
泥漿脈沖遙測(MPT)技術是油氣上游領域實時數據傳輸的核心技術。隨著鉆井實時數據傳輸量的不斷增加,對高可靠性、高速MPT(HSMPT)技術的需求在不斷增長,目前全球很多地區都在使用該技術。然而,由于MPT技術應用環境及其要求的不斷變化,現有HSMPT系統的可靠性受到了諸多挑戰,例如實現海上現場服務工程師和遠程技術支持人員之間的相互交流等。
貝克休斯的自動化HSMPT系統結合了先進的自動化和信號處理技術,同時提高了數據的傳輸速度和可靠性。目前,aXcelerate PLUS系統已成功應用在了許多超深水鉆井環境,該系統一般裝配在復雜的井下鉆具(BHA)上,同時還提供多種LWD服務,可以帶來優質的數據密度,而且不影響整體機械鉆速(ROP)。出色的使用效果證明了自動化HSMPT系統具有打破技術局限性的能力,以安全、經濟可行的方式完成鉆井作業。
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HSMPT最初只是為了滿足地層評價(FE)的需要,以實現工作過程中實時數據傳輸的作用,后來HSMPT的使用逐漸擴展到極端井下環境,例如HP/HT井和高粘度鉆井液環境,為鉆井自動化、優化服務、井眼定位和隨鉆測壓服務提供數據傳輸功能。
隨著技術的進步,新的FE測量模塊已被加到BHA中,同時將一些傳統的FE測量模塊從電纜測井轉到了LWD上,因此更多的鉆井優化數據需要進行實時傳輸。鉆頭技術和整個鉆井過程的改進提高了平均ROP,因而需要更快的傳輸速度來保證數據密度一致。通常,HSMPT能夠提供的井下過程相關信息對HSE合規性和降低技術風險至關重要,應用結果表明,這些改變很大程度上增加了鉆井作業實時傳輸的數據量。
同時,鉆井過程中出現的新問題使一般的MPT高傳輸速率變得復雜化,隨著作業井深逐漸增加,泥漿液柱造成的MPT信號衰減越來越嚴重。在使用極具挑戰性的泥漿體系(如高密度、高塑性粘度、高固相含量)的應用中,對傳輸速度要求更高。其他的鉆井優化工具(如水力振蕩器)在BHA中的添加也增加了HSMPT信道的噪聲。
目前,MWD和FE工具已經變得比以前更可靠,并能承受更高級別的振動和粘/滑(VSS),在鉆井過程中可接受的VSS等級也提高了。但這些高級別的VSS對解碼性能產生了負面影響。此外,在現在應用越來越普遍的大位移井中,MPT已能兼容地面高扭矩和鉆井VSS。
鉆機、設備、泥漿和管柱變化將導致MPT所處的井下環境及地面狀況產生變化,這些情形增加了系統的復雜性,這也對系統克服不同作業環境的差異提出了新的要求。
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雖然10比特/秒(bps)或更高的HSMPT數據率在現場已使用了大約十年,但由于缺乏可靠性,對現存技術的問題需要進行全面分析。結論是通過使手動操作自動化,以及使用先進的信號處理技術可帶來明顯的改善效果。
新的HSMPT系統將自動化應用于每個現場操作步驟來簡化操作,節省了時間并避免容易出錯的步驟,如手動輸入數據。當某個傳輸參數已配置在了一個系統上,此信息將被自動分發下去。此外,如流量、深度及其他現場作業中測量到的數據,將使用配置的傳輸參數進行保存。
簡化版的HSMPT系統包含一個井下發射器(脈沖發生器)、泥漿信道和在工具表面側邊的接收器,通常有一個或多個壓力傳感器。引起MPT傳輸數據失真的主要來源是泥漿信道和其他可變的失真因素。為了減少失真、改善信號處理過程,該系統采用特別的信號序列來自動調整適應過濾器。
脈沖發生器定期向外發送序列,使地面系統做出調整以適應過濾器來改變信道狀況。該過濾器的性能已經經過了測試,并按質量指標保存到了數據庫,以便現場人員通過更好的決策來優化解碼質量。改良的信號處理算法明顯提高了自動化系統的成功率,提高了解碼的質量和可靠性。
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新HSMPT系統在許多超深水鉆探區的廣泛應用中,獲得100%的成功率,所有這些應用都需要大量的實時數據以做出準確的決策。該工具已在全球入井超過60多次,經受了超過5000小時的循環時間和3000多小時的純鉆時間考驗,每次作業都能獲得超過10bps的物理數據傳輸速率。該技術可以應用于油基和水基泥漿環境,井深最大8000米(26247英尺)。已成功應用于多種泥漿體系,例如有40趟入井泥漿的PV大于20厘泊(cP),有超過10趟入井泥漿的PV大于40厘泊(cP)。
新的HSMPT系統諸多成功應用案例中,典型之一是在英國北海的一次應用,當時使用的BHA是全球最長、最復雜的BHA之一。系統有能力可靠地傳輸更多的實時數據,幫助作業者在BHA中加入了多套鉆井和LWD服務,提供更多實時參考數據。在一次油基泥漿PV為34cP極具挑戰性的應用中,新系統能提供高達15bps的數據傳輸率。一趟鉆完成4635米到6611米(15207英尺到21690英尺)的鉆進,循環時間為184小時,確保了較高的工作效率。
增強的HSMPT可靠性和數據傳輸率,意味著該技術可應用于最復雜的鉆井環境,包括超深水鉆井以及泥漿條件要求苛刻的環境,這些情況以前都需要手工作業而且還有數據率降回10bps以下的潛在風險。
自動化和易用性擴大了HSMPT的使用范圍,減少了技術支持中心和現場工程師不必要的工作量。使得現場服務工程師在鉆井作業期間專注于為作業者提供更多的參考數據來提高效率與安全性,以降低總鉆井成本。
來自/Baker Hughes ? ? 譯者/白小明 ? ? 編輯/Lemon
Mud pulse telemetry (MPT) is the core real-time data transmission technology in the upstream oil and gas industry. The need for reliable high-speed MPT (HSMPT) has grown as the amount of real-time data required while drilling has increased, and it is now used across many regions of the globe. Yet the changing requirements for MPT and the environment in which it must operate have raised complications that have threatened the reliability of existing HSMPT systems to the point where a very high level of user interaction from offshore field service engineers and remote operations support personnel is required.
A new automated HSMPT system from Baker Hughes combines higher automation levels and advanced signal processing to increase both speed and reliability of data transmission. The aXcelerate PLUS system has performed successfully in complex bottomhole assemblies (BHAs) in many ultradeepwater drilling environ- ments, with many LWD services and with outstanding data density and no reduction in ROP. The impressive results demonstrate the ability of an automated HSMPT to expand the technical limit for safe and economically viable drilling operations.
Growing challenges
Initially seen as the real-time data transmission provider for all required formation evaluation (FE) information, HSMPT usage has expanded to provide the enabling data transmission for drilling automation and optimi- zation services and advanced wellbore positioning and pressure-while-drilling services in extreme downhole conditions such as HP/HT wells and high-viscosity drill- ing mud environments. New FE measurements have been incorporated into BHAs. Some traditional FE measurements have moved from wireline to LWD, and additional drilling optimization data are now transmit- ted in real time. Improvements in bit technology and overall drilling procedures have increased average ROP, requiring additional transmission speed to maintain the same data density per meter drilled. Often, the full com- plement of downhole processes that can be provided by HSMPT is critical for HSE compliance and for technical risk reductions. These changes have signifcantly raised the amount of real-time data required while drilling.
At the same time, additional challenges have emerged that complicate MPT in general and high- transmission speeds in particular. As wells are drilled deeper, the mud column that attenuates the MPT signal increases. More challenging mud systems with high density, high plastic viscosity (PV) or high solids content are used in applications that demand a high transmission speed. Additional drilling optimization tools (e.g., agitators) have been added to BHAs and create superimposed noise to the HSMPT channel.
As drilling, MWD and FE tools have become more reli- able and able to withstand higher levels of vibration and stick/slip (VSS), acceptable VSS levels during drilling have risen. These high VSS levels negatively affect decoding performance. Additionally, extended-reach applications, which are now much more com- mon than previous- ly, experience high surface torque and drilling VSS that compromises MPT.
Strong variations in rigs, equipment, mud and piping lead to changing environments for the MPT system downhole as well as at surface. This situ- ation increases the complexity of the required system to overcome the difference in operating environments.
The reliability issues that often result from the chang- ing requirements and more challenging environments in which HSMPT must function have elevated required user interaction levels, frequently forcing feld engineers to redirect their focus from delivering answers to main- taining highly complex tools.
Finding a solution
Although HSMPT data rates of 10 bits per second (bps) or more have been recorded in the feld for about a decade, lack of reliability forced a thorough analysis of existing problems. The conclusion was that signifcant improvement can be achieved through the automation of manual processes and advanced signal processing.
The new HSMPT system applies automation in every feld operation to simplify operations, save time and elim- inate error-prone tasks such as manually reentering data. When a transmission parameter already is confgured in one system, this information is automatically distributed. Additionally, conditional data such as fow rate, depths and other information measured are gathered during feld operations and saved with the transmission parameters.
The simplifed HSMPT system consists of a downhole transmitter (the pulser), the mud channel and the receiver on the surface side, which usually has one or more pressure transducers. The main distortion sources for MPT data transmission are the mud channel and additional variable distortions. To reduce distortion and improve signal processing, special signal sequences automatically adjust adaptive flters. The pulser sends out the sequences regularly, enabling the surface system to tune the adaptive flters for changing channel con- ditions. The flter performance is tested and saved into a database with quality indicators, which enable feld personnel to optimize decoding quality through better decision-making (Figure 1). Enhanced signal process- ing algorithms on the surface signifcantly increase the success rate of the automated system and improve the decoding quality and reliability.
Successful feld performance
The new HSMPT system has enjoyed 100% success rates in many ultradeepwater drilling regions in a wide range of applications, all of which require a signifcant amount of real-time data to enable accurate decision-making. The technology has been used in more than 60 runs, with more than 5,000 circulating hours and more than 3,000 drilling hours. Physical data rates higher than 10 bps were reliably achieved while drilling in every job. The technology was deployed in both oil-based and water-based mud environments with measured depth of up to 8,000 m (26,247 ft). Different mud systems were used, with PV higher than 20 centipoise (cP) in 40 runs and higher than 40 cP in 10 runs.
Among successful applications of the new HSMPT sys- tem was its deployment in one of the longest and most sophisticated BHAs worldwide, in the North Sea. The system’s ability to reliably transmit more real-time data enabled the operator to deploy a BHA incorporating numerous drilling and LWD services to provide more answers in real time (Figure 2). The new system pro- vided up to 15 bps data rate in a challenging oil-based mud system with a PV of 34 cP. The drilled section, from 4,635 m to 6,611 m (15,207 ft to 21,690 ft) measured depth, was drilled in one run with 184 circulating hours.
Increasing HSMPT data rates and reliability means that the technology can now be run in complex drilling environments—including ultradeepwater wells and rigs with demanding mud conditions—that previously required significant manual effort and a potential fall- back to data rates below 10 bps. Automation and ease of use expand operating limits for HSMPT activities and reduce unnecessary workloads from technical support centers and field engineers. Allowing field service engineers to concentrate on delivering more answers to the operator improves efficiency and safety while drilling and reduces overall drilling cost.
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