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Seeing Your Reflections Revealing Your Data in the World of Point Source, Point Receiver Acquisition - A Case Study

机译:看到你的反思,揭示了点源,点接收者采集的世界的数据 - 以案例研究

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Latest evolutions in seismic data acquisition have led to ever increasing improvements in resolution. Finer source and receiver sampling intervals, combined with a move away from receiver arrays have led to the acquisition of the fully sampled signal and noise fields. However, modern acquisition means potentially higher fidelity data is masked by noise requiring exceptionally careful processing and QC. Unmigrated Qusawhira raw stacks show little or no coherent energy, indicating that data noise content vastly outweighs signal. The Qusawhira processing flow employs successive algorithms to incrementally remove "layers" of noise generated through different mechanisms. Throughout each stage, QC data was broken down into frequency bands to identify noise and signal signatures while gauging the efficacy of processes employed. Selective Pre Stack Time Migrations (PSTM) were run to ensure the integrity of results. Applying the QC methodology outlined revealed unexpected results in several cases. Acquisition utilizing Geophone Accelerometers (GACs) requires integrating to velocity in order that processes behave as we expect in the velocity processing world. As GAC amplitude response increases at 6dB/Octave, low frequencies are suppressed. Correcting to velocity at a primary stage ensures that low frequency response can be thoroughly assessed. Acceleration to velocity correction on Qusawhira was considered a critical enabler for QC. In this paper I critically review initial seismic processing steps employed on the recently acquired Qusawhira "S4" survey and illustrate how seismic processing and QC must evolve with the changing nature of our data. Default processing parameters, including those hard coded, should be reviewed to ensure they are appropriate for modern broad band data. QC migrations should be performed at an early stage to confirm diffracted energy is not harmed.
机译:在地震数据采集最新的演进已经导致分辨率的改善不断增加。更精细的源和接收器的采样间隔,用从移动接收器阵列远组合导致了采集完全采样信号和噪声字段。然而,现代获取装置潜在的更高的保真度数据由噪声要求格外注意处理和QC掩蔽。未迁移Qusawhira原料堆显示很少或根本没有连贯的能量,极大地表明胜过信号数据的噪声内容。所述Qusawhira处理流程采用连续算法,以递增地除去“层”的通过不同的机制产生的噪声。贯穿每个阶段,QC数据被分解成频带噪声识别和信号特征,而计量的使用过程中的功效。选择性叠前时间迁移(PSTM)运行,以确保结果的完整性。应用概述的QC方法,揭示了在几种情况下意外的结果。采集利用地震检波器加速度计(GACS)需要整合到速度,以便过程表现为我们在速度处理世界的期望。如在6分贝/倍频程GAC振幅响应的增加,低的频率被抑制。校正到速度在初级阶段确保低频响应可以彻底评估。加速度到速度修正上Qusawhira被认为是QC的关键推动者。在本文中,我认真检讨对最近收购Qusawhira“S4”的调查中采用的初始地震数据处理步骤和说明QC必须处理如何地震,并与我们的数据性质的变化发展。默认处理参数,包括硬编码,进行审查,以确保它们适合于现代的宽带数据。 QC迁移应该在早期阶段进行,以确认衍射能量没有受到伤害。

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