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261.
本文剖析了柿竹园钨锡钼铋矿床地勘阶段地质观察粗浅,勘探投入超前,探明储量积压、B+C级储量比例偏大等不合理的勘查工作及其原因。在此基础上,探讨矿区合理的勘探程度,储量比例及由此带来的经济效益。 相似文献
262.
以映射和叠加原理为基础,探讨了均质、等厚承压含水层中地下水向完整井作三维运动时,地下水稳定运动基本微分方程的求解方法,并与裘布衣公式作了对比。由于求解时考虑了地下水流速的水平、垂直分量,故所得结果较裘布衣公式更为准确与合理。 相似文献
263.
剪切带的流体-岩石相互作用 总被引:5,自引:1,他引:5
作为大陆岩石圈中的应变局部化带,剪切带中一般都渗透着大量流体。流体的来源与剪切带所处的构造背景、流变域和水文条件有关,而剪切带中流体的流动则受岩石的渗透率、孔隙度、孔隙性质、流体的扩散和渗透能力、环境的温压条件、应力或载荷的梯度等因素所制约。剪切带中流体的成分、通量及赋存状态或流动方式,直接影响着岩石的流变。由应变局部化及力学失稳所引起的化学不平衡和由流体与岩石的相互作用,使剪切带岩石的矿物成分和化学成分发生调整,其变异程度取决于原岩的性质、剪切的温压条件和流体的成分及通量等。由于流体的渗透流动和流体与岩石的相互作用使剪切带的体积有所变化,体积变化过程是一种自组织行为。较大的体积亏损,意味着剪切带中渗透过大量的流体,这对剪切带的流变行为、化学行为和成矿作用都有深刻的影响。 相似文献
264.
Size of a debris flow deposition: model experiment approach 总被引:5,自引:0,他引:5
X. Liu 《Environmental Geology》1996,28(2):70-77
The prediction of the dangerous extent of a debris flow deposition is of vital importance, but difficult to achieve. Precise
prediction of the depositional boundary of a debris flow event is impossible, but the size of a debris flow deposition could
provide some estimates of the area, length, width, and thickness of a debris flow deposition. Based on in situ depositional
experiments performed on a debris flow creek just after debris flows, a rule of thumb expressed by a group of equations containing
the multiple-variate nonlinear functions is proposed in this paper. The interrelationships between the size and the causation
also are discussed, and some empirical formulae to calculate the causative parameters for different regions are presented.
Received: 24 April 1995 · Accepted: 21 June 1995 相似文献
265.
Summary This paper explores an approach to estimation of the viscoelastic parameters of weak floor strata using plate-loading tests. Mathematical equations are derived to describe deformation-time history for the standard Burgers model under three-dimensional stress-strain conditions, which are verified with a finite element model. A number of time-dependent in-mine plate-loading tests were conducted and the values of the viscoelastic parameters were estimated based on the derived equation. It is shown that large discrepancies between the parameter values estimated from the plate-loading tests and those acquired from the in-mine convergence data are the results of neglecting adjacent pillar interaction. Finite element modelling was conducted to investigate the effects of adjacent pillar interactions upon the pillar settlement. Based on the finite element analyses, a correction curve was developed to adjust the viscoelastic parameter values to take into account the interaction between adjacent pillars. With the correction, the parameter values estimated from the plate-loading tests compared favourably with those acquired from the in-mine convergence results. 相似文献
266.
Acid mine drainage (AMD) occurs when sulfide minerals are exposed to an oxidizing environment. Most of the methods for preventing
AMD are either short-term or high cost solutions. Coating with iron phosphate is a new technology for the abatement of AMD.
It involves treating the sulfide with a coating solution composed of H2O2, KH2PO4, and sodium acetate as a buffer agent. The H2O2 oxidizes the sulfide surface and produces Fe3+ so that iron phosphate precipitates as a coating on the sulfide surface. Experiments performed under laboratory conditions
prove that an iron phosphate coating can be established on pyrrhotite surfaces with optimal concentrations of the coating
solution in the range of: 0.2M/0.01M H2O2, 0.2M KH2PO4, and 0.2M sodium acetate NaAc, depending on the experimental scale. Iron phosphate coating may be a long-term solution to
the problem of AMD. The method would be easy to implement; the reagent cost, however, is not low enough, although it is lower
than the conventional treatment with lime.
Received: 30 March 1995 · Accepted: 6 September 1995 相似文献
267.
N. F. Gray 《Environmental Geology》1996,27(4):358-361
Both sulfate and conductivity are useful indicators of acid mine drainage (AMD) contamination. Unlike pH, they are both extremely sensitive to AMD even where large dilutions have occurred. The advantage of using sulfate to trace AMD is that unlike other ions it is not removed to any great extent by sorption or precipitation processes, being unaffected by fluctuations in pH. These two parameters are also closely associated as would be expected, as conductivity is especially sensitive to sulfate ions. Therefore, as sulfate analysis is difficult in the field, conductivity can be used to predict sulfate concentration in both AMD and contaminated surface waters using regression analysis. Most accurate predictions are achieved by using equations given for specific conductivity ranges or AMD sources. There is also potential to use conductivity to predict approximate concentrations of key metals when the pH of the water is within their respective solubility ranges. 相似文献
268.
从淮南谢—矿五层煤(C_(13)、B_(11b)、B_(10)、B_(4b)和A_3)中精选出镜煤、壳质暗煤、惰性暗煤及构造煤,采用重量法,分别测定它们的甲烷吸附量,从而研究不同成分组成的煤其甲烷吸附性能。 相似文献
269.
裂隙岩体渗流与应力耦合的试验研究 总被引:16,自引:2,他引:16
通过对较大尺寸的裂隙岩体试块进行不同侧压力和加载条件下的渗流试验结果研究,分析了裂隙岩体渗流与应力的耦合机理,得出了不同应力条件下裂隙岩体渗流量与应力成四次方的关系。并且得出并非压应力都引起裂隙岩体的渗流量减小,当裂隙岩体受平行于裂隙面方向的单向压应力时,渗流量随着压应力的增加而增加。 相似文献
270.
Heavy metal retention in secondary precipitates from a mine rock dump and underlying soil, Dalarna, Sweden 总被引:7,自引:2,他引:7
This study investigates the retention of heavy metals in secondary precipitates from a sulfidic mine rock dump and underlying
podzolic soils by means of mineralogical and chemical extraction methods. The rock dump, which is at least 50 years old, consists
of a 5–10-cm-thick leached zone and an underlying 110–115-cm-thick accumulation zone. Optical microscopy and electron microprobe
analyses confirm that pyrrhotite weathering has proceeded much further in the leached horizon relative to the accumulation
horizon. The weathering of sulfides in the leached zone has resulted in the migration of most heavy metals to the accumulation
zone or underlying soils, where they are retained in more stable phases such as secondary ferric minerals, including goethite
and jarosite. Some metals are temporarily retained in hydrated ferrous sulfates (e.g., melanterite, rozenite).
Received: 28 October 1996 · Accepted: 24 February 1997 相似文献