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1.
俞敏  胡纯龙 《广西地质》1995,8(2):59-64
本文从商业大厦下伏凝灰质砾岩风化壳的分带入手,提出大亚湾地区凝灰质砾岩风化壳分为三带,即强风化带,中风化带及微风化带,对各带承载力的确定分别采用重型(2)动力触探,回弹试验,点荷载试验及单轴抗压强度试验进行评价,其中对作为高层建筑物桩基持力层的微风化带进行了重点研究,为桩基设置在凝灰质砾岩风化壳上提出了一定的科学依据。  相似文献   

2.
本文简要介绍了该区地质概况和古风化壳的产状。用各种方法测定了粘土矿物成分,依此将风化壳大致分为两个带,下带以伊利石-蒙脱石间层矿物为主,上带以高岭石为主。在风化壳上普遍有再沉积的高岭石粘土岩。最后对古风化壳的形成条件及其意义做了探讨。  相似文献   

3.
高玲  闫峻  李全忠  谢建成 《地质论评》2022,68(3):2022062013-2022062013
皖南地区花岗岩风化壳中稀土元素普遍富集,局部已成为矿床,其中,郎溪县姚村岩体风化壳富集程度较高。LA- ICP- MS锆石U- Pb定年表明,姚村花岗岩体的形成年龄为127.9±1.4 Ma,属于皖南地区燕山期晚期岩浆作用的产物。风化壳可细分为残坡积层(A)、强半风化层(C1)、过渡层(C2)、弱风化层(C3)和基岩(D)五层。稀土总量在纵向剖面上呈“波浪式”分布,各层稀土分布型式表现出对原岩的继承性。风化壳稀土配分型式与基岩一致, 富集LREE,轻重稀土分馏明显(La/Yb)N=15.6),但总含量明显更高。基岩∑REE为338×10-6,半风化层∑REE最高达642×10-6,富集约两倍。风化壳物质由风化残余主矿物(石英、钾长石、斜长石、黑云母)、黏土矿物(高岭石、埃洛石、伊利石、三水铝石等)和副矿物(锆石、磷灰石、榍石等)等组成。黏土矿物以伊利石含量最高,指示风化壳发育不成熟。REE与埃洛石含量明显正相关,与其他黏土矿物关系不明显。(含)稀土矿物(尤其是榍石)对风化壳中稀土元素的贡献量超过百分之五十,其次为斜长石,是风化壳中REE的重要来源。  相似文献   

4.
中国黄土中的风化壳研究   总被引:8,自引:2,他引:8  
据野外调查和室内鉴定,在布容期 0.78~ 0MaBP形成的黄土剖面中确定了三个时期的风化壳,它们主要发育在黄土高原东南部。黄土中的风化壳是红褐色古土壤在特定的气候条件下转变而成的,厚度在 3~ 6m之间,风化壳剖面常由 3个层次构成,发育时间为 5~ 10万年不等。风化壳上部是发育好的红色古土壤,中部是褐黄色强风化破碎黄土,下部是棕黄色弱风化黄土。粘土矿物分析表明,黄土中的风化壳为伊利石-蒙脱石型。黄土中风化壳发育时的年均降水量在 90 0~ 10 0 0mm之间,是黄土高原降水丰富的气候事件的显示。黄土高原东南部和中部风化壳的发育证明黄土中有些古土壤确属淋溶型森林土壤,当时亚热带气候至少迁移到了黄土高原中部.  相似文献   

5.
江西龙南花岗岩稀土风化壳中粘土矿物的研究   总被引:8,自引:0,他引:8       下载免费PDF全文
本区燕山早期花岗岩发育的风化壳中的粘土矿物以高岭石和埃洛石(7Å)为主;蒙脱石、三水铝石及其它为新查明矿物。据粘土矿物组合特征,自风化剖面深部到地表分为三个带:含蒙脱石带,高岭石和埃洛石(7Å)带,含三水铝石带。本文探讨了矿物在风化过程中的生成演化顺序,并进行了热力学的解释。据各带粘土物质的阳离子交换量与稀土含量变化的不一致关系认为,稀土在C带中的富集是化学风化的结果,与粘土矿物组合无关。  相似文献   

6.
火山岩风化壳储层已成为重要的油气勘探新领域,开展风化壳储层特征及分布规律研究对火山岩油气勘探具有重要的理论和现实指导意义。利用钻井、岩心、测井、地震、分析化验等资料,从火山岩形成环境着手,对准噶尔盆地西北缘中拐凸起石炭系火山岩风化壳储层特征及控制因素开展综合研究,明确火山岩风化壳油气成藏模式及分布规律。研究表明:中拐凸起石炭系火山岩形成于岛弧环境,岩性以安山岩、凝灰岩为主;火山岩风化壳结构分为风化黏土层、强风化带、弱风化带及致密未风化带4层结构,其中强风化带储层物性最好,为主要的储层发育区;有效储集空间主要为次生孔隙和裂缝,裂缝对储层渗流能力有较好的改造作用;风化壳储层主要受风化淋滤作用、岩性岩相、构造位置及断裂(裂缝)等因素的控制;油气主要分布在距风化壳顶面480 m范围内,具有沿三带(靠近断裂带、构造高部位地带、有利岩相发育带)、一面(不整合面附近)分布的富集规律。  相似文献   

7.
本文对厦门花岗岩风化壳进行了系统地分带,共分为新鲜岩石带、微风化带、弱风化带、强风化带、不均匀风化岩土带及残积土带。阐述了各带工程地质特征,并进行了定量分带的探讨。本文用点荷载强度、弹性波速度及回弹锤试验结果进行了单指标和多指标的综合评判。根据大量现场和室内测试的研究资料,作者详细论述了各风化带的组构、物量力学性质及其变化规律。并建立了风化岩石点荷载强度指数I_(s(50))与弹性波纵波速度V_p、弹性波纵波速度V_p与极限抗压强度R及点荷载强度指数I_(s(50))与极限抗压强度R之间的关系式。  相似文献   

8.
沙尾风化壳高岭土矿床的研究   总被引:1,自引:0,他引:1  
周国平 《矿床地质》1990,9(2):167-175
广东沙尾高岭土矿属残积型风化壳矿床,分为白云母二长花岗岩钠化高岭土矿和斑状二长花岗岩高岭土矿。矿石主要组成矿物包括高岭石、埃洛石,伊利石及石英,含少量长石。原矿石SiO_2高达67—70%,Al_2O。20—23%,精矿SiO_2 47—50%,Al_2O_3 33—36%。矿石铁、钛含量低,SiO_2/Al_2O_3在2.2—2.5之间。高岭土的成矿作用分为前期热液蚀变阶段和后期表生风化阶段,前期主要以钠长石化和白云母化为主,后期通过地表水淋洗发育成高岭土风化壳。  相似文献   

9.
高玲  闫峻  李全忠  谢建成 《地质论评》2022,68(5):1820-1838
皖南地区花岗岩风化壳中稀土元素普遍富集,局部已成为矿床,其中,郎溪县姚村岩体风化壳富集程度较高。LA- ICP- MS锆石U- Pb定年表明,姚村花岗岩体的形成年龄为127. 9±1. 4 Ma,属于皖南地区燕山期晚期岩浆作用的产物。风化壳可细分为残坡积层(A)、强半风化层(C1)、过渡层(C2)、弱半风化层(C3)和基岩(D) 5层。稀土总量在纵向剖面上呈“波浪式”分布,各层稀土分布型式表现出对原岩的继承性。风化壳稀土配分型式与基岩一致, 富集LREE,轻重稀土分馏明显\[(La/Yb)N=15. 6\],但总含量明显更高。基岩∑REE为338×10-6,半风化层∑REE最高达642×10-6,富集约两倍。风化壳物质由风化残余主矿物(石英、钾长石、斜长石、黑云母)、黏土矿物(高岭石、埃洛石、伊利石、三水铝石等)和副矿物(锆石、磷灰石、榍石等)等组成。黏土矿物以伊利石含量最高,指示风化壳发育不成熟。REE与埃洛石含量明显正相关,与其他黏土矿物关系不明显。(含)稀土矿物(尤其是榍石)对风化壳中稀土元素的贡献量超过 50%,其次为斜长石,是风化壳中REE的重要来源。  相似文献   

10.
碳酸盐岩风化壳界面土层的结构和矿物学特征   总被引:14,自引:7,他引:7  
李景阳  朱立军  梁风 《中国岩溶》2000,19(4):301-307
以贵州遵义和平坝红土剖面为例,利用野外观察和室内分析测试方法,对碳酸盐岩风化壳岩土界面粘土层进行了系统研究。研究发现界面土层是由紫、红、棕、黄、褐、黑、灰、白等纹层状杂色粘土组成,其矿物成分除了含有与上部土层相似的高岭石或伊利石之外,还存在着新生不稳定的蛭石、绿泥石、蒙脱石、埃洛石及其间层矿物。向地表它们将转化为较稳定的其它粘土矿物。   相似文献   

11.
通过对我国南方许多风化型高岭土矿床研究查明,在表生条件下形成高岭石-多水高岭石矿物的基本因素是决定于风化母岩的岩性和水介质的物化性质。水介质的物化性质又明显地受到风化母岩的岩性类型和结构构造、动力裂隙的发育程度、围岩的稳定性和透水性、气候、地形地貌和植被等因素的综合性制约。  相似文献   

12.
发育完整的灰岩风化壳及其矿物学和地球化学特征   总被引:25,自引:5,他引:20  
对于碳酸盐岩土覆土壤成因、尽管碳酸盐岩风化残积成土说被多数学者认同,但由于碳酸盐岩中酸不溶物含量极低,在风化成土过程中会伴随着巨大的体积缩小变化,原岩结构和半风化带无法保留,从而缺失了探索上覆土壤物质来源的重要中间环节,使得这种观点缺乏野外宏观证据的支持。最近,我们在贵州、湖南等地发现了数个以泥质灰岩和泥质白云岩为基岩的碳酸盐岩风化壳剖面,尚保留有较好的原岩结构,具有明显的风化壳分带和过渡现象。这些风化壳剖面的发现为深入研究碳酸盐岩风化成土过程提供了良好的研究场所。本文选取了较为典型的吉首泥灰岩风化壳剖面,从矿物学地球化学的角度来探讨碳酸盐岩风化壳的形成过程和发育特征,结果表明该风化壳既遵循非碳酸盐岩(主要是结晶岩类)风化壳的发育特征,也具有自己独特的地球化学演化规律。风化壳总体特点受碳酸盐中的酸不溶物矿物组合及化学成分的影响甚至控制,风化非碳酸盐风壳相似的发育特征。吉首泥灰岩风化壳剖面的发育特征和作者早先提出 的碳酸盐岩风化成土的两阶段模式是一致的,即以碳酸盐矿物大量淋失、酸不溶物逐渐堆积或残积为特征的早期阶段和残积物进一步风化成土的阶段,后一阶段的演化类似非碳酸盐岩类的风化过程。  相似文献   

13.
Rare earth element (REE) geochemistry and mineralogy have been studied in the weathered crusts derived from the Early Yanshanian (Jurassic) biotite granites of Dabu and Dingnan, as well as in the Indosinian (Permian) muscovite–biotite granite of Aigao in southern Jiangxi province, China, and the weathered crusts and clay sediments on biotite granites in the Sanyo belt, SW Japan, that is, Okayama, Tanakami, and Naegi areas. In all of the weathered crusts, biotite and plagioclase commonly tend to decrease toward the upper part of the profile, whereas kaolinite and residual quartz and K‐feldspar increase. The weathered crusts of the Dingnan granites and some Naegi granites, which are characterized by the enrichment in light REE (LREE) in C horizons, have higher total REE (ΣREE) content than the parent REE‐enriched granites. Weathering of LREE‐bearing apatite and fluorocarbonates in the Dingnan granites and allanite and apatite in some Naegi granites may account for the leaching of LREE at the B horizons. The leached LREE must result in subsequent enrichment of LREE in the C horizons. The enrichment is probably associated with mainly adsorption onto kaolinite and partly formation of possible secondary LREE‐bearing minerals. In Japan it was found that REE mineralization occurs not in the weathered granitic crusts but in reworked clay sediments, especially kaolinite‐rich layers, derived mainly from the weathering materials of REE‐enriched granitic rocks. The clay sediments are more enriched in LREE, which likely adsorbed onto kaolinite. Concentration of heavy REE within almost all the weathered crusts and clay sediments, however, may reflect mainly residual REE‐bearing minerals such as zircon, which originated in the parent granitic rocks. The findings of the present study support the three processes for fractionation of the REE during weathering: (i) selective leaching of rocks containing both stable and unstable REE‐bearing minerals; (ii) adsorption onto clay minerals; and (iii) presence of possible secondary LREE‐bearing minerals.  相似文献   

14.
Concentration of Fe-oxides and alumina in weathering processes are main geological reactions for lateritization and bauxitization, respectively. In western Japan, red-coloured soil formed by weathering processes developed in many places. This soil is composed of hydrous Fe-oxide minerals, hydrous alumina minerals and other minerals. It was formed in the upper part of deep weathering crust by weathering processes under some kind of sub-tropical climate, probably in the Pliocene. One of these occurrences is observed in the upper part of Goshikidai and Konodai, west part of Takamatsu city, northeast Shikoku Island, west Japan. A deep weathering crust is distributed on wide hilly plains ranging from 250 to 400 m a.m.s.l. in the northwestern region of Takamatsu city. Original rock of the weathering crust is bronzite andesite and glassy bronzite andesite, so-called ‘sanukite’. The andesites had been weathered under some special climate, and the geological age of the weathering is the same as above. The mineral assemblage and formation mechanism are similar to those of laterite and bauxite. The weathering crust developing in this region are subdivided into the three following zones: (1) A zone, composed of hydrous Fe-oxides and metahalloysite with small amounts of gibbsite and it is associated with white veins of metahalloysite; (2) B zone, composed of hydrous Fe-oxides and metahalloysite (some material is associated with -cristobalite); and C zone, composed of metahalloysite or halloysite and -cristobalite with relict crystals of feldspar and quartz, and some material is associated with montmorillonite. Chemical analyses of the materials of the three zones show the formation mechanisms of the weathering crust.  相似文献   

15.
Bangladesh is situated in a subtropical to tropical climatic zone. A recently weathered crust has developed on sedimentary bedrock (sandstone, siltstone, shale and claystones) of Tertiary–Quaternary age. Weathered samples were collected from 16 sections totaling 68 samples and were analyzed mineralogically. The main primary minerals identified in the weathered crust of sedimentary rocks are quartz, plagioclase, K-feldspar, biotite, muscovite, sparse carbonate and epidote. The secondary minerals are kaolinite, illite, chlorite, gibbsite and goethite. Weathering initiated along the grain boundaries and cleavage planes of the minerals, forming small cloudy materials which were very difficult to identify. In the advanced stage of weathering, these cloudy materials have turned into secondary minerals. In region 1, high rain fall (7100 mm/yr) and monsoonic climate resulted in a kaolinite–gibbsite–goethite suite through the weathering of feldspars and biotite. The occurrence of gibbsite in the relatively elevated lands of Sylhet and Fe-kaolinite throughout the study areas is indicative of a humid–tropical climate during formation of the weathered crust.  相似文献   

16.
李晋  任大伟 《岩石学报》1989,5(3):76-85
老石旦矿区的高岭土(木节土)呈灰白、灰紫及灰黑色,质地松软,可塑性高,是一种良好的耐火材料和陶瓷原料。对其成因过去有两种看法:(1)原生沉积的;(2)由煤层风化淋滤形成的。作者认为是煤层风化残积形成的。即煤层经地壳运动抬升到地表以后,受到强烈的风化淋滤作用,使有机组分分解,流失和逸散,铝硅矿物相对富集,在表生条件下形成木节土。  相似文献   

17.
华南花岗岩风化壳中稀土元素地球化学及矿石性质研究   总被引:27,自引:2,他引:27  
池汝安  徐景明 《地球化学》1995,24(3):261-269
华南稀土花岗岩风化壳主要可分为腐值层、全风化层和半风化层。在岩石的风化淋滤过程中,稀土以水合或羟基水合离子吸附在全风化层中的主要矿物埃洛石和高岭石等粘土矿物上。这些层状粘土矿物具有取代结构和断面余键两个吸附活性中心。量子化学计算表明两个吸附活性中心对不同稀土的吸附能力为:La^3+〉Ce^3+〉Pr^3+〉Nd^3+〉Sm^3+〉Eu^3+〉Gd^3+〉Tb^3+〉Dy^3+〉Ho^3+〉Y^3+  相似文献   

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