This invention relates generally to the field of pumping systems, and more particularly to an apparatus and method for connecting thrust-carrying shafts within a surface pumping system.
Horizontal pumping systems are used in various industries for a variety of purposes. For example, in the oil and gas industry horizontal pumping systems are used to pump fluids, such as water separated from oil, to a remote destination, such as a tank or disposal well. Typically these horizontal pumping systems include a pump, a motor, and a suction housing positioned between the pump and the motor. A thrust chamber is also included between the motor and the suction housing.
Torque from the motor is carried to a thrust chamber shaft that extends through the thrust chamber. The thrust chamber shaft is connected to a stub shaft that extends through the suction housing. In high power applications, a significant amount of torque is transferred from the motor to the thrust chamber shaft and stub shaft. Traditionally, the stub shaft has been connected to the thrust chamber shaft with a simple flange at one end of the stub shaft. The thrust chamber shaft is traditionally large enough to have the flange bolt pattern drilled into one end.
With high thrust systems, however, the diameter of the bolt flange on the stub shaft exceeds the diameter of the thrust chamber shaft. It is impractical or otherwise undesirable to manufacture a thrust chamber shaft that matches the size of the stub shaft. There is, therefore, a need for an improved mechanism for connecting the stub shaft to the thrust chamber shaft.
In a preferred embodiment, the present invention includes a shaft coupling for connecting a first shaft to a second shaft. The shaft coupling includes a first hub that has a shaft sleeve that fits over a portion of the first shaft. The first hub also includes a connection flange connected to the shaft sleeve. The shaft coupling also includes a compression fitting that fits over the shaft sleeve to apply a compressive force to the shaft sleeve and first shaft. The shaft coupling further includes a second hub that is connected to the second shaft and to the first hub.
In another embodiment, the present invention includes a horizontal pumping system that has a motor, a pump driven by the motor, and a suction chamber connected to the pump. The suction chamber includes a stub shaft that delivers torque to the pump. The horizontal pumping system further includes a thrust chamber that includes a thrust chamber shaft that delivers torque to the stub shaft.
A shaft coupling connecting the thrust chamber shaft to the stub shaft includes a thrust shaft hub and a compression fitting. The compression fitting is connected to the thrust shaft hub and the thrust shaft hub is connected to both the stub shaft and to the thrust chamber shaft.
In yet another aspect, the preferred embodiments include a shaft coupling for connecting a thrust chamber shaft to a stub shaft. The shaft coupling includes a thrust shaft hub connected to the stub shaft and to the thrust chamber shaft and a compression fitting connected to the thrust shaft hub.
In accordance with a preferred embodiment of the present invention,
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During assembly, the compression fitting 120 is loosened and placed over the shaft sleeve 128 of the thrust shaft hub 118. The thrust shaft hub 118 is then placed over the hub portion 122 of the thrust chamber shaft 110. The thrust shaft hub 118 is the loaded onto the thrust chamber shaft 110 until the shaft sleeve 128 abuts the shoulder 124. In a particularly preferred embodiment, the inner diameter of the shaft sleeve 128 is nominally a slight clearance fit to the outer diameter of the hub portion 122 of the thrust chamber shaft 110. To install the thrust shaft hub 118 onto the thrust chamber shaft 110, an assembly press (not shown) can be threaded onto the end of the thrust chamber shaft 110 and tightened to apply a force against the connection flange 126 of thrust shaft hub 118, bringing the axial face 129 into contact with the shoulder 124 of the thrust chamber shaft 110.
Once the thrust shaft hub 118 has been completely loaded onto the thrust chamber shaft 110, the compression fitting 120 is tightened to lock the thrust shaft hub 118 onto the thrust chamber shaft 110. In a particularly preferred embodiment, the compression fitting 120 is engaged by tightening compression fitting fasteners 142 to approximate the first outer ring 136 and second outer ring 138. As the first outer ring 136 and second outer ring 138 are drawn together, the inner ring 140 contracts and applies a locking compressive force to the shaft sleeve 128 and hub portion 122 of the thrust chamber shaft 110. The assembly press is removed following complete tightening of the compression fitting 120.
Next, the stub shaft 112 is connected to the thrust chamber shaft 110 by connecting the stub shaft hub 132 to the connection flange 126 of the thrust shaft hub 118. Fastener bores 130 are aligned with fastener bores 134 and fasteners 146 are tightened to lock the stub shaft 112 to the thrust chamber shaft 110. In this way, thrust generated by the pump 106 is carried through the stub shaft 112, through the shaft coupling 114 and into the thrust chamber shaft 110 via the shoulder 124. Torque is transferred from the thrust chamber shaft 110 to the stub shaft 112 through the coupling 114. The compression fitting 120 locks the thrust shaft hub 118 to the thrust chamber shaft 110 without the use of a splined or keyed connection between the thrust chamber shaft 110 and the thrust shaft hub 118. The use of the shaft coupling 114 presents a novel and improved way of connecting the stub shaft 112 to the thrust chamber shaft 110 that will find particular utility in high power applications.
It is to be understood that even though numerous characteristics and advantages of various embodiments of the present invention have been set forth in the foregoing description, together with details of the structure and functions of various embodiments of the invention, this disclosure is illustrative only, and changes may be made in detail, especially in matters of structure and arrangement of parts within the principles of the present invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed. It will be appreciated by those skilled in the art that the teachings of the present invention can be applied to other systems without departing from the scope and spirit of the present invention. As an example, the shaft coupling 114 can be used to connect any a first shaft to any corresponding second shaft.
Filing Document | Filing Date | Country | Kind |
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PCT/US2014/058658 | 10/1/2014 | WO | 00 |