在行星天体及其自然卫星上引力诱导的地震调制
Batakrushna Senapati1, Bhaskar Kundu2, Birendra Jha3
1Department of Earth and Atmospheric Sciences, NIT Rourkela, Rourkela, 769008, India.
Scientific reports
|January 27, 2024
概括
行星地震,包括地震,月球地震和火星地震,是由引力力调节的. 一个引力诱导的共振不稳定模型解释了地球,月球和火星上观察到的地震变化.
科学领域:
- 行星地震学 行星地震学
- 地质物理学 地质物理学
- 比較行星學 比較行星學
背景情况:
- 基于地面的地震监测是有限的,阻碍了对外部力量调节行星地震性的理解.
- 对地震,月球地震和火星地震的自然观测为比较研究提供了关键数据.
研究的目的:
- 调查影响太阳系天体地震性的引力加速和外部波强迫的变化.
- 分析地球,月球和火星的地震性调制模式.
主要方法:
- 对自然地震数据 (地震,月球地震,火星地震) 的分析.
- 应用理论模型,包括重力诱导的共振不稳定.
- 检查引力加速度变化和外部波强迫.
主要成果:
- 地球板边界显示了短期和长期的地震性调制;板内部显示了对长期调制的敏感性.
- 月球地震是由月球的潮和极点摇摆周期调节的;浅的月球地震与月球周期相关.
- 火星地震表现出季节性和极地波动的周期性,这表明它们的起源是自然的,而日间/半日间信号可能是人造的.
结论:
- 重力诱导的共振不稳定模型与地球,月球和火星上观察到的地震调制多样性保持一致.
- 外界力量显著影响行星地震性,在不同的天体上观察到不同的模式.
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