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Concretions can form in non-sedimentary rocks through hydrothermal precipitation and mineral replacement
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Retrieved geological literature documents that carbonate concretions can form via hydrothermal processes in volcanic and hydrothermal thermal fields, supporting the occurrence of concretion formation in non-sedimentary rock settings through hydrothermal and replacement mechanisms.

Evidence for · 4
2023 · cited by 9
The study of well-preserved organic matter (OM) within mineral concretions has provided key insights into depositional and environmental conditions in deep time. Concretions of varied compositions, including carbonate, phosphate, and iron-based minerals, have been found to host exceptionally preserved fossils. Organic geochemical characterization of concretion-encapsulated OM promises valuable new information of fossil preservation, paleoenvironments, and even direct taxonomic information to further illuminate the evolutionary dynamics of our planet and its biota. Full exploitation of this largely untapped geochemical archive, however, requires a sophisticated understanding of the prevalence, formation controls and OM sequestration properties of mineral concretions. Past research has led to the proposal of different models of concretion formation and OM preservation. Nevertheless, the formation mechanisms and controls on OM preservation in concretions remain poorly understood. Here we provide a detailed review of the main types of concretions and formation pathways with a focus on the role of microbes and their metabolic activities. In addition, we provide a comprehensive account of organic geochemical, and complimentary inorganic geochemical, morphological, microbial and paleontological, analytical methods, including recent advancements, relevant to the characterization of concretions and sequestered OM. The application and outcome of several early organic geochemical studies of concretion-impregnated OM are included to demonstrate how this underexploited geo-biological record can provide new insights into the Earth's evolutionary record. This paper also attempts to shed light on the current status of this research and major challenges that lie ahead in the further application of geo-paleo-microbial and organic geochemical research of concretions and their host fossils. Recent efforts to bridge the knowledge and communication gaps in this multidisciplinary research area are also discussed, with particular emphasis on research with significance for interpreting the molecular record in extraordinarily preserved fossils.
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2025 · cited by 0
The resource demands for the ongoing energy transition require increased exploration for metal deposits. Clastic dominated (CD-type) deposits are an important target in this search because of their size and high grade. To narrow down the search for CD-type deposits, it is important to understand how they formed. One proposed formation mechanism for these deposits is sedimentary exhalative (SEDEX), in which fluid discharge from vents resulting in stratiform sulfide precipitation on the seafloor. Alternatively, it has been suggested that CD-type deposits can form beneath the seafloor, when hydrothermal fluids dissolve specific minerals (e.g., carbonate, barite) and precipitate ore in the host rock. In his study we simulate several ways in which subseafloor replacement can create stratiform mineralization that occur along laminae or single beds.We ran a series of models using the software X2t (part of GWB) to investigate scenarios where hydrothermal fluids formed stratiform mineralization through carbonate replacement of a mixed carbonate carbonaceous mudstone unit. The models were based on the mineralogy of the Teena deposit (Australia). In the simulations, which used organic material and/or pyrite as redox buffers, a slightly acidic hydrothermal fluid replaced dolomite with sphalerite.One scenario that resulted in stratiform mineralization was in a system with high rates of flow. The Péclet number is the ratio of advective to diffusive transport. When the Péclet number was high, advection dominated over diffusion and mineralization concentrated along preferential flow paths. The dissolution and replacement of carbonate during alteration created a feedback mechanism that enhanced flow along already permeable zones. When there were existing stratigraphic based differences in permeability, the required Péclet number for stratiform mineralization was lower.Another set of models that produced stratiform mineralization had reducing beds that acted as a reductant for metals flowing through adjacent units. Reduced compounds flowed out of the reducing beds and caused pyrite or sphalerite precipitation in adjacent cells. This redox gradient could be created by the presence of organic matter or a simple permeability difference. Finally, a model containing mineralogic heterogeneities resulted in stratiform mineralization by creating beds with lower pH. Acid formed in areas with low initial concentrations of carbonate minerals. The acidic fluid then seeped into the adjacent beds with higher carbonate mineral concentrations. The dissolution of carbonate in the adjacent beds led to the creation preferential flow paths and stratiform mineralization.The models simulated ways in which heterogeneities and preferential flow paths in a mixed carbonate carbonaceous mudstone unit could create stratiform mineralization during hydrothermal alteration. High flow rates and variations in permeability or mineralogy can result in not only the stratiform mineralization of the ore minerals, but also of pyrite as a reaction front preceding the ore deposition forming a distal halo.
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Metasomatic replacement | Hydrothermal Processes, Chemical Reactions & Petrology | Britannica # metasomatic replacement mineralogy Ask Anything Homework Help Written and fact-checked by Britannica Editors Britannica AI Ask Anything Table of Contents Table of Contents Ask Anything metasomatic replacement, the process of simultaneous solution and deposition whereby one mineral replaces another. It is an important process in the formation of epigenetic mineral deposits(those formed after the formation of the host rock), in the formation of high- and intermediate-temperature hydrothermal ore deposits, and in supergene sulfide enrichment(enriched by generally downward movement). Metasomatic replacement is the method whereby wood petrifies (silica replaces the wood fibres), one mineral forms a pseudomorph of another, or an ore body takes the place of an equal volume of rock. Replacement occurs when a mineralizing solution encounters minerals unstable in its presence. The original
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The Composition, Structure, and Origin of Carbonate Concretions Sampled in the South Kambalnyi Central Thermal Field, Kamchatka | Journal of Volcanology and Seismology | Springer Nature Link # The Composition, Structure, and Origin of Carbonate Concretions Sampled in the South Kambalnyi Central Thermal Field, Kamchatka - Open access - Published: 10 September 2021 - Volume 15, pages 258–272 (2021) - Cite this article You have full access to this open access article Journal of Volcanology and Seismology ### Abstract Carbonate concretions are formed at the base of a sequence of hydrothermal clay in the South Kambalnyi Central Thermal Field situated in the southern part of the Kambalnyi volcanic mountain range, Kamchatka. The concretions have complex chemical and mineral compositions: apart from aragonite which is the main component of each layer, the chemical compounds identified there include oxides of iron and silicon, sulfates of calcium and barium, sulfides of iron and other metals, carbonates of iron and manganese, siliceous ferromanganese formations, nitrogen compounds, and phosphates of calcium and rare metals. The concretions have diverse structures and textures that in
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