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Design and Verification of a Deep Rock Corer with Retaining the In Situ Temperature

机译:保留原位温度的深层岩石设计与验证

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Deep rock is always under high-temperature conditions. However, traditional coring methods generally have no thermal insulation design, which introduces large deviations in the guidance required for resource mining. Thus, a thermal insulation design that utilizes active and passive thermal insulation was proposed for deep rock corers. The rationale behind the active thermal insulation scheme was to maintain the in situ core temperature through electric heating that was controlled by using a proportional-integral-derivative (PID) chip. Graphene heating material could be used as a heating material for active thermal insulation through testing. In regard to the passive thermal insulation scheme, we conducted insulation and microscopic and insulation effectiveness tests for hollow glass microsphere (HGM) composites and SiO2 aerogels. Results showed that the #1 HGM composite (C1) had an excellent thermal insulation performance (3?mm thick C1 can insulate to 82.6°C), high reflectivity (90.02%), and wide applicability. Therefore, C1 could be used as a passive insulation material in deep rock corers. Moreover, a heat transfer model that considered multiple heat dissipation surfaces was established, which can provide theoretical guidance for engineering applications. Finally, a verification test of the integrated active and passive thermal insulation system (graphene heating material and C1) was carried out. Results showed that the insulating effect could be increased by 13.3%; thus, the feasibility of the integrated thermal insulation system was verified. The abovementioned design scheme and test results provide research basis and guidance for the development of thermally insulated deep rock coring equipment.
机译:深层岩石总是在高温条件下。然而,传统的芯片方法通常没有隔热设计,这在资源挖掘所需的指导中引入了大的偏差。因此,提出了利用主动和无源隔热的热绝缘设计用于深岩升。主动保温方案背后的基本原理是通过使用比例 - 积分 - 衍生物(PID)芯片来控制原位核心温度。石墨烯加热材料可以用作通过测试的用于主动热绝缘的加热材料。关于被动隔热方案,我们对中空玻璃微球(HGM)复合材料和SiO2气凝胶进行了绝缘和微观效果试验。结果表明,#1 HGM复合材料(C1)具有出色的保温性能(3×MM厚C1,可绝缘至82.6°C),高反射率(90.02%)和广泛的适用性。因此,C1可以用作深层岩石中的被动绝缘材料。此外,建立了一种考虑多个散热表面的传热模型,可以为工程应用提供理论指导。最后,进行了集成有源和无源隔热系统(石墨烯加热材料和C1)的验证试验。结果表明,绝缘效果可提高13.3%;因此,验证了集成隔热系统的可行性。上述设计方案和测试结果为热绝缘深层岩石设备的开发提供了研究依据和指导。

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