Physics World 10月16日 19:02
地球深部地热系统三维成像助力地震预警与能源开发
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日本和台湾的研究人员首次成功获取地球深部地壳完整地热系统的三维图像。通过绘制地下断裂带和与地震活动相关的相变等现象的分布,这项研究有望改进地震早期预警模型。此外,研究负责人辻健(东京大学)指出,该技术还有助于开发下一代地热发电技术,这种技术具有巨大的清洁能源潜力。清晰的三维图像能够揭示超临界流体的位置和流动方式,从而帮助确定有前景的钻探目标,并设计更安全高效的开发方案,对扩大地热发电、减少对化石燃料的依赖以及实现日本乃至全球的碳中和与能源安全具有直接意义。

🗺️ 研究团队利用三维多道地震勘探技术,对日本九州岛九重火山群的地热结构进行了成像,并开发了一种名为扩展公共反射面(CRS)叠加的分析方法,从而可视化了更深层的地下特征,包括岩浆相关结构、断裂控制的流体通道以及“封存”超临界流体的岩层。

🌋 研究重点是脆韧性转变带,这一区域的岩石从地震活跃状态转为不活跃状态,对于理解火山活动和地热过程至关重要,因为它靠近一个不渗透的封闭带,使得水等流体在高压超临界状态下聚集,这些流体的相变可能引发地震,但也蕴藏着比传统系统更多的地热能,因此识别其位置至关重要。

⚡ 传统电磁和大地电磁调查的空间分辨率较低,且局限于地球表面较近区域,而这项最新的研究技术能够创建深部地热储层的高分辨率“数字地图”,这在以前是从未实现的。结合先进的地震层析成像和基于机器学习的分析,研究人员能够高精度地确定特定结构和地震机制的地震速度。

⛰️ 新技术更适用于道路交通不便的山区地热区域,在这些区域部署传统地震勘探所需的震源和接收器非常困难。研究团队选择九重地区进行研究,因为该地区拥有大约1600年前活跃的几座火山,近年来也间歇性喷发,并且拥有日本最大的地热发电厂——八丁原发电厂,被认为是未来超临界地热能生产的有希望的地点。

💧 该地区的地热储层被认为主要由最初以降水形式落到地面(称为大气降水)的水组成,这些水在地下受热后通过断层系统向西迁移。这项研究为下一代超临界地热发电提供了科学和技术基础,研究人员计划进一步利用便携式地震源和传感器在山区更详细地成像地热系统的浅层部分,并推广到其他地热田。

Researchers in Japan and Taiwan have captured three-dimensional images of an entire geothermal system deep in the Earth’s crust for the first time. By mapping the underground distribution of phenomena such as fracture zones and phase transitions associated with seismic activity, they say their work could lead to improvements in earthquake early warning models. It could also help researchers develop next-generation versions of geothermal power – a technology that study leader Takeshi Tsuji of the University of Tokyo says has enormous potential for clean, large-scale energy production.

“With a clear three-dimensional image of where supercritical fluids are located and how they move, we can identify promising drilling targets and design safer and more efficient development plans,” Tsuji says. “This could have direct implications for expanding geothermal power generation, reducing dependence on fossil fuels, and contributing to carbon neutrality and energy security in Japan and globally.”

In their study, Tsuji and colleagues focused on a region known as the brittle-ductile transition zone, which is where rocks go from being seismically active to mostly inactive. This zone is important for understanding volcanic activity and geothermal processes because it lies near an impermeable sealing band that allows fluids such as water to accumulate in a high-pressure, supercritical state. When these fluids undergo phase transitions, earthquakes may follow. However, such fluids could also produce more geothermal energy than conventional systems. Identifying their location is therefore important for this reason, too.

A high-resolution “digital map”

Many previous electromagnetic and magnetotelluric surveys suffered from low spatial resolution and were limited to regions relatively close to the Earth’s surface. In contrast, the techniques used in the latest study enabled Tsuji and colleagues to create a clear high-resolution “digital map” of deep geothermal reservoirs – something that has never been achieved before.

To make their map, the researchers used three-dimensional multichannel seismic surveys to image geothermal structures in the Kuju volcanic group, which is located on the Japanese island of Kyushu. They then analysed these images using a method they developed known as extended Common Reflection Surface (CRS) stacking. This allowed them to visualize deeper underground features such as magma-related structures, fracture-controlled fluid pathways and rock layers that “seal in” supercritical fluids.

“In addition to this, we applied advanced seismic tomography and machine-learning based analyses to determine the seismic velocity of specific structures and earthquake mechanisms with high accuracy,” explains Tsuji. “It was this integrated approach that allowed us to image a deep geothermal system in unprecedented detail.” He adds that the new technique is also better suited to mountainous geothermal regions where limited road access makes it hard to deploy the seismic sources and receivers used in conventional surveys.

A promising site for future supercritical geothermal energy production

Tsuji and colleagues chose to study the Kuju area because it is home to several volcanoes that were active roughly 1600 years ago and have erupted intermittently in recent years. The region also hosts two major geothermal power plants, Hatchobaru and Otake. The former has a capacity of 110 MW and is the largest geothermal facility in Japan.

The heat source for both plants is thought to be located beneath Mt Kuroiwa and Mt Sensui, and the region is considered a promising site for supercritical geothermal energy production. Its geothermal reservoir appears to consist of water that initially fell as precipitation (so-called meteoric water) and was heated underground before migrating westward through the fault system. Until now, though, no detailed images of the magmatic structures and fluid pathways had been obtained.

Tsuji says he has long wondered why geothermal power is not more widely used in Japan, despite the country’s abundant volcanic and thermal resources. “Our results now provide the scientific and technical foundation for next-generation supercritical geothermal power,” he tells Physics World.

The researchers now plan to try out their technique using portable seismic sources and sensors deployed in mountainous areas (not just along roads) to image the shallower parts of geothermal systems in greater detail as well. “We also plan to extend our surveys to other geothermal fields to test the general applicability of our method,” Tsuji says. “Ultimately, our goal is to provide a reliable scientific basis for the large-scale deployment of supercritical geothermal power as a sustainable energy source.”

The present work is detailed in Communications Earth & Environment.

The post Scientists obtain detailed maps of earthquake-triggering high-pressure subsurface fluids appeared first on Physics World.

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地热系统 地震预警 能源开发 三维成像 超临界流体
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