DOWNHOLE TOOL MEASUREMENT DEVICE MOUNTING SYSTEM AND METHOD
20170102481 ยท 2017-04-13
Inventors
Cpc classification
E21B47/01
FIXED CONSTRUCTIONS
G01V11/005
PHYSICS
International classification
G01V11/00
PHYSICS
Abstract
A downhole tool measurement device mounting system and method and provided.
Claims
1. A mounting device for at least one sensor, comprising: a chassis; a first sensor area and a second sensor area in the chassis capable of housing a first sensor and a second sensor that measure a characteristic along a first axis and a second axis, respectively; and a sensor assembly mounted in a cavity of the chassis in a third sensor area wherein a sensing axis of the sensor assembly is orthogonal to the first and second axes and the sensor assembly is not coaxial with the chassis, the first sensor and the second sensor, the sensor assembly having a block and an orthogonal sensor mounted in the block to form a monolithic assembly that is secured into the cavity.
2. The mounting device of claim 1 further comprising a first sensor housed in the first sensor area and a second sensor housed in the second sensor area.
3. The mounting device of claim 2, wherein the first, second and orthogonal sensors are accelerometers.
4. The mounting device of claim 1 wherein the sensor assembly further comprises a retaining cap that is adjacent the orthogonal sensor and a retainer wherein the retainer secures the retainer cap and the orthogonal sensor to the block.
5. The mounting device of claim 4, wherein the retainer is a threaded retainer that screws into the block.
6. The mounting device of claim 1, wherein the orthogonal sensor has a flange that is captured by the block to secure the orthogonal sensor to the block.
7. The mounting device of claim 2 further comprising one or more circuit boards mounted on the chassis wherein at least one circuit board is mounted on a side of the chassis on which one of the first sensor, second sensor and orthogonal sensor are mounted.
8. The mounting device of claim 1, wherein the first sensor area and the second sensor area are each a cavity in the chassis.
9. The mounting device of 2, wherein each of the first, second and orthogonal sensors are one of a magnetometer and a gyroscope.
10. The mounting device of claim 1, wherein the third sensor area is located at any place along a length of the chassis.
11. The mounting device of claim 1 further comprising a passageway underneath the cavity in the chassis in the third sensor area for a set of wires connected to the orthogonal sensor.
12. The mounting device of 2, wherein each of the first, second and orthogonal sensors are one of a magnetometer sensor and a fluxgate magnetometer sensor.
13. The mounting device of 2, wherein the fluxgate magnetometer sensor is manufactured from an amorphous material.
14. The mounting device of 13, wherein the fluxgate magnetometer sensor is manufactured from a material having a BH loop index that exceeds 0.85.
15. A method for mounting one or more sensors to a chassis, the method comprising: mounting a first sensor and a second sensor to a chassis, wherein each sensor is capable of measuring a characteristic along a first axis and a second axis, respectively; mounting a third sensor assembly in a cavity of the chassis wherein a sensing axis of the third sensor assembly is orthogonal to the first and second axes and the third sensor assembly is not coaxial with the chassis, the first sensor and the second sensor; and wherein mounting the third sensor assembly further comprises mounting a third sensor into a block to form a monolithic assembly that is mounted into the cavity of the chassis.
16. The method of claim 15, wherein mounting a third sensor assembly further comprises inserting a retainer cap into the block after the third sensor and securing a retainer to the block to secure the retainer cap and the third sensor to the block.
17. The method of claim 15, wherein mounting the third sensor further comprises capturing a flange of the third sensor by the block to secure the orthogonal sensor to the block.
18. The method of claim 15, wherein mounting the third sensor assembly further comprises mounting the third sensor assembly along a length of the chassis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
[0011]
DETAILED DESCRIPTION OF ONE OR MORE EMBODIMENTS
[0012] The disclosure is particularly applicable to a downhole survey sensor with accelerometers and it is in this context that the disclosure will be described. It will be appreciated, however, that the mounting system and method has greater utility since it can be used to mount other types of sensors and may be used for a variety of different industries in addition to the drilling/boring examples described below.
[0013] In one implementation, an accelerometer may be mounted, but the mounting device and mounting method may be used for other sensors and the mounting of other sensors is within the scope of this disclosure. In one implementation, an accelerometer subassembly may be mounted into/onto features machined on/in a chassis body 12 as shown in
[0014]
[0015] In the example in
[0016]
[0017] Returning to
[0018] The mount, as shown in
[0019] In an alternative embodiment, the mount may mount a magnetometer sensor or a fluxgate magnetometer sensor. The magnetometer sensor or a fluxgate magnetometer sensor embodiment may also have an accelerometer or a group of accelerometers that are mounted on the downhole assembly. They magnetometer sensor or a fluxgate magnetometer sensor is an independent sensor commonly used in downhole assemblies. A magnetometer is a sensor system that measures a magnetic field. In a guidance system used in downhole assemblies, the common magnetic fields are from the earth's field or from other sources of magnetic fields such as interfering magnetic assemblies or adjacent wells with magnetic material in the well bores. Flux gate magnetometers are commonly used in downhole applications and all known downhole applications of flux gates use Permalloy material. Further details of magnetometers and flux gate magnetometers may be found in U.S. Pat. No. 6,972,563 which is incorporated herein by reference.
[0020] For a fluxgate magnetometer sensor, most modem fluxgate designs rely on a tape wound ring core approach which typically allows the combination of two orthogonal measurement axes on the same structure. The traditional material used is commonly known as Supermalloy, with a fairly high squareness BH loop index of some 0.75. Amorphous materials can offer improvements in squareness BH loop index to exceed 0.85 and much higher initial permeabilities, coupled with lower excitation current. All these qualities allow for a fluxgate structure which is smaller in size for equivalent sensitivity when compared with the traditional approach, plus lower drive current needs, which is highly beneficial since the typical measurement while drilling (MWD) string is battery operated. Amorphous material also exhibits lower magnetostriction effects, which produces better signal to noise ratios. The lower core losses verses temperature also allow the use of thicker ribbon, leading to a larger effective cross sectional area for a given OD/ID, which further improves the volumetric efficiency. An example of improved amorphous materials include Magnetic Metals DC annealed 9001.
[0021] While the foregoing has been with reference to a particular embodiment of the invention, it will be appreciated by those skilled in the art that changes in this embodiment may be made without departing from the principles and spirit of the disclosure, the scope of which is defined by the appended claims.