东爪哇Ijen破火山口杂岩和Merubetiri山活热液和古热液系统研究

Mardhiawan Tri Susetyono, L. D. Setijadji
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引用次数: 0

摘要

在俯冲带形成的矿床与岩浆活动有关,岩浆活动以地表火山活动为代表。在东巽他弧,伊真火山口杂岩是活火山活动之一。该杂岩具有热液火山的表现,ph值偏酸性。同时,伊真杂岩南部有古火山杂岩Merubetiri山,在Tumpangpitu被证实为高硫化物和斑岩型矿化。对活火山系统中热液活动和火山地貌的认识可以作为认识热液系统的有力工具。本文介绍了活热液系统与化石热液系统作为古火山系统勘探工具的区别。本研究采用遥感方法,重点研究火山地貌、地质构造和蚀变矿物分布。本研究使用ASTER卫星图像、Landsat 8卫星图像和DEMNAS。利用主成分分析(PCA)和直接主成分分析(DPC)方法对ASTER和Landsat 8图像进行处理,确定与丙基、泥质、晚期泥质和硅质蚀变有关的蚀变矿物分布。采用半定量方法对地质构造进行自动判别。同时,采用定性的方法对DEM图像进行人工轮廓圈定。活火山复合体和古火山复合体的火山地貌圈定采用半定量方法,包括脊线和流型圈定。然后,通过确定火山脊的分布格局、流型、形态纹理和火山产物的横切关系作为确定喷发中心的关键,人工圈定火山地貌;结果表明,伊真火山口杂岩的火山分布与主应力具有NE-SW方向的关系,主要表现为火山坳陷带的椭圆形和伸长性、单成因火山和侵入分布。在伊真火山口杂岩中发现的地质构造呈东西向和东北-西南向。Merubetiri杂岩呈现E-W、NW-SE和N-S构造方向。伊真火山口杂岩中与硅酸、泥质和进泥质有关的蚀变矿物分布在层状火山中心带、火山口内带和与火山口相交的构造带。这表明活热液系统与火山活动和地质构造有关。同时,在Merubetiri杂岩中,蚀变矿物与喷发中心、闪长岩/花岗闪长岩侵入体和NW-SE走滑断裂有关。对火山背景和火山地貌的认识对于确定与热液系统有关的矿床远景十分重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of Active and Fossil Hydrothermal Systems in Ijen Caldera Complex and Merubetiri Mountains, East Java
Ore deposits formed at subduction zone are associated with magmatism activities that are represented by volcanic activities at the surface. In the Eastern Sunda Arc, one of active volcanic activity can be found in Ijen Caldera Complex. The complex has hydrothermal volcanic manifestations with a very acidic pH. Meanwhile in the south of Ijen Complex, there is ancient volcanic complex called Merubetiri Mountains that is proven to be well-mineralized at Tumpangpitu as high sulfidation and porphyry-style mineralizations. An understanding of hydrothermal activity and volcanic landforms in active volcanic systems can be used as a powerful tool to understanding hydrothermal systems. This paper presents the distinction between active hydrothermal systems and fossil hydrothermal systems as an exploration’s tool in ancient volcanic systems. The method used in this study is remote sensing with focus on volcanic landforms, geological structures, and distribution of alteration minerals. ASTER satellite imagery, Landsat 8 satellite imagery, and DEMNAS are used in this study. ASTER and Landsat 8 images are processed with Principle Component Analysis (PCA) and Direct Principle Component (DPC) methods to determine the distribution of alteration minerals that are associated with propylithic, argillic, advanced argillic, and silisic alterations. Semi-quantitative method is used to identify geological structures by automatic lineament detection. Meanwhile, qualitative method is used by manual lineaments delineation on the DEM imagery. Delineations of volcanic landforms in active and ancient volcanic complex use semi-quantitative methods include ridge lineaments and flow pattern. Then, volcanic landform is manually delineated by determining the distribution pattern of ridges, flow pattern, morphological texture, and cross-cutting relationship of volcanic products as a key in determine the eruption centers. The results show a relationship between volcanic distribution and the main stresses in the Ijen Caldera Complex with NE-SW direction, which is represented by the elliptic and elongation of volcanic depression zone, monogenetic volcano, and intrusion distribution. Geological structures that are found in the Ijen Caldera Complex show E-W and NE-SW directions. Meanwhile, Merubetiri complex shows E-W, NW-SE, and N-S structural direction patterns. The distribution of alteration minerals associated with silisic, argillic, and advance argillic in the Ijen Caldera Complex are found in the central zone of stratovolcano, intra-caldera zone, and structural zone that intersects the caldera. This shows that active hydrothermal system is related to volcanic activity and geological structures. Meanwhile, in the Merubetiri complex, alteration minerals are associated with the eruption centers, diorite/granodiorite intrusions, and NW-SE strike slip fault. The understandings of volcanic setting and volcanic landforms are very important in the early stages of exploration to determine the prospect of mineral deposits related to hydrothermal system.
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