Javascript must be enabled to continue!
Geology, Fluid Inclusions, and Isotopic Geochemistry of the Jinman Sediment‐Hosted Copper Deposit in the Lanping Basin, China
View through CrossRef
AbstractThe Jinman Cu polymetallic deposit is located within Middle Jurassic sandstone and slate units in the Lanping Basin of southwestern China. The Cu mineralization occurs mainly as sulfide‐bearing quartz–carbonate veins in faults and fractures, controlled by a Cenozoic thrust–nappe system. A detailed study of fluid inclusions from the Jinman deposit distinguishes three types of fluid inclusions in syn‐ore quartz and post‐ore calcite: aqueous water (type A), CO2–H2O (type B), and CO2‐dominated (type C) fluid inclusions.The homogenization temperatures of CO2–H2O inclusions vary from 208°C to 329°C, with corresponding salinities from 0.6 to 4.6 wt.% NaCl equivalent. The homogenization temperatures of the aqueous fluid inclusions mainly range from 164°C to 249°C, with salinities from 7.2 to 20.2 wt.% NaCl equivalent. These characteristics of fluid inclusions are significantly different from those of basinal mineralization systems, but similar to those of orogenic or magmatic mineralization systems. The H and O isotope compositions suggest that the ore‐forming fluid is predominantly derived from magmatic water, with the participation of basinal brine. The δ34S values are widely variable between −9.7 ‰ and 9.7 ‰, with a mode distribution around zero, which may be interpreted by the variation in physico‐chemical conditions or by compositional variation of the sources. The mixing of a deeply sourced CO2‐rich fluid with basinal brine was the key mechanism responsible for the mineralization of the Jinman deposit.
Title: Geology, Fluid Inclusions, and Isotopic Geochemistry of the Jinman Sediment‐Hosted Copper Deposit in the Lanping Basin, China
Description:
AbstractThe Jinman Cu polymetallic deposit is located within Middle Jurassic sandstone and slate units in the Lanping Basin of southwestern China.
The Cu mineralization occurs mainly as sulfide‐bearing quartz–carbonate veins in faults and fractures, controlled by a Cenozoic thrust–nappe system.
A detailed study of fluid inclusions from the Jinman deposit distinguishes three types of fluid inclusions in syn‐ore quartz and post‐ore calcite: aqueous water (type A), CO2–H2O (type B), and CO2‐dominated (type C) fluid inclusions.
The homogenization temperatures of CO2–H2O inclusions vary from 208°C to 329°C, with corresponding salinities from 0.
6 to 4.
6 wt.
% NaCl equivalent.
The homogenization temperatures of the aqueous fluid inclusions mainly range from 164°C to 249°C, with salinities from 7.
2 to 20.
2 wt.
% NaCl equivalent.
These characteristics of fluid inclusions are significantly different from those of basinal mineralization systems, but similar to those of orogenic or magmatic mineralization systems.
The H and O isotope compositions suggest that the ore‐forming fluid is predominantly derived from magmatic water, with the participation of basinal brine.
The δ34S values are widely variable between −9.
7 ‰ and 9.
7 ‰, with a mode distribution around zero, which may be interpreted by the variation in physico‐chemical conditions or by compositional variation of the sources.
The mixing of a deeply sourced CO2‐rich fluid with basinal brine was the key mechanism responsible for the mineralization of the Jinman deposit.
Related Results
Sr, S, and O Isotope Compositions of Evaporites in the Lanping–Simao Basin, China
Sr, S, and O Isotope Compositions of Evaporites in the Lanping–Simao Basin, China
Evaporites are widely distributed within continental “red beds” in the Lanping–Simao Basin, west Yunnan, China. Sr (Strontium), S (Sulfur), and O (Oxygen) isotope compositions have...
Microthermometry and Synchrotron Radiation X‐ray Fluorescence Analysis of Fluid Inclusions in the Dongping Gold Deposit, Northern Margin of the North China Craton
Microthermometry and Synchrotron Radiation X‐ray Fluorescence Analysis of Fluid Inclusions in the Dongping Gold Deposit, Northern Margin of the North China Craton
AbstractTo shed light on the genesis of the Dongping deposit and reveal the behaviour of CO2, Au and other ore elements (e.g., Cu, Fe, Zn, As, Sb, Co etc.) in ore‐forming fluids, p...
Fluid Inclusion and Carbon‐Oxygen Isotope Studies of the Hujiayu Cu Deposit, Zhongtiao Mountains, China: Implications for Syn‐metamorphic Copper Remobilization
Fluid Inclusion and Carbon‐Oxygen Isotope Studies of the Hujiayu Cu Deposit, Zhongtiao Mountains, China: Implications for Syn‐metamorphic Copper Remobilization
The Hujiayu Cu deposit, representative of the “HuBi‐type” Cu deposits in the Zhongtiao Mountains district in the southern edge of the North China Craton, is primarily hosted in gra...
Chapter 4 Temporal-Spatial Distribution of Metallic Ore Deposits in China and Their Geodynamic Settings
Chapter 4 Temporal-Spatial Distribution of Metallic Ore Deposits in China and Their Geodynamic Settings
Abstract
The temporal-spatial distribution of metallic ore deposits in China, including magmatic Ni-Cu ± platinum group elements (PGE), porphyry, skarn, volcanogenic...
A Study of Ore‐forming Fluids in the Shimensi Tungsten Deposit, Dahutang Tungsten Polymetallic Ore Field, Jiangxi Province, China
A Study of Ore‐forming Fluids in the Shimensi Tungsten Deposit, Dahutang Tungsten Polymetallic Ore Field, Jiangxi Province, China
The Dahutang tungsten polymetallic ore field is located north of the Nanling W–Sn polymetallic metallogenic belt and south of the Middle–Lower Yangtze River Valley Cu–Mo–Au–Fe porp...
The Change Law and Formation Cause of Sediment Erosion and Deposition in the Three Gorges Reservoir in the Past 20 Years
The Change Law and Formation Cause of Sediment Erosion and Deposition in the Three Gorges Reservoir in the Past 20 Years
During the past 20 years of the Three Gorges Reservoir impoundment , the incoming water and sediment conditions have changed constantly in the upper reaches of the Three Gorges, re...
Diffused and localized sediment production processes in a distributed transport model
Diffused and localized sediment production processes in a distributed transport model
<p>The identification of preferential sediment production areas within a river basin is essential to improve predictions of sediment load and its sources, and to iden...
Estimation of Sediment Load in Arun River Basin
Estimation of Sediment Load in Arun River Basin
The single sediment rating equation is often used to estimate the suspended load in river, The sediment concentration is assumed as a function of mean daily discharge using a power...

