The present disclosure provides interconnectable downhole instrument packages and a tool string containing multiple downhole instrument packages, especially adapted for oil and gas exploration.
Modern oil and gas exploration techniques rely heavily on the ability to measure the operating conditions and the formation environment while drilling. For example, directional drilling requires real-time monitoring of the inclination and azimuth of the wellbore at the location near the drill bit, which can be accomplished by using accelerometers and magnetometers. Further, data collected by the sensors are transmitted to the surface using a mud-pulse telemetry system or an electromagnetic telemetry system. Instruments that measure and transmit such directional information are often referred to as measurement-while-drilling (MWD) instruments/tools. Directional drilling also requires formation properties to guide the drill bit to reach the pay zone. The formation properties include density, porosity, resistivity, acoustic-caliper, magnetic resonance and formation pressure, each are measured by a special instrument. Instruments that measure formation properties are often referred to as logging-while-drilling (LWD). In this disclosure, MWD and LWD instruments may be used interchangeably and, together with the battery, be collectively referred to as downhole instruments. The numerous downhole instruments required for drilling need to be mechanically connected and/or electrically connected to form a tool string.
There is a need for interconnectable downhole instrument packages that are easy to install and replace, as well as mechanically strong.
In one embodiment of the current disclosure, an interconnectable downhole instrument package has a downhole instrument disposed in a pressure housing; a male connector assembly connecting to a first end of the downhole instrument; a female connector assembly connecting to a second end of the downhole instrument.
The male connector assembly has a first housing and a male rotatable connector that are connected together, while the female connector assembly has a second housing and a female rotatable connector. The second housing is adapted to receive the female rotatable connector.
The male rotatable connector has a first end comprising a plurality of cylinders that are sequentially and concentrically connected, and a second end adapted to receive a first plurality of electrical wires, a first plurality of electrical contacts disposed on the plurality of cylinders, and the female rotatable connector has a first end having a cavity having a plurality of steps adapted to receive the plurality of cylinders in the male rotatable connector, and a second end adapted to receive a second plurality of electrical wires.
In another embodiment of the current disclosure, the interconnectable downhole instrument package further include a lap joint having a first portion of the lap joint affixed inside the first housing and a second portion of the lap joint affixed inside the pressure housing.
According to one aspect of the embodiment, the first portion of the lap joint has a first channel and the second portion of the lap joint has a second channel, wherein the first channel and the second channel are connected.
According to another aspect of the embodiment, the second channel in the lap joint is connected to a slot in the second portion of the lap joint, wherein the slot is configured to receive an electrical connector.
According to a further aspect of the embodiment, the male connector assembly and the female connector assembly are configured to be connected together using a tubular fastener.
According to other embodiments in this disclosure, the downhole instrument is selected from a directional sensor, a battery pack, a pulser, a Gamma probe both non-focused and focused, an alternator, a gyroscope, a vibration monitor, a pressure sensor, an electromagnetic (EM) telemetry, a resistivity sensor, a nuclear logging tool, and an acoustic sensor.
In a further embodiment of the current disclosure, a tool string for downhole operation includes two or more interconnectable downhole instrument packages. The male rotatable connector in the first interconnectable downhole instrument package is connected to the female rotatable connector in the second downhole instrument package.
According to yet another embodiment, a method for characterizing a subsurface formation includes the steps of drilling a wellbore that extends into the subsurface formation; lowering the tool string in the wellbore; operating the tool string to obtain signals reflecting parameters of the subsurface formation; and transmitting the signals to a surface instrument for analysis. The tool string can be installed in the drill string and used in MWD and LWD operations. The tool string can also be used in the sonde for wireline-logging operation.
The teachings of the present invention can be readily understood by considering the following detailed description in conjunction with the accompanying drawings.
The following table lists the reference numerals in the drawings.
Reference will now be made in detail to embodiments of the present disclosure, examples of which are illustrated in the accompanying drawings. It is noted that wherever practicable, similar or like reference numbers may be used in the drawings and may indicate similar or like elements.
The drawings depict embodiments of the present disclosure for purposes of illustration only. One skilled in the art would readily recognize from the following description that alternative embodiments exist without departing from the general principles of the disclosure.
Referring again to
In a tool string having two or more adjacent interconnectable downhole instruments, the instrument packages are connected by having the male rotatable connector 5 of one interconnectable downhole instrument package inserted into the female connector assembly 4 of an adjacent interconnectable downhole instrument package, as illustrated in
Referring to
As shown in
Correspondingly, the distal portion of the female rotatable connector 4 forms a cavity having four steps corresponding to the four steps in the male rotatable connector 5. Each of the four steps in the female rotatable connector 4 also have contacts configured to form electrical connections with the conductor bands on the male rotatable connector 5 after assembly, such as Ramtac© available from RAMPART PRODUCTS.
The male rotatable connector 5 also have a machine key 506, while the housing 3 also has a machine key 303. When assembled, the machine keys 506 and 303 are locked in place by the split coupling 8 so that the male rotatable connector 5 and the housing 3 are integrated and adapted to rotate together. The machine key 506 can be made from metal or from an epoxy resin. For example, the epoxy machine key 506 is bonded to the solder cup end of the male rotatable connector using a mold. Liquid epoxy is poured into the mold and allowed to fully cure. The mold is then removed to obtain the machine key 506 affixed to the end of the male rotatable connector 5 as shown in
Further, as shown in
During installation, the proximal end 101 of the female connector assembly is connected to a first downhole instrument while wires/cables (e.g., 20b) from the first downhole instrument are soldered to the solder cups 401. Likewise, the distal end 302 is mechanically connected to a second downhole instrument while wires/cables (e.g., 20a) from the second downhole instruments are soldered to the solder cups 505. The second pressure housing 2B is threaded onto both the female connector assembly 1 and the male connector assembly 3. Subsequently, the male rotatable connector 5 can slide into the female rotatable connector 4 and firmly connected by tightened the second pressure housing 2B.
The downhole instrument 200 can be a directional sensor, a battery pack, or other instruments, e.g., a pulser, a Gamma probe both non-focused and focused, a battery, an alternator, a gyroscope, a vibration monitor, a pressure sensor, an electromagnetic (EM) telemetry, a resistivity sensor, a nuclear logging tool, or an acoustic sensor.
Modules such as shown in
While embodiments of this disclosure have been shown and described, modifications can be made by one skilled in the art without departing from the spirit or teaching of this invention. The embodiments described herein are exemplary only and are not limiting. Many variations and modifications of methods, systems and apparatuses are possible and are within the scope of the invention. Accordingly, the scope of protection is not limited to the embodiments described herein. The scope of protection is only limited by the claims. The scope of the claims shall include all equivalents of the subject matter of the claims.
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