The invention relates to the field of tools related to wells. More particularly, the invention relates to power tongs for making and breaking joints between sections of pipe.
Drill strings, used in drilling wells, comprise drilling and well tools attached to sections of drill tubing. As the string is lowered into the well, additional sections of tubulars are added to extend the string's length. These sections of pipe are connected via threaded sections on each end, sometimes referred to as “pin” and “box,” representing the male and female portions of the pipe section. The drill string is held in place while the new section of pipe is rotated into connection with the next pipe. Likewise, tubular sections may be removed by rotating the pipe section in reverse.
Connection and disconnection of drill string tubulars is typically accomplished by a mechanical device such as an iron roughneck. A power tong device is used to rotate the section of pipe. A typical power tong will employ low torque, high speed rotation of the pipe up until full connection with the next pipe. Then the tong will shift into a low speed, high torque setting to complete the mating. By the same vein, when removing pipe, power tongs use the high torque setting to break the joint, and then shift into high speed, low torque rotation to unthread the tubular.
Power tongs must sufficiently grip the tubular section before applying torque. Hydraulic gripping systems located within the rotating portion of a power tong require rotary seals to transfer fluid from the fixed portion of the tong to the rotating portion. These rotary seals can sometimes leak and may wear out. It is therefore desirable to provide a power tong without rotary seals.
A power tong is provided with a self-contained hydraulic power system. Energy applied from the non-rotating portion of the power tong is transferred to a mechanical link that links the fixed portion with the rotating portion of the power tong. The mechanical link transfers its mechanical energy to a hydraulic system affixed to the rotating portion of the power tong. The hydraulic system then extends one or more grippers to grip a tubular inserted in the tong. Multiple mechanical links are contemplated. In one embodiment, one mechanical link provides energy to extend the one or more grippers. A second mechanical link provides the energy to retract the one or more grippers. In another embodiment, one mechanical link provides energy to both extend and retract the one or more grippers. The one mechanical link may be located above or below the rotating portion of the power tong.
According to one embodiment, the power tong provided comprises a fixed body, a rotating body, at least one gripper affixed to the rotating body, a first mechanical link configured to extend the at least one gripper, and a second mechanical link configured to retract the at least one gripper. According to another embodiment, the power tong further comprises at least one hydraulic cylinder affixed to the rotating body and attached to the first mechanical link, wherein the at least one hydraulic cylinder is configured to convert mechanical energy from the first mechanical link to hydraulic energy for the at least one gripper. In yet another embodiment, the power tong further comprises at least one hydraulic cylinder affixed to the fixed body and attached to the first mechanical link, wherein the at least one hydraulic cylinder is configured to convert hydraulic energy to move the first mechanical link.
According to another embodiment, the first mechanical link of the power tong is attached to both the fixed body and the rotating body, and the second mechanical link is attached to both the fixed body and the rotating body. In yet another embodiment, the first mechanical link further comprises bearings between the portion of the first mechanical link attached to the fixed body and the portion of the first mechanical link attached to the rotating body, and the second mechanical link further comprises bearings between the portion of the second mechanical link attached to the fixed body and the portion of the second mechanical link attached to the rotating body.
In another embodiment, the power tong further comprises at least one main gripper cylinder attached to the at least one gripper for extending and/or retracting the at least one gripper. In one embodiment, the power tong further comprises at least one pilot-to-open valve attached to the at least one main gripper cylinder, wherein the at least one pilot-to-open valve is configured to provide one-way hydraulic fluid to the at least one main gripper cylinder. In yet another embodiment, the second mechanical link is configured to convert the at least one pilot-to-open valve to a two-way valve to allow fluid to exit the at least one main gripper cylinder.
In one embodiment, the power tong comprises at least one hydraulic cylinder affixed to the fixed body and attached to the second mechanical link, wherein the at least one hydraulic cylinder is configured to move the second mechanical link. In another embodiment, at least one electric motor configured to rotate the rotating body of the power tong. In one embodiment, the first mechanical link is disposed above the rotating body, and the second mechanical link is disposed below the rotating body.
In yet another embodiment, at least the fixed body, the rotating body, the first mechanical link, and the second mechanical link are configured to be split into two halves. Likewise, other components may be split in the power tong, such as a bull gear and bearings. This allows for removal of the power tong from the rig floor in emergency situations, for example, without impacting the drilling string. Where hydraulic lines are concerned, quick disconnects are used to facilitate the split of the power tong.
In one embodiment, the power tong comprises, a fixed body, a rotating body, at least one gripper affixed to the rotating body, a first mechanical link configured to extend the at least one gripper, wherein the first mechanical link is attached to both the fixed body and the rotating body, and a second mechanical link is configured to retract the at least one gripper, wherein the second mechanical link is attached to both the fixed body and the rotating body. In another embodiment, the power tong further comprises at least one hydraulic cylinder affixed to the rotating body and attached to the first mechanical link, wherein the at least one hydraulic cylinder is configured to convert mechanical energy from the first mechanical link to hydraulic energy for the at least one gripper.
In one embodiment, the power tong further comprises at least one hydraulic cylinder affixed to the fixed body and attached to the first mechanical link, wherein the at least one hydraulic cylinder is configured to move the first mechanical link. In another embodiment, a self-contained hydraulic system is affixed to the rotating body, configured to accept mechanical energy from the first mechanical link. In another, a self-contained hydraulic system is affixed to the rotating body, configured to accept mechanical energy from the second mechanical link. In another embodiment, a self-contained hydraulic system is affixed to the fixed body, configured to impart mechanical energy to the first mechanical link. In yet another embodiment, a self-contained hydraulic system is affixed to the fixed body, configured to impart mechanical energy to the second mechanical link.
The foregoing has outlined rather broadly the features and technical advantages of the present disclosure in order that the detailed description of the disclosure that follows may be better understood. Additional features and advantages of the disclosure will be described hereinafter which form the subject of the claims of the disclosure. It should be appreciated by those skilled in the art that the conception and specific embodiment disclosed may be readily utilized as a basis for modifying or designing other structures for carrying out the same purposes of the present disclosure. It should also be realized by those skilled in the art that such equivalent constructions do not depart from the spirit and scope of the disclosure as set forth in the appended claims. The novel features which are believed to be characteristic of the disclosure, both as to its organization and method of operation, together with further objects and advantages, will be better understood from the following description when considered in connection with the accompanying figures. It is to be expressly understood, however, that each of the figures is provided for the purpose of illustration and description only and is not intended as a definition of the limits of the present disclosure.
For a more complete understanding of the disclosed system and methods, reference is now made to the following descriptions taken in conjunction with the accompanying drawings.
There is provided a power tong apparatus for use in well equipment. According to one embodiment,
Bull gear 2, according to the embodiment shown in
Power tong 100, according to the embodiment depicted in
One of the issues with power tongs employing rotating bodies is providing sufficient hydraulic power to grip the tubular. The transfer of hydraulic energy to the hydraulic system located within the rotating body, in the prior art, requires cumbersome rotary seals. Rotating body 120, according to the embodiment of the present disclosure shown in
Outside gripper cylinders 7 reside in the fixed body 110 portion of power tong 100. According to the embodiment shown in
It is understood that many types of hydraulic cylinders may be used for the hydraulic systems of the present disclosure, such as a piston cylinder, plunger cylinder, differential cylinder, telescopic cylinder, and position-sensing cylinder. One skilled in the art would understand that alternative cylinder designs may be selected according to strength, cost, size, weight, force, ability to exert force in two directions, and other design parameters.
Within rotating body 120, grippers 27 make connection between rotating body 120 and the tubular, allowing power tong 100 to transfer torque to the tubular. In the embodiment shown in
According to the embodiment in
It should be understood that the disclosed embodiment of
To retract grippers 27, according to the embodiment shown in
At the same time the third port on POC valves 8 is pressurized to allow grippers 27 to relax into the open position, directional control valve 23 directs hydraulic power to reverse outside gripper cylinders 7. Upper mechanical link 6 thus moves upward, away from rotational body 120, thereby allowing hydraulic fluid to return from main gripper cylinders 3 through POC valves 8 to gripper supply cylinders 4. According to one embodiment, the negative pressure from gripper supply cylinders 4 pulls hydraulic fluid from main gripper cylinders 3, thus lessening or even removing the need for compression return springs within main gripper cylinders 9.
According to the embodiment shown in
According to one embodiment depicted in
Although the embodiment disclosed in
Although the present disclosure and its advantages have been described in detail, it should be understood that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the disclosure as defined by the appended claims. Moreover, the scope of the present application is not intended to be limited to the particular embodiments of the process, machine, manufacture, composition of matter, means, methods and steps described in the specification. As one of ordinary skill in the art will readily appreciate from the present invention, disclosure, machines, manufacture, compositions of matter, means, methods, or steps, presently existing or later to be developed that perform substantially the same function or achieve substantially the same result as the corresponding embodiments described herein may be utilized according to the present disclosure. Accordingly, the appended claims are intended to include within their scope such processes, machines, manufacture, compositions of matter, means, methods, or steps.