Data Logger, Manufacturing Method Thereof and Real-time Measurement System Thereof
20170328197 · 2017-11-16
Inventors
Cpc classification
International classification
E21B21/08
FIXED CONSTRUCTIONS
Abstract
A data logger comprises a mainboard and a jacketing, wherein the mainboard is covered with the jacketing, wherein the data logger is capable to be carried by said drilling fluid traveled in borehole, wherein the data in borehole is collected by the mainboard of the data logger during traveling.
Claims
1. A data logger, comprising: a mainboard; and a jacketing, wherein the mainboard is covered with the jacketing, wherein the data logger is capable to be carried by said drilling fluid traveled in borehole, wherein the data in borehole is collected by the mainboard of the data logger during traveling.
2. The data logger, as recited in claim 1, wherein the main board of the data logger further comprises a controller, a sensor unit, a power unit, a communication unit and a board body for supporting the controller, the sensor unit, the power unit and the to communication unit together, wherein the sensor unit and the communication unit are controlled by the controller, wherein the controller, the sensor unit and the communication unit are supplied power by the power unit, wherein the sensor unit is capable to collect environment data which waited to be transmitted through the communication unit.
3. The data logger, as recited in claim 2, wherein the controller, the sensor unit, the power unit and the communication unit are electrically connected to each other.
4. The data logger, as recited in claim 2, wherein the main board of the data logger further comprises a storage unit, wherein the sensor unit is capable to collect environment data to be storage in the storage unit.
5. The data logger, as recited in claim 4, wherein the main board of the data logger further comprises a switch, wherein the switch is turned on to wake up the controller, the sensor unit, the storage unit and the communication unit.
6. The data logger, as recited in claim 5, wherein the switch is a photo detector.
7. The data logger, as recited in claim 5, wherein the communication unit further comprises at least one connector connected the storage unit to be read from outside the data logger.
8. The data logger, as recited in claim 7, wherein the communication unit is at least two pads connected to the surface of the data logger.
9. The data logger, as recited in claim 7, wherein the storage unit is a flash memory.
10. The data logger, as recited in claim 7, wherein the power unit further comprises a receiving unit and a rechargeable battery, wherein the receiving unit is received power to charge the rechargeable battery for the rechargeable battery provides power supply to the controller, the sensor unit, the storage unit, the switch and the communication unit.
11. The data logger, as recited in claim 5, wherein the sensor unit further comprises a pressure sensor, wherein the pressure sensor collects pressure data of environment as the data logger travels in borehole.
12. The data logger, as recited in claim 5, wherein the sensor unit further comprises a temperature sensor, wherein the temperature sensor collects temperature data of environment as the data logger travels in borehole.
13. The data logger, as recited in claim 11, wherein the pressure sensor further comprises a pressure sensor chip and a bonding elements, wherein the bonding elements is electrical connected and fixed the pressure sensor chip with the board body.
14. The data logger, as recited in claim 13, wherein the pressure sensor chip and the boding elements are packaged by a sealing layer which is covered a non-sensing area of the pressure senor chip to expose a sensing area of the pressure sensor chip.
15. The data logger, as recited in claim 14, wherein the pressure sensor further has a sensing channel formed by the sealing layer to make the sensing area of the pressure sensor chip efficient to sense the pressure and collect data of pressure.
16. The data logger, as recited in claim 15, wherein the sensing channel is formed integrated by the sealing layer.
17. The data logger, as recited in claim 16, wherein the data logger has diameter less than 7.5 mm.
18. A real-time measurement system with at least one data logger as recited in claim 5, comprising: an initiator for turning on the data logger; an injector to inject the data logger into borehole; a recoverer to get the data logger back from borehole; a data acquisitor to transmit data from the data logger for analyzing; and a charger for supplying power to the data logger.
19. A method of manufacturing the data logger as recited in claim 5, comprising following steps: assembly the main board of the data logger; placing the main board in a mould; pouring material of the jacketing between the main board and the mould; solidifying the jacketing and demoulding; placing the mould on the other side of the main board; pouring the material of the jacketing between the main board and the mould; and solidifying the jacketing and demoulding to be the data logger.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0125] The following description is disclosed to enable any person skilled in the art to make and use the present invention. Preferred embodiments are provided in the following description only as examples and modifications will be apparent to those skilled in the art.
[0126] The general principles defined in the following description would be applied to other embodiments, alternatives, modifications, equivalents, and applications without departing from the spirit and scope of the present invention.
[0127] One skilled in the art will understand the technical term used in the present invention, such as drilling, drillstring, shale shaker, drillpipe, drillcollar, drillbit, drilling fluid and so on, are sample of application situation of the preferred embodiments of the present invention.
[0128] A data logger 10 is provided in a preferred embodiment of the present invention, as shown in
[0129] The data logger 10 comprises a mainboard 11 and a jacketing 12, wherein the mainboard 11 is covered with the jacketing 12 to packaging the mainboard 11 to protect the mainboard 11. The jacketing 12 is made of chemical materials that is corrosion resistant, so as to encapsulate the mainboard 11 in a protective coating to be functional during operating. It is worth to mention that the jacketing 12 is compound by sealing materials and density control materials to avoid the data logger 10 to be effected by gravity since the mainboard 11 is almost made of electrical metal. Therefore, the data logger 10 is preferably adapted to drilling operation, which can be carried by the drilling fluid traveled the whole borehole and recycled by the drilling system.
[0130] A real-time measurement system 100, as shown in
[0131] As the density of the data logger 10 is to be controlled near to the drilling fluid, the data logger 10 can be carried by the drilling fluid to travel the whole borehole and be recycled to download data that collected in the borehole. The data logger 10 can collect several kinds of parameters during traveling, including pressure, temperature, acceleration, y -ray and so on and be to profile according to the time from initiation to acquisition which lasts up to 2 hours about 15,000 ft well.
[0132] In operation, it is preferably that several the data loggers 10 are inject in borehole and carried by the drilling fluid. It is worth to mention that each of the data logger 10 is individual which is hardly to affect others. It measures temperature, pressure and other parameters continuously after it is initiated by the initiator 20. The initiator 20 is preferably to be an optical signal transmitter. The initiator provides an optical signal to the data logger. This signal may be a visible light, or an invisible light including infrared light and ultraviolet light. The switch 121 in the data logger 10 receives the optical signal and wake up the data logger 10 from deep sleep mode. After the initiation, the data logger 10 is able to start measurement at adjustable sampling rate, for example, 1 second per sample or 2 seconds per sample. The sampling rate of the data logger 10 can be modified by programming. Each sampling cycle in different sampling rate, for example, in 1 second per sample, only 1/100 seconds is taken by the data logger 10 to complete the measurement and store the data. Data logger 10 is in power saving mode in other 99/100 seconds. The strategy of power management can help the data logger 10 work long enough with a limitation of the battery capacity.
[0133] When multiple the data loggers 10 are initiated by the optical signal sent from the initiator 20, they are all deployed into the top of drillpipe when making pipe connection. In one embodiment, the data loggers 10 are incorporated into a certain amount of high viscosity fluid to be injected into the drilling fluid. The data loggers 10 are circulated together with the drilling fluid inside the drillstring. Then they reach to the drillbit and pass through the nozzles. In operation, a short distance, for example, 10 ft should be kept between the nozzles and the bottomhole. This can reduce the impact force when the data loggers 10 hit on the bottom wall the well since the jet velocity from the nozzles is very high. The data loggers are circulated upward in the annulus section and reach to the shale shaker. The data loggers 10 and cuttings generated downhole during drilling operation are separated from the drilling fluid on the shale shaker. A group of magnetic strips are placed on the shale shaker, so the metal part inside the data loggers 10 can be attracted by the magnetic strips. All the survived data loggers 10 are retrieved on the magnetic strips. During the trip with the drilling fluid in the borehole, the data loggers always take measurement and store the measurement data continuously. The data loggers 10 are then connected to the data acquisitor 50 for the data downloading process.
[0134] The data logger 10 further comprise a shell 13 outside the jacketing 12 to enhance the resistance to chemicals. The shell 13 is optional since the jacketing 12 is well sealed the main board. It is worth to mention that the shape of the data logger 10 is selectable from ball, ellipsoid, hemisphere and so on which can be decide by the shell 13 or the jacketing 12.
[0135] A flow chart of the measurement system 100 is illustrated in
[0136] As disclosed above, the method of measurement of the measurement system 100 comprises following steps:
[0137] Initiating the data logger 10 to prepare to collect data;
[0138] Injecting the data logger 10 into borehole;
[0139] Collecting data by the data logger 10 which carried by drilling fluid;
[0140] Recovering the data logger 10 from the drilling fluid; and
[0141] Downloading data from the data logger 10.
[0142] Further, before injecting or after collecting data, the method further comprises following steps:
[0143] Charging the data logger 10.
[0144] The step of initiating the data logger 10 further comprises receiving a switch signal 200 to initiating the data logger 10.
[0145] The step of injecting the data logger 10 can be manual or mechanical, which the data logger 10 is forced by an injecting power 300.
[0146] In an alternative mode of the preferred embodiment, the step of downloading data and charging can be synchronous.
[0147] After downloading the data, the data logger 10 can be reused for next measurement.
[0148] Furthermore, as shown in
[0149] As illustrated in
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[0151] The controller 111 provides system control, data conversion and management of the data logger 10. It is preferably selected for ultra-small size, low power microcontroller in the market. The storage unit 116 may be an individual external memory chip to store the measurement data and other information including ID of the data logger. A photo detector 1211 detects the optical signal 200 sent from the initiator 20 and then enables the microcontroller to enter the work mode. The LED controlled by the controller 111, is used to inform the operator the status of the data logger 10. For example, when the data logger 10 is under charging, the LED stays on; when the data logger 10 is initiated, the LED turns off; when the data logger is sampling, the LED starts blinking; when the battery runs down, the LED turns off again.
[0152] The temperature sensor 1132 is an ultra-small size, low power and high precision component. The temperature sensor 1132 may be a digital output type, which has a microcontroller compatible interface for data management; or an analog output type, which need an analog-to-digital converter (ADC) inside the controller 111 to convert the output to the digital data so it can be stored into the storage unit 116.
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[0154] Downhole pressure measurement may vary from a few thousands psi to tens of thousands psi. Normally the accuracy of the ADC in the controller 111 is not high enough for the downhole pressure measurement. Therefore, in order to have a precise pressure measurement, an external high precision ADC may be used to convert the pressure measurement. This ADC may have low power consumption, high resolution with a compatible interface to the microcontroller.
[0155] In addition, the sensor unit 113 further comprises an accelerometer 1133, a γ-ray sensor 1134, a sonic sensor 1135, a PH sensor 1136 and a soil sensor 1137, wherein the accelerometer 1133 collects acceleration data, wherein the sonic sensor 1135 collects the sonic data, wherein the PH sensor 1136 collects the PH data, wherein the soil sensor 1137 collects the soil data. As some kinds of the sensor has requirement of reach the outside of the data logger 10 to feel the condition of the environment. One skilled in the art will understand that it risks to expose the main board 11 to the harsh environment. Therefore the sensors preferred to be die in module. The pressure sensor 1131 of the sensor unit 113 is made packaged and ensured valid. And the data will be acquired by the acquisitor 50 to be profile like
[0156] From the profile of the data that collected by the data logger 10, there can be more method to analyze the movement of the data logger 10 which is helpful for research about drilling and drilling fluid.
[0157] The data acquisitor 50, as shown in
[0158] Referring to
[0159] An exemplary embodiment of the connection established between the data logger 10 and the data acquisitor 50 is shown in
[0160] Another embodiment of linking the data logger 10 and the data acquisitor 50 is wireless connection. There are no pins installed in the ball seat. Antennas may be installed in the data logger 10 and the data acquisitor 50 for enhance wireless connection. The data stored in the data logger 10 is wirelessly transmitted to the data acquisitor 50, and then to the computer through the cable.
[0161] Furthermore, as shown in
[0162] In details, as shown in
[0163] Referring to
[0164] The charging circuit module 20 comprises the receiving induction coil 11411, the diode 11412, the current-limiting resistor 11413, the charge storage capacitor 11414 and the rechargeable battery 1142. When the receiving induction coil 11411 is aligned and positioned near the supplying induction soil 611, it is induced by the electromagnetic energy and create an electric current, the electron moves forward through the diode 11412 and current-limiting resistor 11413 to the charge storage capacitor 11414 and the battery 1142. So the power induced is rapidly stored in the charge capacitor 11414 and the battery 1142. The power stored in the charge storage capacitor 11414 is still used to charge the battery 1142 over an extended timeframe after the receiving induction coil 11411 stops receiving electromagnetic power. After charging process, the load 1143 in the device is powered by the battery 1142.
[0165] A circuit diagram of a supply circuit 61 in accordance with an embodiment of the present invention is shown in
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[0167] In this illustrated embodiment, a charging base station powered by an external power supply comprises a power supply circuit board, which is connected to the LCD voltmeter 613 and the potentiometer. A transmitter consist of the supplying induction soil 611 is also connected to the power supply circuit board and formed under the top surface of the charging base station. When charging process is started, the data logger 10 is place on the surface of the charging base station. The receiving induction coil 11411 in the data logger 10 is aligned and positioned near the supplying induction soil 611 on the top surface of the charging base station. The electromagnetic power generated by the supplying induction soil 611 can be adjusted by the potentiometer and observed by the voltmeter 613. The process may take a few minutes to several hours, depending on the charging voltage and the capacity of the battery.
[0168] And one of an optional of the receiving unit 1141 of the power unit 114 is illustrated in
[0169] It is worth to mention that the pressure sensor 1131 further comprises a pressure sensor chip 11311 and a bonding elements 11312, wherein the bonding elements 11312 is electrical connected and fixed the pressure sensor chip 11311 with the board body. The connection of the pressure sensor chip 11311 and the pressure sensor chip 11311 is shown in
[0170] The pressure sensor chip 11311 and the boding elements 11312 further are packaged by a sealing layer which is covered a non-sensing area 113112 of the pressure senor chip 11311 so as to expose a sensing area 113111 of the pressure sensor chip 11311. It is worth to mention that there is further a sensing channel 11314 formed by the sealing layer 11313 to make the sensing area 113111 efficient to sense the pressure and collect data of pressure.
[0171] In the preferred embodiment, the boding elements 11312 is directly connected and fixed the pressure sensor chip 11311 to the main body 110. Preferably, the bonding elements 11312 are chosen to be bonding wires which is connected electrically and physically.
[0172] In an alternative embodiment the bonding elements 11312 further comprises a sensor board 113122 to accept the pressure sensor chip 11311 out of the main board 11, at least one transfer pads 113121 to connected the pressure sensor chip 11311 to the sensor board 113122, and at least one transfer pins 113123 to connected the transfer pads 113121 to the main board 11. Also the bonding element 11312 is sealed in the sealing layer 11313 partly.
[0173] It is worth to mention that the sensing channel 11314 is formed by a tube as in
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[0175] In some other embodiments, the shape of the housing and pressure introducing channel can be other shapes, such as cubic or hexagonal. Also, small size tubes such as a needle tubing can be used as a pressure introducing channel.
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[0177] The output of the pressure sensor module is typically analog or digital. In some embodiments, an analog to digital converter (ADC) can be embedded in the module if an analog output is used. This ADC may have a low power consumption, high resolution and ultra-small size for the micro size pressure sensor module.
[0178] The preferred embodiment of the present invention further provides a method of manufacturing the data logger 10 and a mould 70 for packaging the data logger 10, as shown in
[0179] The method of manufacturing the data logger 10 comprises following steps:
[0180] Assembly the main board 11 of the data logger 10;
[0181] Placing the main board 11 in the mould 70;
[0182] Pouring the material of the jacketing 12 between the main board 11 and the mould 70;
[0183] Solidifying the jacketing 12 and demoulding;
[0184] Placing the mould 70 on the other side of the main board 11;
[0185] Pouring the material of the jacketing 12 between the main board 11 and the mould 70; and
[0186] Solidifying the jacketing 12 and demoulding to be the data logger 10.
[0187] The material of the jacketing 12 is preferably to be thermosetting adhesive, opticalsetting adhesive and so on. One of the material of the jacketing 12 is polymer epoxy resin which can be solid in common temperature.
[0188] Further, during pouring the material of the jacketing 12 further put density control materials inside, such as low density epoxy foam, aerogel, glass microsphere and so on, which is about 0.4-0.8 g/cc. Therefore the density of the data logger 10 is adjustable to be near to the density of the drilling fluid and the center of gravity is steady. As in
[0189] The method of manufacturing the by the shell 13, after the step of solidifying the jacketing 12 and demoulding to be the data logger 10, further comprises following steps:
[0190] Placing the main board 11 in the mould 70;
[0191] Pouring the material of the shell 13 between the main board 11 and the mould 70; and
[0192] Solidifying the shell 13 and demoulding.
[0193] Furthermore, as the sensor unit 113 needed to be touched to the environment, like the sensing channel 11314 of the pressure sensor, it is worth to mention that the shape of the mould 70 needs to be matched to the sensing channel 11314. As shown in
[0194] One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting.
[0195] It will thus be seen that the objects of the present invention have been fully and effectively accomplished. The embodiments have been shown and described for the purposes of illustrating the functional and structural principles of the present invention and is subject to change without departure from such principles. Therefore, this invention includes all modifications encompassed within the spirit and scope of the following claims.