44a, 44b, 44c, 44d is illustrated as extending through the seating nipple 20, between its outermost circumference 23 and the inner surface 32 of the channel 30, at an angle. Thus, the inlet of each lower gas eliminator 44a, 44b, 44c, 44d is comprised of an opening in the inner surface 32 of the channel 30 and the outlet of each lower gas eliminator 44a, 44b, 44c, 44d is comprised of an opening in the outermost circumference 23 of the seating nipple 20. More specifically, the lower gas eliminators 44a, 44b, 44c, 44d are illustrated as being angled upwardly from their inlets on the inner surface 32 of the channel 30 to their outlets on the outermost circumference 23 of the seating nipple 20. Thus, each of the lower gas eliminators 44a, 44b, 44c, 44d is shown with an inlet which is lower than its outlet.
The figures illustrate an exemplary embodiment in which the lower gas eliminators 44a, 44b, 44c, 44d are angled upwardly from inlet to outlet at a 45 degree angle. It should be appreciated, however, that other angles may be utilized. In some embodiments, the angle by which the lower gas eliminators 44a, 44b, 44c, 44d extend with respect to an axis extending between the upper and lower ends 21, 22 of the seating nipple 20 may be greater than, equal to, or less than 45 degrees.
The function of each of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d is to expel gas which is entrained in fluids 55 being pumped by the downhole pump assembly 50. In previous systems, such gas has been known to build up either inside or beneath conventional seating nipples 20 in a manner which negatively impacts operation of the downhole pump assembly 50. By utilizing angled openings to function as gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d, the systems and methods described herein can reduce or eliminate entirely such gas build-ups and thus significantly improve operation of any downhole pump assembly 50 with which the seating nipple 20 disclosed herein is utilized.
The manner by which the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d are formed within the seating nipple 20 may vary in different embodiments. In a preferred embodiment, each of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d may be formed by drilling downwardly from the outermost circumference 23 of the seating nipple 20 until the opening penetrates the inner surface 32 of the channel 30. The angle by which the openings are drilled may vary in different embodiments, with a preferred embodiment comprising a 45 degree angle with respect to an axis extending between the upper and lower ends 21, 22 of the seating nipple 20.
It should be appreciated that the number of gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d utilized in the seating nipple 20 may vary in different embodiments. Thus, more or less gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d may be utilized than are shown in the exemplary embodiments shown in the figures. Further, the positioning of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d, in which each of the first gas eliminators 40a, 42a, 44a are linearly aligned on the first side 26a of the seating nipple 20, each of the second gas eliminators 40b, 42b, 44b are linearly aligned on the second side 26b of the seating nipple 20, each of the third gas eliminators 40c, 42c, 44c are linearly aligned on the third side 26c of the seating nipple 20, and each of the fourth gas eliminators 40d, 42d, 44d are linearly aligned on the fourth side 26d of the seating nipple 20 are not meant to be limiting in scope. Various other positions for the various gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d may be utilized in different embodiments, particularly to suit different types of downhole pump assemblies 50 or different types of mined substances.
It should also be appreciated that the diameter of each of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d may vary in different embodiments. The figures illustrate that each of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d comprises the same diameter, but in other embodiments the diameters of some or all of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d may vary with respect to each other.
While the figures illustrate that each of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d is angled upwardly from its inlet to its outlet, there are certain embodiments in which each of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d are instead angled downwardly from inlet to outlet. For example, when mining fluids 55 with embedded particulate materials such as sand, it is preferable to instead angle each of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d downwardly from inlet to outlet. Such a configuration reduces the likelihood that grains or debris of any such particulate materials will roll up through the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d.
b. Second Example Embodiment.
As shown in
The arrangement and positioning of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d may vary in different embodiments. In the exemplary embodiment best shown in
Continuing to reference
As shown in
The use of such gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d stop or eliminates gas build-up which can significantly hamper operation of a downhole pump assembly 50. In previous designs of seating nipples 20, gas has been allowed to build up within the seating nipple 20 at various locations. The seating nipple 20 described herein does not allow for any such gas buildup, with any gasses being expelled through the gas eliminators 70a, 70b, 70c, 70d, 44b, 44c, 44d as discussed herein.
The area between the first beveled edge 36 and locking lip 38 can allow for the accumulation of gasses 56 during operation of the downhole pump assembly 50. Thus, the positioning of the upper gas eliminators 70a, 70b, 70c, 70d between the first beveled edge 36 and the locking lip 38 of the seating nipple 20 functions to expel such gasses 56 during operation of the downhole pump assembly 50 from an area in which the gasses 56 would otherwise collect, thus preventing gas locking of the downhole pump assembly 50.
As best shown in
With reference to
Each of the upper gas eliminators 70a, 70b, 70c, 70d is illustrated as extending through the seating nipple 20, between its outermost circumference 23 and the inner surface 32 of the channel 30, at an angle. Thus, the inlet of each upper gas eliminator 70a, 70b, 70c, 70d is comprised of an opening in the inner surface 32 of the channel 30 and the outlet of each upper gas eliminator 70a, 70b, 70c, 70d is comprised of an opening in the outermost circumference 23 of the seating nipple 20. More specifically, the upper gas eliminators 70a, 70b, 70c, 70d are illustrated as being angled upwardly from their inlets on the inner surface 32 of the channel 30 to their outlets on the outermost circumference 23 of the seating nipple 20. Thus, each of the upper gas eliminators 70a, 70b, 70c, 70d is shown with an inlet which is lower than its outlet.
The figures illustrate an exemplary embodiment in which the upper gas eliminators 70a, 70b, 70c, 70d are angled upwardly from inlet to outlet at a 45 degree angle. It should be appreciated, however, that other angles may be utilized. In some embodiments, the angle by which the upper gas eliminators 70a, 70b, 70c, 70d extend with respect to an axis extending between the upper and lower ends 21, 22 of the seating nipple 20 may be greater than, equal to, or less than 45 degrees.
Continuing to reference
In the exemplary embodiment shown in the figures of the second example embodiment, four lower gas eliminators 44a, 44b, 44c, 44d are shown, with a first lower gas eliminator 44a positioned on the first side 26a of the seating nipple 20, a second lower gas eliminator 44b positioned on the second side 26b of the seating nipple 20, a third lower gas eliminator 44c positioned on the third side 26c of the seating nipple 20, and a fourth lower gas eliminator 44d positioned on the fourth side 26d of the seating nipple 20. As shown in
Each of the lower gas eliminators 44a, 44b, 44c, 44d is illustrated as extending through the seating nipple 20, between its outermost circumference 23 and the inner surface 32 of the channel 30, at an angle. Thus, the inlet of each lower gas eliminator 44a, 44b, 44c, 44d is comprised of an opening in the inner surface 32 of the channel 30 and the outlet of each lower gas eliminator 44a, 44b, 44c, 44d is comprised of an opening in the outermost circumference 23 of the seating nipple 20. More specifically, the lower gas eliminators 44a, 44b, 44c, 44d are illustrated as being angled upwardly from their inlets on the inner surface 32 of the channel 30 to their outlets on the outermost circumference 23 of the seating nipple 20. Thus, each of the lower gas eliminators 44a, 44b, 44c, 44d is shown with an inlet which is lower than its outlet.
The figures illustrate an exemplary embodiment in which the lower gas eliminators 44a, 44b, 44c, 44d are angled upwardly from inlet to outlet at a 45 degree angle. It should be appreciated, however, that other angles may be utilized. In some embodiments, the angle by which the lower gas eliminators 44a, 44b, 44c, 44d extend with respect to an axis extending between the upper and lower ends 21, 22 of the seating nipple 20 may be greater than, equal to, or less than 45 degrees.
The function of each of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d is to expel gas which is entrained in fluids 55 being pumped by the downhole pump assembly 50. In previous systems, such gas has been known to build up either inside or beneath conventional seating nipples 20 in a manner which negatively impacts operation of the downhole pump assembly 50. By utilizing angled openings to function as gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d, the systems and methods described herein can reduce or eliminate entirely such gas build-ups and thus significantly improve operation of any downhole pump assembly 50 with which the seating nipple 20 disclosed herein is utilized.
The manner by which the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d are formed within the seating nipple 20 may vary in different embodiments. In a preferred embodiment, each of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d may be formed by drilling downwardly from the outermost circumference 23 of the seating nipple 20 until the opening penetrates the inner surface 32 of the channel 30. The angle by which the openings are drilled may vary in different embodiments, with a preferred embodiment comprising a 45 degree angle with respect to an axis extending between the upper and lower ends 21, 22 of the seating nipple 20.
It should be appreciated that the number of gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d utilized in the seating nipple 20 may vary in different embodiments. Thus, more or less gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d may be utilized than are shown in the exemplary embodiments shown in the figures. Further, the positioning of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d, in which each of the first gas eliminators 70a, 44a are linearly aligned on the first side 26a of the seating nipple 20, each of the second gas eliminators 70b, 44b are linearly aligned on the second side 26b of the seating nipple 20, each of the third gas eliminators 70c, 44c are linearly aligned on the third side 26c of the seating nipple 20, and each of the fourth gas eliminators 70d, 44d are linearly aligned on the fourth side 26d of the seating nipple 20 are not meant to be limiting in scope. Various other positions for the various gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d may be utilized in different embodiments, particularly to suit different types of downhole pump assemblies 50 or different types of mined substances.
It should also be appreciated that the width/diameter of each of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d may vary in different embodiments. The figures illustrate that each of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d comprises the same width/diameter, but in other embodiments the widths/diameters of some or all of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d may vary with respect to each other.
While the figures illustrate that each of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d is angled upwardly from its inlet to its outlet, there are certain embodiments in which each of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d are instead angled downwardly from inlet to outlet. For example, when mining fluids 55 with embedded particulate materials such as sand, it is preferable to instead angle each of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d downwardly from inlet to outlet. Such a configuration reduces the likelihood that grains or debris of any such particulate materials will roll up through the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d.
The systems and methods described herein, including the seating nipple 20, may be utilized with a wide range of downhole pump assemblies 50.
In the illustration of a downhole pump assembly 50 shown in
The sucker rod 52 operates within a casing 62 of the downhole pump assembly 50, with the casing 62 extending through the length of the well hole. The distal end of the sucker rod 52 may include a plunger 53 such as shown in
Continuing to reference
A valve 57 such as a ball valve as shown in
On the upstroke of the sucker rod 52 and plunger 53, fluid 55 is drawn from a reservoir and into the casing 62 through casing perforations 63. The fluid 55 is then drawn into the downhole pump assembly 50 via inlet openings 54 which are positioned just underneath the lower end 22 of the seating nipple 20. The fluid 55 then traverses through the channel 30 of the seating nipple 20 and up through the casing 62 to be retrieved above-ground.
As the fluid 55 passes through the seating nipple 20, gasses 56 entrained in the fluid 55, which would previously have collected within the seating nipple 20 in previous, convention designs, is instead drawn out of the seating nipple 20 and into the casing 62 by the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d in
In use, a hole is first drilled into the ground to reach a reservoir and the downhole pump assembly 50 is installed. A tubing string 60 and casing 62 are positioned within the hole, with casing perforations 63 being positioned within the reservoir of fluid 55 to draw the fluid 55 into the casing 62. The seating nipple 20 is installed and secured within the casing 62 by use of a plurality of tubing collars 58a, 58b, 58c, 58d, 58e, 58f.
In the illustrations of
An additional tubing collar 58c is positioned above the inlet openings 54 to which the lower end 22 of the seating nipple 20 may be attached such as shown in
As the sucker rod 52 and plunger 53 are on the upstroke, fluid 55 will be drawn from the reservoir through the inlet openings 54 into the casing 62. The fluid 55 will further be drawn up through the seating nipple 20. Entrained gasses 56 within the fluid 55 will be expelled through the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d in the first example embodiment and through the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d in the second embodiment rather than collecting within the seating nipple 20, thus preventing gas locking which can inhibit the mining operation. The angled orientation of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d (and gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d) aids in allowing the gasses 56 to exit the seating nipple 20 and into the casing 62, where the gasses 56 may bubble up to the surface. As shown in
The seating nipple 20 functions to “seat” the downhole pump assembly 50 at the bottom of the string of the sucker rod 52 while the sucker rod 52 reciprocates between upstrokes and downstrokes. The tubing collars 58a, 58b, 58c, 58d, 58e, 58f hold the seating nipple 20 in place, with the bull plug 61 functioning to maintain the requisite pressure necessary for pumping operations. As the sucker rod 52 reciprocates between its upstrokes and downstrokes, the seating nipple 20 holds the downhole pump assembly 50 in place, functioning as an anchor.
As fluid 55 is drawn up through the downhole pump assembly 50 on the upstroke of the sucker rod 52, the fluid 55 will be drawn through the seating nipple 20 from its lower end 22 to its upper end 21. Any gasses 56 entrained within the fluid 55 are expelled from the seating nipple 20 and into the casing 62 by operation of the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d in the first example embodiment and by operation of the gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d in the second example embodiment.
The gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d (and gas eliminators 70a, 70b, 70c, 70d, 44a, 44b, 44c, 44d) are angled to effectuate the elimination of such gasses 56 from within the seating nipple 20, with the gasses 56 be forced out of the seating nipple 20 by the gas eliminators 40a, 40b, 40c, 40d, 42a, 42b, 42c, 42d, 44a, 44b, 44c, 44d (and gas eliminators 40a, 40b, 40c, 40d, 44a, 44b, 44c, 44d). The gasses 56 will then pass into the casing 62 so as to bubble up to the surface. As the gasses 56 are not permitted to collect within or below the seating nipple 20 during the upstroke or downstroke of the sucker rod 52, gas locking is prevented. The efficiency of the downhole pump assembly 50 is thus greatly improved, as gas locking can lead to significant amounts of downtime and seriously inhibit operation of the downhole pump assembly 50.
Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Although methods and materials similar to or equivalent to those described herein can be used in the practice or testing of the downhole pump gas eliminating seating nipple system, suitable methods and materials are described above. All publications, patent applications, patents, and other references mentioned herein are incorporated by reference in their entirety to the extent allowed by applicable law and regulations. The downhole pump gas eliminating seating nipple system may be embodied in other specific forms without departing from the spirit or essential attributes thereof, and it is therefore desired that the present embodiment be considered in all respects as illustrative and not restrictive. Any headings utilized within the description are for convenience only and have no legal or limiting effect.
The present application is a continuation-in-part of U.S. Application Ser. No. 17/340,294 filed on Jun. 7, 2021 (Docket No. STON-007), which is a continuation of U.S. application Ser. No. 17/110,552 filed on Dec. 3, 2020 now issued as U.S. Pat. No. 11,028,683 (Docket No. STON-005). Each of the aforementioned patents and patent applications are herein incorporated by reference in their entirety.
Number | Date | Country | |
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Parent | 17110552 | Dec 2020 | US |
Child | 17340294 | US |
Number | Date | Country | |
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Parent | 17340294 | Jun 2021 | US |
Child | 17975927 | US |