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作者简介:

史长义,男,1962年生。博士,研究员,主要从事金属矿地球化学勘查方法技术、标准物质研制和花岗岩类丰度的科研工作。E-mail:1726404967@qq.com。

通讯作者:

王惠艳,女,1988年生。硕士,工程师,主要从事金属矿地球化学勘查、土地质量地球化学调查等工作。E-mail:651828148@qq.com。

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目录contents

    摘要

    深部矿产资源的勘查是战略性矿产资源勘查的一个重要方面。找矿实践证明,化探方法技术在矿产勘查乃至深部找矿中发挥了重要的、不可或缺的作用。找矿工作的不断深入和找矿难度的不断加大,促使化探方法技术不断的发展和完善,在传统方法技术的基础上,研发出了许多新的方法技术。本文从方法论和系统论的角度出发,对现有的找寻深部隐伏矿盲矿的有效化探方法技术进行了系统的归纳和总结,提出了立体地球化学勘查方法技术体系的概念,将立体地球化学勘查方法技术划分为地面地球化学测量方法技术和地下地球化学测量方法技术,建立了深部矿产资源立体地球化学勘查方法技术体系。不同的方法技术有不同的优势和不同的适用条件,实际工作中应当根据不同的勘查阶段,不同的勘查目的和不同的地质地球化学条件选择不同的立体方法技术组合才能发挥出最大效益,取得最大效果。

    Abstract

    The exploration of deep mineral resources is an important aspect of strategic mineral resources exploration. An overview of prospecting practice has proved that geochemical exploration methods and techniques have played an important and indispensable role in mineral exploration and even deep ore prospecting. With the intensification of prospecting work and the increasing difficulty of prospecting, geochemical exploration methods and techniques have been developed and improved continuously. Advances on traditional methods and techniques have resulted in the development of many new methods and techniques. From the perspective of methodology and system theory, this paper systematically inducts and summarizes the existing effective geochemical exploration methods and techniques for finding deep hidden ores, and puts forward the concept of three-dimensional geochemical exploration method and technique system. The three-dimensional geochemical exploration methods and techniques are divided into surface geochemical measurement methods and underground geochemical measurement methods, and a three-dimensional geochemical exploration method and technique system for deep mineral resources has been established. Different methods and techniques have different advantages and different applicable conditions. In actual work, different combinations of three-dimensional methods and techniques should be selected according to different exploration stages, different exploration purposes and diverse geological and geochemical conditions in order to obtain maximum benefit and achieve the maximum effect.

  • 目前,国家对战略性矿产的勘查工作甚为重视,近期科技部启动了“战略性矿产资源开发利用”重点专项,围绕国家资源安全和重大战略需求,瞄准战略性矿产资源勘查开发利用的重大科学问题与技术难题展开攻关。自然资源部将组织实施《战略性矿产找矿行动(2021~2035年)》(史长义,2021)。

  • 当前,我国能源资源短缺的严峻形势给地质工作提出了更高的要求,在浅部资源接近枯竭的情况下,寻找深部矿产资源已成为资源勘查必然的发展趋势。为了迎接全球化矿产资源勘查的挑战,勘查地球化学界一直致力于适用覆盖区矿产勘查的地球化学方法研究。在深部资源勘查领域,当前找矿主要的目标和任务是探边摸底、攻深找盲、覆盖区找矿、开发找矿第二空间。随着深部勘查工作的不断深入,找矿难度不断加大,对深部抗干扰勘查方法技术提出了更高的要求,对覆盖区、特殊景观区的勘查要求提供快速、轻便、高效的勘查技术支撑。

  • 找矿实践充分证明,化探方法技术在找矿中发挥了令矿产勘查界瞩目的重要作用,尤其在贵金属和有色金属的找矿中成效更加突出(谢学锦,199720012002; Moon et al.,2006; 唐金荣等,2009)。与其他勘查方法相比,化探方法技术具有明显的优势。化探方法技术属于直接找矿法,探测的直接对象就是成矿物质,其最大特点在于能直接查明成矿物质的区域分布模式和局部浓集中心,指示地下矿床的可能赋存部位。随着隐伏矿找矿任务的提出、覆盖区找矿工作的日益增多,如何有效地开发适用于寻找隐伏矿或深部矿的勘查技术,已被认为是实现21世纪找矿突破的关键(施俊法等,2008)。

  • 寻找深部隐伏矿盲矿一直是矿产勘查界公认的难题。勘查地球化学本身就是以方法论为核心的,从其诞生之日起一直致力于找矿的方法技术研究,尤其是找寻深部隐伏矿盲矿的方法技术。随着理论认识的提高和科学技术的进步,在传统方法技术的基础上,研发出了许多新的方法技术,化探方法技术得到了不断的发展和完善(Kristiansson et al.,1982; Clark et al.,1990; Antropova et al.,1992; Mann et al.,1998; 伍宗华等,2000; 谢学锦等,2003; Cameron et al.,2004; 唐金荣等,2009; 孙剑等,2011; 智超等,2014)。本文从方法论和系统论的角度出发,对现有的找寻深部隐伏矿盲矿的有效化探方法技术进行了系统的归纳和总结,提出了立体地球化学勘查方法技术体系的概念,建立了深部矿产资源立体地球化学勘查方法技术体系,并列举了地质找矿效果较好的一些案例。

  • 1 深部矿产资源立体地球化学勘查方法技术体系的概念和构成

  • 化探是因找矿工作的需要应运而生的。随着找矿工作的不断深入和找矿难度的逐渐加大,勘查地球化学理论和认识的不断提高,以及科学技术的进步,尤其是化探样品分析测试方法技术的进步,使得化探方法技术得以不断的发展和完善,在传统方法技术的基础上,又研发出了许多新的方法技术。这些方法技术,无论是传统的方法技术还是新的方法技术,在出露区找矿、覆盖区找矿以及深部资源勘查中都发挥了重要作用,取得了显著效果。

  • 化探方法技术有多种,一般都是以采样介质命名。按采样介质的地球化学性质分,有原生的和次生的,有固态的、气态的和液态的,有有机的和无机的。从取样位置来看,有地表取样的,也有地下取样的。目前,虽然这些单个的技术方法在矿产勘查中都有明显效果,但是还没有形成系统。如果按照一定的原则进行系统的归纳总结,形成方法技术体系的话,会更清晰、更系统,也更容易理解和应用。

  • 立体地球化学勘查是指从地表到地下的三维立体空间的地球化学勘查工作。不仅仅是地表的,也不仅仅是地下的,而是把从地表到地下的勘查工作看作一个整体来考虑。

  • 深部矿产资源立体地球化学勘查方法技术体系是由那些能反映深部矿化信息,用于寻找深部隐伏矿、盲矿的各种地球化学勘查方法技术组成,包括地表取样的各种方法技术,也包括在地表以下取样的各种方法技术。可以归纳为地面地球化学测量方法技术和地下地球化学测量方法技术两大类,简称地面化探方法技术和地下化探方法技术。地面化探方法技术是指那些以地表介质取样为基础的地球化学测量方法技术,地下化探方法技术是指那些以地下介质取样为基础的地球化学测量方法技术。

  • 深部矿产资源立体地球化学勘查方法技术体系分类的基本原则是以取样的空间位置为基准,结合采样介质和样品来源对各种化探方法技术进行归类,一级分类按取样位置分,二级分类按采样介质和样品来源分。如图1所示,深部矿产资源立体地球化学勘查方法技术体系分为地面地球化学测量方法技术和地下地球化学测量方法技术两大类。地面地球化学测量方法技术按采样介质又可划分为岩石地球化学测量、土壤地球化学测量、气体地球化学测量、生物地球化学测量、水地球化学测量; 地下地球化学测量方法技术按样品来源分为钻孔原生晕、坑道原生晕和地球化学浅钻测量。

  • 2 地面地球化学测量方法技术——地表介质取样的方法技术

  • 地面地球化学测量方法技术是以地表介质取样为基础的地球化学测量方法技术,属于二维地球化学测量,反映的是平面上元素的地球化学分散模式,地表取样的方法技术其采样介质包括岩石、土壤、气体、生物、水。化探地表介质取样反映深部矿信息的基本原理是,这些地表介质中含有从深部矿体通过不同通道以不同方式带到(如岩石)或迁移到(如土壤)地表,并在地质年代累积、富集在地表介质中的信息。迁移通道包括断裂、裂隙、节理、空隙、毛细孔等。迁移方式包括气态、固态(纳米颗粒)、化合物、不同价态、络合物、原子、离子、电化合物等。富集位置包括黏土颗粒表面与之间、空隙、胶体、化合物、植物根系、非晶质铁锰氧化物等。迁移的动力有毛细管作用、植物根系吸收、电地球化学场、地下水循环、离子扩散、气体搬运等。

  • 2.1 岩石地球化学测量

  • 以地表岩石为采样介质所进行的地球化学勘查工作就是岩石地球化学测量,该方法是通过系统采集地表岩石样品,发现深部找矿信息。这是传统的化探方法,属于典型直接找矿方法。有不同取样方法,如单点取样、多点组合取样、方格组合取样等,为了增强矿化信息,也可以采取矿化蚀变取样、岩脉取样、多子样组合“面型”取样等。实践证明,岩石地球化学测量是基岩出露区最有效最直接的化探找矿方法技术(陈贵林,1986; 邵跃等,1992; Li Yinggui et al.,1995; 李应桂等,19951997; 邵跃,1997; 张德宏等,1998; 王满仓等,2007; 陈玉明等,2008; 范红科等,2021),可用于矿产勘查工作的各个阶段。

  • 2.2 土壤地球化学测量

  • 以地表土壤为采样介质所进行的地球化学勘查工作,且分析测试土壤中元素全量含量的即为常规土壤地球化学测量,主要适用于残坡积层覆盖区及浅层运积物覆盖区的找矿评价。这也属于传统化探方法技术。多年生产实践表明,土壤测量是寻找松散覆盖层下矿床的一种有效方法技术(Li Yinggui et al.,1995; 夏广清,2005; 刁理品等,2010; 邱松林,2014; 杜明龙等,2015; 杨细浩等,2015; 田艳丽等,2016; 刘宝山等,2016; 龚玉爽等,2016; 曲晖等,2018; 董一博等,2019)。随着技术的进步,在常规土壤测量的基础上,还发展出很多以土壤为采样介质或采样中介的新方法,如土壤汞量地球化学测量、纳米物质地球化学测量、各种偏提取技术方法。偏提取技术(Chao,1984)以不分析测试土壤中元素全量含量为特征,而是提取其部分信息,如热磁地球化学测量、地电地球化学测量、活动态地球化学测量、相态地球化学测量、酶提取地球化学测量等,其中热磁地球化学测量、地电地球化学测量属于物理提取技术,活动态地球化学测量、相态地球化学测量、酶提取地球化学测量属于化学偏提取的技术。

  • 图1 深部矿产资源立体地球化学勘查方法技术体系组织结构图

  • Fig.1 Structure chart of the3D geochemical exploration method and technique system for finding deep mineral resources

  • 土壤汞量地球化学测量即土壤热释汞测量是通过控温加热的方法释放出吸附在土壤中的汞的含量,以达到寻找隐伏矿体及推测隐伏含矿断裂破碎带的目的。土壤汞量测量可分为土壤总汞测量和土壤吸附汞测量,前者可以释放出全汞,后者可以通过温度控制释放出不同价态的汞化合物。土壤汞量地球化学测量是寻找残坡积物覆盖区隐伏矿床,尤其是金矿以及隐伏含矿断裂的有效方法(游云飞等,1984; 伍宗华等,1994; 杨岳衡等,2002; 袁增翔等,2017; 周子俣等,2018; 苏艺怀等,2021)。土壤汞量地球化学测量可以用于矿产勘查的不同阶段。

  • 纳米物质地球化学测量是指通过物理方式从土壤中直接提取纳米级颗粒物质的地球化学勘查工作。这是一种新的技术方法,是随着纳米科学的兴起而发展起来的。其基本原理是深部矿体中的纳米金属颗粒穿过覆盖层迁移到地表,被土壤地球化学障(黏土、胶体、氧化物等)所捕获,纳米微粒以物理形式吸附在土壤颗粒表面或保存在土壤中。该方法可作为覆盖区寻找隐伏矿的有效手段。已经在半干旱草原覆盖区、荒漠戈壁覆盖区、火山岩覆盖区、黄土覆盖区等不同覆盖类型以及等Cu-Ni、Pb-Zn、Cu-Mo、U、Au、Cu-Au等不同矿种取得了一些有效的实验效果(叶荣等,2012; Zhang Bimin et al.,2015; 刘汉粮等,2016; 王翰等,2018; 张必敏等,2019)。

  • 偏提取技术是从土壤学中的形态分析技术借用而发展起来的一种研究表生介质中元素的不同存在形式的技术。偏提取技术的应用起源于20世纪40年代。国内外勘查地球化学家对偏提取技术进行了大量研究,取得了很多成果。我国的化探工作者从20世纪60年代开始对偏提取技术进行研究和试验。1998年Journal of Geochemical Exploration杂志还出版了偏提取研究成果专辑。

  • 热磁地球化学测量是(前)苏联A.H.波戈留波夫等人在20世纪70年代提出的一种偏提取技术(陈玉明等,1992),我国在20世纪90年代引入(丁汝福等,1996)。胡树起(2011)完成了这项技术的开发,其基本原理是通过分析测试土壤中热磁化后的晶质铁锰氧化物中的各种元素含量来提取深部矿化信息。实践表明,它具有较常规土壤测量更有效发现覆盖层下矿化信息的能力。其最大特点是能够提高异常的衬度,强化弱异常。目前已经取得一些实际应用实验效果(丁汝福等,1996; 胡树起等,2010; 樊连杰等,2012; 席明杰等,2014; 唐世新等,2018; 陈云华等,2022),该方法适用于浅覆盖区中大比例尺地球化学勘查。

  • 地电地球化学测量(电提取法CHIM)是由前苏联列宁格勒大学Ю·C雷斯等学者在20世纪60年代末创建提出。随着成因理论认识的突破带动了我国该方法技术的很大进步,特别是“独立供电偶极子地电化学技术”研发成功(孙彬彬等,2013),大大提高了地电化学勘查的效率和可操作性,可以满足以圈定靶区为目的的区域勘查到矿区大比例尺勘查的不同工作阶段、不同比例尺勘查的需求,实际应用效果也很好。目前已经发展成覆盖区找隐伏矿的一种有效方法(刘吉敏等,1990; 罗先熔,1994; 谭克仁,2000; 赖健清等,2004; 魏广智等,2005; 汤磊等,2007; 康明,2009; 王保国等,2012; 刘延斌等,2018)。应用此法已在运积物厚达150 m及成矿后沉积岩厚达500 m的条件下找到隐伏矿体(谢学锦,1998)。

  • 酶提取技术是20世纪80年代末、90年代初由Clark et al.(1990)提出的一种化学偏提取技术,是一种利用葡萄糖氧化酶提取矿物颗粒表面非晶质Fe、Mn氧化膜寻找隐伏矿的方法,现已被认为是厚覆盖区找矿勘查的有效方法之一(Bajc,1998; 谢学锦,1998; 丁汝福,1999; Kelley et al.,2003; 智超等,2014)。大量试验研究取得了明显效果(McCarthy et al.,1986; Clark,19931997; Kelley,1995; Yeager et al.,1998; 汪明启等,1999; 徐锡华,2000; 智超等,2014; 朱丽芬等,2021)。

  • 活动态地球化学测量包括活动金属离子法(mobile metal ions,MMI)(Bajc,1998; Mann et al.,1998)和金属元素活动态提取法(leach of mobile forms of metals in overburden,MOMEO)(Xie Xuejin,1995; 王学求等,1996)。MMI是澳大利亚Mann et al.(1998)在20世纪90年代初发展起来的,理论依据是金属活动离子可以从深部矿体穿过上覆沉积岩石及厚层运积物盖层而到达地表。MMI法能够准确地圈定Au的盲矿体以及隐伏的镍和贱金属矿化,并已在澳大利亚、非洲、智利和美国等许多覆盖厚度几米至700 m的矿床上圈定出多个含金、贱金属和镍矿化的矿体(孙剑等,2011)。中国提出的MOMEO(Xie Xuejin,1995; 王学求等,1996)与MMI的最大区别在于活动态的提取方法和提取试剂。金属活动态测量在国内外有较多应用,在铀矿、金矿、铜矿、铜镍矿、铅锌矿和森林覆盖区、红壤和黄土覆盖区、森林沼泽覆盖区、湿润中低山景观、荒漠戈壁覆盖区和草原覆盖区等多种覆盖区多个矿种取得了较好的应用实验效果(韩志轩等,2017; 杨刚刚等,2018; 丁汝褔等,2021)。

  • 酶提取、MMI及MOMEO都是在传统的偏提取与循序提取的基础上发展起来的,但它们与传统的方法在思路与技术上有很大不同(谢学锦,1998)。相态地球化学测量是传统的化学偏提取技术方法,主要提取水溶态、离子交换态、碳酸盐结合态、有机质结合态、铁锰氧化物结合态、硫化物结合态和残渣态中元素含量。主要用于覆盖区找矿,已经取得了一些实际效果(张力,1990; 叶庆森,2001; 陈晓明等,2007; 樊连杰等,2012; 杨帆等,2019)。

  • 2.3 气体地球化学测量

  • 以地表土壤中的气体为采样介质所进行的地球化学勘查工作为气体地球化学测量。依据气体的地球化学性质,可按气体地球化学测量指标分为无机气体、有机气体和放射性气体地球化学测量三大类。无机气体包括壤中Hg气、CO、CO2、H2S、O2、SO2、地气等。有机气体主要是烷烃类和烯烃类气体等。放射性气体包括Rn、α、γ、210Po等。这些方法基本属于现场测定方法,具有穿透力强、迁移距离远、方法简单快速的特点。在矿产勘查中,主要用于覆盖区追踪断裂构造,结合其他方法评价断裂构造的含矿性,寻找隐伏矿(苏国森,1994)。工作中可采用单一方法,也可采用多种方法联测,即综合气体测量方法。多种方法联测的效果要比单一方法测量结果效果好,信息量大,可靠程度高。

  • 在无机气体测量方法中壤中Hg气、CO、CO2、H2S、O2、SO2,尤其是壤中气汞量测量是比较成熟的气体地球化学测量方法,应用广泛,找矿效果明显(金仰芬等,1991a; 伍宗华等,1994; 陈国梁等,1996; 曾志方,2001; 王国华等,2002; 朴星海等,2010; 高长亮等,2014; 韩伟等,2016; 张洁等,2016; 万卫等,2019)。地气测量最初由瑞典科学家(Malmqvist et al.,1984; Kristiansson et al.,1987)提出的一种寻找金属矿的技术,于20世纪80年代末引入我国,童纯菡等(1990)首先开始这方面的实验,经过几十年的工作已经取得很大进展。由于富集材料和方法技术的差异而形成了不同的方法,如气溶胶测量(伍宗华等,1996; 尹冰川等,1997)、纳米物质测量(任天祥等,1995; 刘应汉等,1997)、地球气纳微金属测量(Wang Xueqiu et al.,1997; Xie Xuejing et al.,1999)等均属于地气测量。地气测量的有效性已经得到证实(童纯菡等,1990; 任天祥等,1995; 刘应汉等,1997; 史长义等,1997; Wang Xueqiu et al.,1997; Xie Xuejing et al.,1999; 赵吉海等,2017),并已在覆盖区隐伏矿勘查中取得了找矿突破(伍宗华等,1996; 刘应汉等,199720062018; 尹冰川等,1997; 汪明启等,2006)。

  • 有机气体测量通常有现场抽气和酸解烃两种测量方法,目前使用较多的是酸解烃烃气测量方法。有机气体主要是烷烃类气体,其次是烯类气体。采样介质可以是土壤和岩石(坑道和钻孔)。1997年,李生郁和徐丰孚开始了轻烃及硫化物气体测量找寻多金属隐伏矿方法试验。经过多年研究,有机气体测量现已成为覆盖区找矿的一种有效技术方法(李生郁等,1997; 陈远荣等,2003a; 王永华等,2010; 曾旭等,2016; 段炼等,2016),并已取得实际地质找矿效果(陈远荣等,2003b; 张苗苗等,2008; 谢桃园等,2010; 严长华等,2018)。

  • 放射性气体包括Rn、α、γ、210Po等,它们都是U的衰变产物,放射性气体测量除了寻找放射性矿床,在覆盖区多金属矿的勘查中也是一种有效方法技术(Kristiansson et al.,1982; 吴少武,1989; 王可伏,1992; 于万里等,1993; 金仰芬,1994; 普传杰等,2005; 李学彪,2010; 马振宇等,2021; 姜涛等,2021)。

  • 事实证明,综合气体测量如氡-汞联测技术可以优势互补,能起到更好的覆盖区找矿地质效果(游云飞等,1984; 金仰芬等,1991b; 李亚东,1994; 陈国梁等,1996; 李生郁等,1997; 高振敏等,2004; 曾正斌等,2015; 韩伟等,2016; 张洁等,2016)。

  • 2.4 生物地球化学测量

  • 以生物为采样对象所进行的地球化学勘查工作即为生物地球化学测量,其取样介质包括微生物和植物两大类。目前微生物地球化学勘探技术主要是用于油气勘查(汤玉平等,2009; 郝纯等,2015)。植物地球化学找矿法始于20世纪30年代,Tkalich于1938年首先用植物中的铁含量圈出了西伯利亚一个毒砂矿床的轮廓(宋慈安等,2009)。20世纪60年代后,植物地球化学找矿法在各种矿床的勘查中取得成功的实例屡有报道(Dunn,2007; 宋慈安等,2009; 唐金荣等,2009)。谢学锦和徐邦梁(1952)发现了长江中下游铜矿指示植物——海州香薷,自此开启了我国植物地球化学勘查的研究工作。据不完全统计,我国进行过研究的植物达200余种以上,其中确定具有明显找矿意义的有效指示植物达60~70余种(宋慈安等,2009)。多年的研究不仅证明了植物地球化学测量是覆盖区找矿的一种有效方法技术,而且还取得了显著的地质找矿效果(Ботова et al.,1963; 戴兴根,1981; Tал и п о в,1988; 侯嘉丽等,1995; 沈远超等,1999; 陈代演等,2000; 胡西顺等,2005; Dunn,2007; 宋慈安等,2017)。

  • 2.5 水地球化学测量

  • 以地表水和地下水为采样介质所进行的地球化学勘查工作即为水地球化学测量(简称水化学测量),采样对象包括河水、湖水、井水、泉水等。地下水的循环可以把含有深部矿化信息的地下水带到上部含水层或地表,通过采集和分析这些与深部矿化有联系的水样,可以获得深部矿化信息。水化学测量可以用于矿产勘查的不同工作阶段。随着水分析技术的提高,该方法已经成为一种寻找隐伏矿和盲矿的有效手段(蒋瑞金等,1986; 任天祥等,1990; 郭三民,1993; 马生明等,1996; 李应桂等,1997; de Caritat et al.,20052009; Dickson et al.,2007; Caron et al.,2008; 焦保权等,2009; 郑波,2010)。

  • 3 地下地球化学测量方法技术——地下介质取样的方法技术

  • 地下地球化学测量方法技术是以地下介质取样为基础的地球化学测量方法技术,属于三维地球化学测量,它反映的是地下空间内的元素地球化学分布模式,按样品的来源可以分为钻孔原生晕、坑道原生晕和地球化学浅钻测量。

  • 钻孔原生晕和坑道原生晕测量是以钻孔岩芯和坑道岩石为采样介质所进行的地球化学勘查工作,均属于岩石地球化学测量范畴,但其采样介质是特指地下钻孔岩芯和地下坑道中的没有受地表风化影响的岩石样品,这是有别于地表岩石测量的地方。原生晕测量不等于岩石测量,原生晕异常也不等于岩石地球化学异常。原生晕测量是通过系统采集地下钻孔岩芯和地下坑道中岩石样品来发现深部找矿信息。到目前为止,钻孔(坑道)原生晕测量依然是最直接最有效的寻找深部隐伏矿盲矿的地球化学找矿方法(Li Yinggui et al.,1995; 李应桂等,1995; 史长义等,1996; 邵跃,1997; 余学东,1998; 李德亭等,2002; 玉苏普艾力·喀迪尔等,2015; 柳炳利等,2016; 梁科伟等,2019; 王学求等,2020; 王社全等,2020; 叶红刚等,2020)。

  • 构造叠加晕找盲矿法是李惠等(2002)在原生晕理论、多建造晕理论和原生叠加晕技术基础上发展起来的,重点研究的是构造带内的原生叠加晕,已成功应用于金矿、锑矿、铜矿盲矿预测中,并取得了很好的地质找矿效果(李惠等,20062010; 禹斌等,2010; 马久菊等,2014; 刘旭光等,2019; 陈树民,2019; 赵凯军,2020; 张贺然等,2021)。

  • 地球化学浅钻测量是以机动浅钻为采样手段采集地下沉积物的一种覆盖区地球化学勘查方法,以采集地表以下残积物为主,其结果可以展示出地表以下元素含量的三维空间分布模式。适用于不同景观(干旱、半干旱、湿润、半湿润等)条件下不同覆盖类型的浅覆盖区(覆盖厚度<50 m)找矿。可用于区域地球化学调查、普查、详查及以钻代槽追踪矿化体等不同勘查阶段。实践证明该方法技术为浅覆盖区的卓有成效的找矿手段(喻劲松等,2012; 喻劲松,2013; 孔牧等,2015; 史冬岩等,2017; 段星星等,2018; 李小东等,2018; 张立东,2018; 王帅等,2021; 魏济宇,2021)。

  • 4 讨论

  • 每一种方法技术都有其自身特点和最佳适用条件,搞清楚了这些才能充分发挥每种方法技术的最佳效益。如汞量测量,包括土壤汞量测量和壤中气汞测量两种。土壤汞量测量异常相对稳定,即可用于直接找矿也可以用于面积性的普查工作,而壤中气汞测量异常的重现性相对而言差一些,但是异常的衬度比较大,它更适合于直接找矿,或者是寻找隐伏含矿断裂。

  • 随着纳米科学的兴起,某些地面化探方法技术的成因机理研究也有了一些新认识。虽然地气、土壤、热磁提取物、地电提取物中都发现有纳米颗粒,但是这种纳米颗粒究竟占多大比例,这些纳米颗粒是否与深部矿有关,虽然已经有些成果(刘应汉等,1997; 史长义等,1997; Tong Chunhan et al.,1998; 王学求等,2011; 叶荣等,2012; 孙彬彬等,2015; 刘汉粮等,2016; 唐世新,2021),但目前还没有定论。另外这些技术富集的方式和选择性提取的对象是不一样,或者说他们提取的重点是不一样的。地气提取的对象主要是以游离气体或纳米颗粒为主,热磁提取的对象主要是热磁化后的晶质铁锰氧化物,而电提取的对象主要是土壤内电活动态物质信息部分。

  • 地气测量包括气溶胶测量(伍宗华等,1996; 尹冰川等,1997)、纳米物质测量(任天祥等,1995; 刘应汉等,1997)、地球气纳微金属测量(Wang Xueqiu et al.,1997; Xie Xuejing et al.,1999),说明地气中的成分并不是单一的,既有纳米金属颗粒(童纯菡等,1990; Wang Xueqiu et al.,1997)、纳米物质/土壤颗粒(刘应汉等,1997),又有气溶胶(伍宗华等,1996),但是究竟以哪种为主,各占多大比例,现在还不得而知。伍宗华等(1996)认为地气测量不仅仅是测量地气流中的气体组分,还应包括地气流所携带的气溶胶组分、固体微粒以及它们的衍生物。

  • 气体测量属于现场测量方法,按气体的采集富集方式可以分为主动法和被动法两种。主动法以抽气为主,被动法则属于现场累积测量。被动法的主要目的是为了提高含量水平,提高发现隐伏矿体及发现异常的概率,因此根据方法不同或者是采样对象不同,累积的时间有长有短。气体地球化学测量是有最佳适用条件的,其最佳适用于运积物覆盖区,其次是残疾物覆盖区,主要是因为气体需要有良好的保存条件或者是储气条件。

  • 岩石地球化学异常的评价指标和准则,在找矿预测中可以作为勘查定位的依据。这种定位是空间定位,包括地表和地下。地表的定位是指找矿远景区或找矿靶区、找矿有利地段的圈定; 地下的定位是指产出部位、剥蚀程度和可能埋深的预测。原生晕分带理论是评价地球化学异常的重要理论基础,原生晕轴向分带性是评价异常和矿体剥蚀水平的重要依据和标准。地表化探方法和原生晕结合,可以实现对矿床的立体勘查。

  • 元素的地球化学性质表明,异常元素是以许多化合物形式存在的,由于一些化合物形成的物理化学条件不一样,在地质作用下,对元素的活化富集程度也不同,其成矿的机理也不同。已有研究证明,异常样品的组成如果是以硫化物相为主体,含矿性最好; 以氧化物相和硫化物相为主的次之; 但若是以硅酸盐结合相为主的则此异常的含矿性较差,可能为岩性异常所致。因此,我们可以利用异常样品中不同相态的量或其比值评价异常,区分矿与非矿异常。

  • 谢学锦(1998)认为酶提取、MMI及MOMEO都是在传统的偏提取与循序提取的基础上发展起来的,但它们与传统的方法在思路与技术上有很大不同。谈成龙(2004)则认为偏提取技术和金属活动态测量是两种迥异的地球化学方法。偏提取技术在实验室里提取的是样品中离子态性状的金属元素,而金属活动态测量在实验室里提取的是样品中呈离子态形式的金属,也包括超微细金属。

  • 关于化探方法技术寻找深部隐伏矿盲矿的探测深度,从表1可见地面化探方法技术的探测深度一般在200~1000 m之内,其中以地下水测量的探测深度最深可达5 km,岩石测量可达600 m,土壤测量可达230 m,纳米物质测量可达400 m,气体测量可达1800 m,地气测量可达700 m,酶提取、地电、热磁测量均可达500 m,植物测量可达700 m。而地下化探方法技术的探测深度则取决于钻孔和坑道的深度。

  • 表1 化探方法技术寻找深部隐伏矿盲矿的探测深度

  • Table1 The detecting depth to find deep concealed and blind deposit by geochemical exploration

  • 5 结论与建议

  • 立体地球化学勘查是指从地表到地下的三维立体空间的地球化学勘查工作。深部矿产资源立体地球化学勘查方法技术体系是由那些能反映深部矿化信息,用于寻找深部隐伏矿、盲矿的各种地球化学勘查方法技术组成。深部矿产资源立体地球化学勘查方法技术体系的提出使现有各种方法技术更系统化、更清晰,更有利于矿产勘查工作者理解和应用。

  • 以不同采样部位、不同取样介质为取样对象的各种地面和地下化探方法技术构成的立体地球化学勘查方法技术体系,是寻找覆盖区深部矿产资源的有效方法。与其他方法技术相比,化探方法技术具有提供直接找矿信息,不受各种环境因素如电、风、金属器材等影响的特点。

  • 上述化探方法技术为覆盖区深部矿产资源勘查提供了技术保障,但是,不同的方法技术有不同的特点,不同的优势和不同的适用条件,在实际应用中,应该注意每种方法技术的原理和适用条件,最重要的是要充分考虑当地的地质地理条件,根据实际找矿需要来选择不同的方法技术或方法技术组合。应用多种方法技术,相互印证,优势互补,采用综合测量,效果会更好。也就是说不同的景观条件,不同的矿种,不同的勘查阶段,不同的勘查目的,不同的地质地球化学条件,采用不同的立体化探方法技术组合会起到更好的找矿效果。

  • 找矿实践证明,地表取样介质的地面化探技术方法的探测深度可从200 m到1000 m,甚至几公里,而地下取样介质的地下化探方法技术的探测深度则取决于钻孔的勘探深度。

  • 新的非传统的深部化探找矿方法技术有了很大进展,也取得了很大成效,但传统的岩石测量、原生晕方法依然是最直接最有效的寻找深部隐伏矿盲矿的地球化学找矿方法。

  • 虽然寻找深部隐伏矿盲矿的各种地面和地下化探方法技术有很多种,也取得了很多很好的地质找矿效果,但是随着找矿难度的不断加大,已有的方法技术还需要进一步系统化、改进和完善,也需要新的方法技术出现来不断充实和补充现有方法技术体系。对现有方法技术及其理论基础进行系统、深入研究与应用,既有助于矿产资源勘查实现突破,充分展现科技进步对行业发展的支撑作用,又有利于勘查地球化学理论的深化和方法技术完善,促进勘查地球化学学科进步。因此,建议加强以下几方面的工作:

  • (1)要加强各种方法技术的基础理论研究和异常形成机理研究,理论认识突破了,方法技术才能得到更快更大的发展。

  • (2)需要特别加强原生晕形成机理的研究,利用计算机技术构建原生晕成晕理论模型,建立定量化预测评价方法和指标体系。还需要特别加强矿床元素原生分带模式的研究,充分发挥现代样品分析测试技术的优势,以原生晕大数据为基础重新建立矿床的原生分带模型,用于指导深部找矿预测

  • (3)需要进一步提高新的非传统方法技术规范化、标准化、实用化以及适用性、可操作性,也需要完善相应的分析质量监控系统,以推动方法技术的示范与推广应用。

  • (4)要充分利用大数据、建模、计算机模拟、机器学习等新理论新技术,密切结合地质背景,以地球化学理论为基础,创新异常解释和综合研究思路。

  • (5)随着科学技术的进步,找矿工作的需要,还需要不断研究开发新的方法技术。

  • 注释

  • ❶胡树起.2011. 热磁技术在勘查地球化学中的应用. 中国地质科学院地球物理地球化学勘查研究所内部成果报告.

  • ❷孙彬彬,刘占元,文美兰.2013. 独立供电偶极子地电化学技术规范化研究. 中国地质科学院地球物理地球化学勘查研究所内部成果报告.

  • ❸汪明启,喻劲松,杨少平,周国华.1999. 地球化学弱信息提取技术研究. 地质矿产部地球物理地球化学勘查研究所内部成果报告.

  • ❹任天祥,蒋瑞金.1990. 华北地台北缘寻找隐伏铅锌矿床的水地球化学方法研究. 地质部地球物理地球化学勘查研究所内部成果报告.

  • ❺李应桂,杨少平,余学东,邹长毅,赵传冬.1995. 金铜多金属矿床地球化学找矿模型研究.地矿部地球物理地球化学勘查研究所内部成果报告.

  • ❻喻劲松,刘华忠,宋殿兰,韩伟,谭春亮,王英秀.2012. 应用机动浅钻的地球化学勘查技术方法研究. 中国地质科学院地球物理地球化学勘查研究所内部成果报告.

  • ❼唐世新.2021. 戈壁荒漠景观区热磁组分测量方法示范研究. 中国地质科学院地球物理地球化学勘查研究所内部成果报告.

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