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    1. 產品展廳>>項目研發>>基于壓裂停泵數據評價壓裂效果研究

      隨著油氣勘探向著復雜、低滲透和非常規儲層領域不斷開展,直井分段壓裂、水平井多段壓裂工藝等技術應用越來越廣泛。目前頁巖油藏普遍采用體積壓裂技術實現開發,其中識別裂縫類型及規模是壓裂現場急需攻克的國際難題。目前壓裂效果評價主要分為三大類,均不能很好地評價壓裂效果:

      1、物理監測手段:采用微地震、電位監測方法、廣域電磁法等實現裂縫識別,但該方法成本高、施工難度大、精度也不高,且無法獲得滲透率及地層壓力等參數。

      2、壓后壓力恢復測試:頁巖儲層壓力恢復測試不容易獲得準確的地層參數和原始地層壓力,且獲得的裂縫半長參數是多條裂縫的一個平均值,對壓裂效果的刻畫不夠細致。

      3、壓后試采數據分析:生產數據中的地面壓力和流量波動大,而且井筒多相管流使得壓力折算有較大的誤差,且壓后較長時間才能實施,這也導致返排數據分析方法難以獲得準確的地層參數。

      為了更好地提高儲層勘探開發效果,對壓裂效果開展評價分析,現場急需提出一種即時、準確、低成本的裂縫識別方法。

      基于停泵壓力數據的頁巖氣井壓裂裂縫評價方法研究

      國內外非常規油氣藏壓裂評價方法調研與應用案例剖析

      壓裂停泵數據分析方法在川南深層頁巖氣井適應性分析

      非常規油氣藏壓裂停泵數據分析模型優化

      非常規油氣藏壓裂停泵數據模型求解方法研究

      頁巖氣井停泵數據評價方法現場應用

      非常規油氣藏壓裂停泵數據分析方法現場試驗

      實施效果評價與分析方法優化

      四川盆地海相頁巖氣資源主要蘊藏在埋深大于3500m的深層,儲層具有埋藏深度大(大于3500m)、高溫(大于100℃)、高壓(大于70MPa)的特征,普遍采用多段壓裂水平井進行開發,單井開發成本超過3000萬元。為了穩定高效的開采頁巖氣,需要對壓裂效果進行評價,進而制定合理的后續燜井返排制度。

      通過本項目形成的壓裂停泵數據分析方法,僅需在壓裂過程中在井口安裝壓力計全程記錄壓裂過程中的壓力數據,后續采用數據分析的方法就可以評價壓裂規模,不僅成本遠低于微地震等物理手段且操作簡單方便。同時由于方法可以提供裂縫半長、滲透率等參數,還能夠指導后期燜井和返排方案,合理規劃產氣制度。

      Products>>Project Development>>Evaluation of fracturing effect based on fracturing pump shutdown data

      With the continuous development of oil and gas exploration towards complex, low permeability and unconventional reservoirs, technologies such as vertical well staged fracturing and horizontal well multi-stage fracturing are more and more widely used. At present, shale reservoirs are generally developed by volume fracturing technology, in which identifying fracture type and scale is an international problem that needs to be solved in-field. At present, the fracturing effect evaluation is mainly divided into three categories, which can not evaluate the fracturing effect well:

      (1) Physical monitoring means: micro seismic, potential monitoring method and wide area electromagnetic method are used to realize fracture identification, but this method has high cost, difficult construction, low accuracy, and can not obtain parameters such as permeability and formation pressure.

      (2) Post fracturing pressure recovery test: it is not easy to obtain accurate formation parameters and original formation pressure in the pressure recovery test of shale reservoir, and the fracture half-length parameter obtained is an average value of multiple fractures, so the description of fracturing effect is not detailed enough.

      (3) Post fracturing data analysis: the ground pressure and flow in the production data fluctuate greatly, and the wellbore multiphase pipe flow makes the pressure conversion have a large error, and it can be implemented for a long time after fracturing, which also makes it difficult for the flowback data analysis method to obtain accurate formation parameters.

      In order to better improve the effect of reservoir exploration and development and evaluate and analyze the fracturing effect, it is urgent to put forward a real-time, accurate and low-cost fracture identification method on site.

      Study on fracturing fracture evaluation method of shale gas well based on stop pump pressure data.

      Investigation and application case analysis of fracturing evaluation methods of unconventional oil and gas reservoirs at home and abroad.

      Adaptability analysis of fracturing pump stop data analysis method in deep shale gas wells in South Sichuan.

      Optimization of fracturing pump stop data analysis model for unconventional oil and gas reservoirs.

      Study on solving method of fracturing pump stop data model in unconventional oil and gas reservoir.

      Field application of data evaluation method of shale gas well pump shutdown.

      Field test of fracturing pump stop data analysis method for unconventional oil and gas reservoir.

      Implementation effect evaluation and analysis method optimization.

      Marine shale gas resources in Sichuan Basin are mainly contained in deep layers with burial depth greater than 3500m. The reservoir has the characteristics of large burial depth (greater than 3500m), high temperature (greater than 100 ℃) and high pressure (greater than 70MPa). Multi-stage fracturing horizontal wells are widely used for development, and the development cost of a single well exceeds 30 million yuan. In order to stably and efficiently exploit shale gas, it is necessary to evaluate the fracturing effect and formulate a reasonable shut-in and flowback system.

      Through the fracturing pump shutdown data analysis method formed in the project, it is only necessary to install a pressure gauge at the wellhead during the fracturing process to record the pressure data in the whole process, and the subsequent data analysis method can be used to evaluate the fracturing scale, which is not only much lower than the physical means such as micro-seismic, but also simple and convenient to operate. At the same time, because the method can provide parameters such as fracture half-length and permeability, it can also guide the shut-in and flowback scheme in the later stage, and reasonably plan the gas production system.

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