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Key points of the design of a nodal acquisition system for seismic exploration |
YAN Wei( ) |
Equipment Service Department, BGP Inc., China National Petroleum Corporation, Zhuozhou 072750, China |
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Abstract The requirements for the design and manufacturing of nodal devices are relatively low. The most basic modules of a nodal device include controllers, acquisition circuits, GNSS timing circuits, geophones, batteries, interfaces, downloading cabinets, data downloading & compositing servers, optional testing circuits, signal generators, and QC manuals. As mature supply chains are available for all the above modules, manufacturers pay more attention to organically integrating the above modules into products that can stably work and meet the needs for the signal acquisition of seismic exploration. However, the absence or neglect of some details in some products on the market due to design or cost considerations will cause difficulties in the field application of seismic data acquisition. The data acquisition quality of the nodal devices relies entirely on the independent performance and stability of each nodal device, which further rely entirely on the manufacturers’ understanding of signal acquisition for seismic exploration and data acquisition operations and the resultant design. The requirements of oil and gas exploration and development in new situations must be considered in the design of nodal devices. The focus of oil and gas exploration and development is constantly shifting to deep and ultra-deep parts with more complex ground surfaces, and thus high precision and resolution are required for signal pickup. As a result, nodal devices should be more capable of acquiring weak signals and broadband signals, which cannot be compromised in the design. This paper elaborates on the fundamental details of signal acquisition, test functions, circuit design, storage, batteries, profile, auxiliary systems, quality control, and auxiliary devices in order to avoid problems such as signal distortion, coupling, and EMC.
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Received: 20 August 2021
Published: 21 June 2022
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项目 | 技术指标 | A级 | B级 | C级 | 采样间隔/ms | 按照用户需求计算确定 | 0.25,0.5,1,2,4 | 0.5,1,2 | 前放增益/dB | 按照用户需求计算确定 | 0,12,24和36中至少有三档 | 0,12,24和36中至少有两档 | 道增益一致性 | ≤0.5% | ≤1.0% | ≤3.0% | 共模抑制比 | ≥120 dB | ≥100 dB | ≥80 dB | 总谐波畸变 | ≤0.0001% | ≤0.0005% | ≤0.001% | 动态范围 | ≥120 dB | ≥110 dB | ≥95 dB |
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Working mode and parameters of seismic instruments
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采样间隔/ms | 前放增益/dB | 最大等效输入噪音/μV | A级 | B级 | C级 | 0.25 | 0 | ≤5 | ≤20 | ≤60 | 12 | ≤1 | ≤5 | ≤15 | 24 | ≤0.4 | ≤1.3 | ≤4 | 36 | ≤0.1 | ≤0.5 | ≤1 | 0.5 | 0 | ≤0.8 | ≤3 | ≤3 | 12 | ≤0.2 | ≤0.8 | ≤1.5 | 24 | ≤0.1 | ≤0.35 | ≤0.6 | 36 | ≤0.06 | ≤0.3 | ≤0.5 | 1 | 0 | ≤0.5 | ≤2 | ≤3 | 12 | ≤0.15 | ≤0.6 | ≤0.75 | 24 | ≤0.05 | ≤0.2 | ≤0.36 | 36 | ≤0.04 | ≤0.15 | ≤0.3 | 2 | 0 | ≤0.4 | ≤1.5 | ≤1.6 | 12 | ≤0.1 | ≤0.4 | ≤0.45 | 24 | ≤0.05 | ≤0.2 | ≤0.25 | 36 | ≤0.04 | ≤0.13 | ≤0.22 | 4 | 0 | ≤0.5 | ≤1 | ≤1.5 | 12 | ≤0.07 | ≤0.3 | ≤0.4 | 24 | ≤0.04 | ≤0.15 | ≤0.2 | 36 | ≤0.03 | ≤0.1 | ≤0.15 |
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Equivalent input noise of seismic instruments
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MEMS based digital seismic instrument
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Records collected by two channels at the same position and time under the high-voltage line Channel No.1—geophone with magnetic cylinder shield;Channel No.2—geophone without magnetic cylinder shield
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Examples of wiring and moisture-proof
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Examples of coupling parts
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