The invention generally relates to a component which is used in oil and gas field in the pumping operation and manufacturing of same. In particular, the present invention relates to the geometry (shape and size) optimization of a component such as a fluid end and optimization of its manufacturing process which results into improved productivity and strength by combination of forging and machining techniques.
In oil and gas industry, offshore and onshore drillings are identified as focus areas. With new discoveries through shale gas and new technology in directional drilling, there is steep increase in demand for drilling equipment, particularly in the safety and application critical equipment. To meet this growth in demand of safety and application critical components, productivity improvement and innovation in manufacturing process is essential.
Many industries including oil and gas industries use safety and application critical components. For many decades many of these components have been manufactured using conventional manufacturing process (i.e., open die forging followed by machining). In these methods an ingot is cogged into bloom, which is followed by saw cutting, rough sizing, rough machining, heat treatment, semi finish machining and finish machining of the component.
The existing fluid end component geometry as shown in
The existing manufacturing process as shown in
During mass production of such components, substantial raw material is wasted with conventional manufacturing method which results into large machining time and poor yield.
Another important limitation of the existing design and existing manufacturing method of Fluid End is that the machining route cuts through the continuous grain flow lines hence grain flow lines are not continuous along the contours of Fluid End. This is the reason why the Fluid End of existing design, manufactured by existing method lack in continuous grain flow lines along the contours of the fluid end.
There is therefore a need to provide an innovative design and an innovative manufacturing method for Fluid End. It is also important to reduce machining on the non-assembly areas from the product and produce the near net shape input to finish machining by forging. This will establish right balance between forging and machining process which effectively utilizes the material and reduces machining time. This leads into improved productivity of such parts without compromising on the desired mechanical properties and specific strength.
An object of the present invention is to provide safety and application critical components with as forged surfaces in the non-assembly areas.
A further object of the present invention is to provide safety and application critical components with effective material utilisation.
Still further object of the invention is to provide method of manufacturing the same.
Another object of the invention is to provide an optimized “cogged bloom” the size of which is input to the closed die forging.
Another object of the invention is to provide near-net shape forging so as to enhance utilisation of material from the forging with closed die route.
Another object of the invention is to provide forging die design for the said near-net-shape forging process.
Another object of the invention is to provide method of manufacturing near-net-shape preform from cogged bloom using closed die forging.
Yet another object of the invention is to provide machining design and tool path generation program for said near-net-shape forging.
Yet another object of the invention is to provide the Fluid End with continuous grain flow lines along the contour and improved mechanical and metallurgical properties through closed die forging followed by heat treatment.
(Please note that the as-forged areas of the invention are indicated by hatch markings.)
The present invention describes the innovated design of Fluid End and its innovated manufacturing method.
In the present invention, fluid end (1) component geometry is optimized in such a way that, assembly areas or surfaces (5) are kept in machined condition whereas other or non-assembly areas (6) or surfaces are kept in as-forged condition, as shown in
The present invention also discloses a process of manufacturing safety and application critical components using a combination of open die and closed die forging, and machining. The process involves the steps of cogging of the ingot to form billet for closed die forging using open die forging, forging the billet in closed die using forging equipment, semi-finish/rough/partial machining, heat treatment, drilling and finish machining the component. Most of the non-assembly areas (i.e. the surfaces where no mating part is being assembled) of the fluid end are left in as-forged condition (i.e. machining operation at such areas is eliminated).
With the process of the present invention, 70 to 75% of the shape and size of the final component is achieved through forging and remaining 25 to 30% through machining.
The Fluid End (1) with continuous grain flow lines along the contours, (see
The present invention is applicable to any forged components that are used in variety of industries, particularly those which are formed from large ingots. The invention is particularly useful for safety and application critical components such as fluid end (1) which is used in oil and gas industry. The description that follows is based on a typical such fluid end.
As seen from
The fluid end (1) has a number of internal pathways (9) for fluid movement. In one embodiment of the invention, the pathways are formed as inter-connected holes provided within the body of the main block, the flange, and the neck.
The innovative design of fluid end (1) of the invention consists of machined (5) as well as as-forged surfaces (6). The assembly surfaces are machined while most of the non-assembly surfaces are formed as-forged. Here most of non-assembly surfaces are kept as-forged which means no machining is required on these surfaces. As shown in
The conventional manufacturing process as shown in
The conventional manufacturing process leads to a lot of wastage of material and energy.
On the other hand, the process of the present invention as shown in
It can thus be understood that the areas that are formed by forging technique and left as as-forged during the partial/rough/finish machining stages are left as as- forged in the final product.
As shown in
The neck (4) portion between the flange (3) and the main block (2) of the fluid-end (1) is difficult to forge integrally with the rest of the fluid end (1). This portion can be seen clearly in
With an iterative simulation approach, numerous manufacturing concepts for forging and machining were evaluated to optimize part geometry of near net shape, forging die design and manufacturing process using virtual manufacturing techniques. Forging part geometry i.e. near net shape and process was optimized using 3D metal flow simulation and machining process was optimized using CAM simulation. Based on simulation results, an optimal manufacturing methodology was developed for manufacturing components such as the fluid ends used in the oil and gas industry.
The Fluid End with continuous grain flow lines along the contours was achieved by adding closed die forging stage in between open die forging and machining process.
The near net shaped component (the fluid end) is next partial machined to remove the draft on forged fluid end (1). This step is then followed by heat treatment to achieve the required metallurgical and mechanical properties. After this, holes are drilled for creating internal pathways as per the component specification followed by finish machining to achieve the final shape and size.
A number of operational benefits have been observed as a result of the present invention. These have been summarised here:
3. Productivity improved.
It is evident from the foregoing discussion that the present invention has a number of embodiments.
1. A fluid end comprising a main block, a flange, said main block and flange connected by a neck wherein said fluid end has a first and a second surface, said first surface being the surface of said main block nearer the flange and said second surface being the surface of said main block away from said flange, and wherein said fluid end has a number of assembly and non-assembly surfaces, characterised in that assembly surfaces are machined condition and at least some of non-assembly surfaces are in as-forged condition, as indicated in
2. A method of manufacturing a fluid end characterised in that said process comprises the steps of:
3. A method as disclosed in embodiment 2 characterised in that said multiple steps of providing blows further comprise the steps of:
4. A method as disclosed in embodiments 2 or 3, characterised in that said closed die is constructed so that the material in the flange area of the forged product flows so as to provide continuous grain flow lines along the contours of fluid end.
While the above description contains much specificity, these should not be construed as limitation in the scope of the invention, but rather as an exemplification of the preferred embodiments thereof. It must be realized that modifications and variations are possible based on the disclosure given above without departing from the spirit and scope of the invention. Accordingly, the scope of the invention should be determined not by the embodiments illustrated, but by the appended claims and their legal equivalents.
Number | Date | Country | Kind |
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4509/MUM/2015 | Dec 2015 | IN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2016/057237 | 12/1/2016 | WO | 00 |