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首頁(yè)» 過(guò)刊瀏覽» 2020» Vol.5» Issue(3) 337-348???? DOI : 10.3969/j.issn.2096-1693.2020.03.029
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基于嵌入式技術(shù)的聲波測(cè)井陣列式聲系測(cè)試系統(tǒng)
劉棟,鞠曉東 ,盧俊強(qiáng),門(mén)百永
中國(guó)石油大學(xué)(北京)油氣資源與探測(cè)國(guó)家重點(diǎn)實(shí)驗(yàn)室,北京 102249
Embedded-technology-based acoustic logging array sonde testing system
LIU Dong, JU Xiaodong, LU Junqiang, MEN Baiyong
State Key Laboratory of Petroleum Resources and Prospecting, China University of Petroleum-Beijing, Beijing 102249, China

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摘要? 為增加測(cè)井解釋的準(zhǔn)確性,目前聲波測(cè)井儀器正向復(fù)雜陣列化發(fā)展,儀器的復(fù)雜化提高了對(duì)穩(wěn)定性的要 求,同時(shí)也增加了儀器聲系組裝、調(diào)試的難度。為提高測(cè)井設(shè)備研發(fā)和現(xiàn)場(chǎng)故障診斷的效率,更好地驗(yàn)證聲波 測(cè)井陣列式聲系的有效性、性能一致性,設(shè)計(jì)并實(shí)現(xiàn)了一種基于現(xiàn)場(chǎng)可編程門(mén)陣列(FPGA)的陣列式聲系 檢測(cè) 系統(tǒng),并應(yīng)用其進(jìn)行聲波測(cè)井陣列式聲系測(cè)試。測(cè)試中,通過(guò)標(biāo)準(zhǔn)接收換能器測(cè)試了測(cè)試系統(tǒng)發(fā)射裝置的幅度、 頻率調(diào)整范圍;通過(guò)標(biāo)準(zhǔn)發(fā)射換能器驗(yàn)證了測(cè)試系統(tǒng)接收裝置的接收一致性。并將測(cè)試系統(tǒng)應(yīng)用到實(shí)際聲系的 測(cè)試中,通過(guò)理論模擬與實(shí)際測(cè)量數(shù)據(jù)的對(duì)比分析,發(fā)現(xiàn)該系統(tǒng)能夠很好地檢測(cè)接收聲系各通道的有效性和一 致性,并單獨(dú)對(duì)發(fā)射聲系的單極子和偶極子模式進(jìn)行性能評(píng)價(jià),同時(shí)可以對(duì)換能器陣列進(jìn)行刻度,為實(shí)際測(cè)井 中資料處理作參考。本系統(tǒng)主要包括以下兩個(gè)部分:基于嵌入式uclinux系統(tǒng)和網(wǎng)絡(luò)互連的主從式系統(tǒng)架構(gòu),以 基于ARM技術(shù)的芯片為硬件核心,上位機(jī)通過(guò)以太網(wǎng)接口與嵌入式前端機(jī)通訊,實(shí)現(xiàn)發(fā)送控制命令與接收上傳 數(shù)據(jù)的功能,并完成數(shù)據(jù)處理、圖顯、存儲(chǔ)等任務(wù),嵌入式前端機(jī)與聲系檢測(cè)電路板通過(guò)擴(kuò)展I/O總線(xiàn)相連,完 成各調(diào)試功能的控制、數(shù)據(jù)采集、網(wǎng)絡(luò)互連等功能;基于FPGA的聲波發(fā)射裝置和接收裝置以及相應(yīng)的數(shù)據(jù)處 理模塊,聲波發(fā)射裝置由揚(yáng)聲器、波形發(fā)生電路、數(shù)模轉(zhuǎn)換電路、濾波電路及程控放大電路構(gòu)成,聲波接收裝 置由拾音器、濾波電路、程控放大電路及模數(shù)轉(zhuǎn)換電路構(gòu)成。該系統(tǒng)不僅可以快速檢測(cè)儀器聲系的工作狀態(tài), 而且能夠提高儀器研發(fā)和維修過(guò)程中的層次性、科學(xué)性和調(diào)試診斷的效率。
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關(guān)鍵詞 : 聲波測(cè)井;陣列式聲系;檢測(cè)技術(shù);FPGA;嵌入式
Abstract

In order to increase the accuracy of well logging interpretation, the acoustic logging tool array sonde is becoming more complex. The complexity of logging tools not only improves the requirement of stability, but also increases the difficulty of acoustic logging tool array sonde assembling and debugging. In order to solve the problem of long times and low precision debugging for an array acoustic sonde, and to verify the effectiveness and consistent performance of the sonde, a new embedded array sonde test system based on a field-programmable gate array (FPGA) was designed and implemented. In the experiment, the    amplitude and frequency adjustment range of the test system acoustic transmitting device was tested by the standard receiving transducer, and the consistency of the test system acoustic receiving device was verified by the standard transmitting transducer.  The test system was applied to a test of the actual acoustic sonde. Through the comparison and analysis of the theoretical simulation and the actual measurement data, it was found that the test system can detect the effectiveness and consistency of each channel of the acoustic receiving sonde, and evaluate the performance of the monopole and dipole of the transmitting acoustic sonde separately. At the same time, the test system can calibrate the transducer array, which can be used as a reference for data processing in actual well logging. This system mainly includes the following two parts, the first part is the master-slave system architecture based on an embedded uClinux system and network interconnection, with the chip based on ARM technology as the hardware core. The upper computer communicates with the embedded front terminal through the Ethernet interface, realizes the functions of sending control commands and receiving data, and completes the tasks of data processing, graphic display, storage, etc. The embedded front terminal connects with the circuit board of the test system through the extended I/O bus to complete the control, data acquisition, network interconnection and other debugging functions. The second part is the acoustic transmitting device and acoustic receiving device with a data processing module, which is based on a FPGA. The acoustic transmitting device is composed of a loudspeaker, waveform generating circuit, digital-analog conversion circuit, filtering circuit and program-controlled amplifying circuit. The sound wave receiving device is composed of a sound pickup device, filtering circuit, program-controlled amplifier circuit and analog-digital conversion circuit. The system can be effectively used in the performance assessment of an array acoustic sonde and transducer array calibrating, which contributes to improving the assembly and maintenance. efficiency of the acoustic logging tool.    


Key words: acoustic logging; array sonde; testing technology; FPGA; embedded
收稿日期: 2020-09-29 ????
PACS: ? ?
基金資助:國(guó)家自然科學(xué)基金項(xiàng)目(11734017、11374371)、國(guó)家科技重大專(zhuān)項(xiàng)(2017ZX05019001、2017ZX05019006) 和中國(guó)石油科技創(chuàng)新基金項(xiàng)目
(2016D-5007-0303) 聯(lián)合資助
通訊作者: [email protected]
引用本文: ??
LIU Dong, JU Xiaodong, LU Junqiang, MEN Baiyong. Embedded-technology-based acoustic logging array sonde testing system. Petroleum Science Bulletin, 2020, 03: 337-348.
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