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Kamacite blocking temperatures and applications to lunar magnetism

机译:孔雀石阻滞温度及其在月球磁场中的应用

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摘要

The long-term stability of remanent magnetization is a requirement for paleomagnetic studies. Here we present calculations that predict the magnetic relaxation times of single domain crystals of the iron-nickel mineral kamacite as a function of their time-temperature history. Kamacite is one of the most abundant ferromagnetic minerals in the solar system and is the dominant remanence carrier on the Moon. We perform these calculations for a variety of grain sizes, times, and temperatures to derive a broad view of the remanence stability of kamacite over geologic timescales. Previously, such blocking temperature calculations were only available for the common Earth minerals magnetite, hematite, and pyrrhotite. Our results show that remanence in kamacite-bearing lunar samples is stable against typical thermal perturbations during the last several billion years of lunar history and residence on Earth. Our findings indicate that lunar paleomagnetism cannot be entirely an artifact due to sample storage in the Earth's magnetic field. Future paleomagnetic studies of iron-bearing samples can use our blocking temperature diagram to determine the effects of geologic heating events on magnetic remanence.
机译:剩余磁化的长期稳定性是古磁研究的要求。在这里,我们提出了可预测铁镍矿物高锰铁矿单畴晶体随时间-温度历史变化的磁弛豫时间的计算。 Kamacite是太阳系中最丰富的铁磁矿物之一,并且是月球上主要的剩磁载体。我们对各种晶粒尺寸,时间和温度进行这些计算,以得出关于滑石在地质时标上的剩余稳定性的广泛观点。以前,这种阻塞温度计算仅适用于常见的地球矿物磁铁矿,赤铁矿和黄铁矿。我们的结果表明,在过去数十亿年的月球历史和居住在地球上的情况下,带有滑石的月球样品的剩磁对典型的热扰动是稳定的。我们的发现表明,由于样品在地球磁场中的存储,月球古磁体学不能完全是人工产物。将来对含铁样品的古磁研究可以使用我们的封闭温度图来确定地质加热事件对剩磁的影响。

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