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関連する概念動画

Efflorescence in Masonry01:25

Efflorescence in Masonry

Efflorescence in masonry walls appears as a fluffy crystalline powder, often white, resulting from water-soluble salts within the masonry or mortar. When water penetrates the masonry, it dissolves these salts and brings them to the surface, where they are deposited upon evaporation of water.
While initial efflorescence is common post-construction and can be cleaned with water and a brush, in certain instances, efflorescence can reappear and gradually diminish over time as salts are leached out...
Sulfur Assimilation01:20

Sulfur Assimilation

Sulfur is an essential element in biological systems, contributing to synthesizing key biomolecules, including amino acids such as cysteine and methionine, and cofactors such as coenzyme A and biotin. Microorganisms primarily assimilate sulfur as sulfate (SO₄²⁻) from the environment, which must undergo a series of biochemical transformations before it can be incorporated into cellular components. As sulfate is highly oxidized, it must undergo assimilatory sulfate reduction to become...
The Sulfur Cycle01:22

The Sulfur Cycle

Sulfur, an important element in the chemical makeup of proteins, is recycled through the atmosphere and aquatic and terrestrial environments. Found in the atmosphere as sulfur dioxide (SO2), sulfur is released by decaying organisms, weathered rocks, geothermal vents, volcanos, and burning fossil fuels. It is deposited into the ecosystem, cycled through the biotic community, and either released back into the atmosphere as gas or deposited in marine sediment for long-term storage and eventual...
Washing, Drying, and Ignition of Precipitates00:52

Washing, Drying, and Ignition of Precipitates

After filtration, the precipitate is washed to remove coprecipitated impurities and any remaining mother liquor. Colloidal precipitates, such as silver chloride, are washed with an electrolyte (such as dilute nitric acid) to prevent the peptization of the precipitate. In the case of slightly soluble precipitates, the wash solution contains a common ion to reduce solubility. Lead sulfate, which is slightly soluble in water, is washed with dilute sulfuric acid. Similarly, wash solutions may be...
Portland Cement01:21

Portland Cement

Portland cement is the essential binding ingredient in concrete, made from finely ground materials including lime, iron, silica, and alumina. Lime is derived primarily from limestone, marble, marl, seashells, and clays, which also supply iron and alumina, while silica is sourced from sand, chalk, and bauxite. Contemporary manufacturing of Portland cement is a significant source of carbon dioxide emissions, prompting research into reducing its content in concrete through alternative...
Types of Cement II01:22

Types of Cement II

Portland blast-furnace cement is made by blending Portland cement clinker with granulated blast-furnace slag, which accounts for 25 to 65 percent of the cement's weight. Despite its similarities to ordinary Portland (Type I) cement in terms of fineness and setting times, its early strength is lower, though it achieves comparable strength later on. It's particularly suited for mass concrete structures and marine environments due to its lower heat of hydration and superior sulfate resistance.

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関連する実験動画

Updated: Jul 12, 2026

Atom Probe Tomography Analysis of Exsolved Mineral Phases
08:14

Atom Probe Tomography Analysis of Exsolved Mineral Phases

Published on: October 25, 2019

1979年のSoufriere爆発的な噴火からのテフラ.

H Sigurdsson

    Science (New York, N.Y.)
    |June 4, 1982
    PubMed
    まとめ

    1979年のソフリエール噴火では,幼生性および非幼生性物質で構成されたテフラが噴出されました. 湿った噴火柱における粒子の集積と蓄積的なラピリ形成は,堆積物の微細な粒子のサイズと劣った分類を説明する.

    科学分野:

    • 火山学 火山学とは
    • 地質化学 地質化学

    背景:

    • 1979年のSoufriere噴火では,かなりの量のテフラが発生した.
    • テフラ鉱床は,未成年者と未成年者の両方を含んでいた.

    研究 の 目的:

    • 1979年のソフリエール噴火によるテフラの構成と特性を分析する.
    • 鉱床の独特の粒子のサイズと分類に起因するプロセスを理解する.

    主な方法:

    • テフラ堆積物の組成の分析 (若者対非若者).
    • テフラの粒子の大きさと分類分析.
    • 粒子の集積と蓄積的なラピリ形成の解釈.

    主要な成果:

    • テフラは40%の青春期玄武岩アンデサイトと60%の非青春期材料でした.
    • 鉱床は,細粒子の大きさ,不十分な分類,そして双方向性を示した.
    • 証拠は粒子の集積と蓄積的なラピリ形成を示唆しています.

    結論:

    • フレアトマグマティック爆発は,1971年から1972年のラバ島を断片化し,未成年の物質を寄与しました.
    • 湿った噴火柱は粒子の集積と蓄積的なラピリ形成を容易にした.

    さらに関連する動画

    Data Processing Methods for 3D Seismic Imaging of Subsurface Volcanoes: Applications to the Tarim Flood Basalt
    07:58

    Data Processing Methods for 3D Seismic Imaging of Subsurface Volcanoes: Applications to the Tarim Flood Basalt

    Published on: August 7, 2017

    Quantitative Detection of Trace Explosive Vapors by Programmed Temperature Desorption Gas Chromatography-Electron Capture Detector
    07:57

    Quantitative Detection of Trace Explosive Vapors by Programmed Temperature Desorption Gas Chromatography-Electron Capture Detector

    Published on: July 25, 2014

    関連する実験動画

    Last Updated: Jul 12, 2026

    Atom Probe Tomography Analysis of Exsolved Mineral Phases
    08:14

    Atom Probe Tomography Analysis of Exsolved Mineral Phases

    Published on: October 25, 2019

    Data Processing Methods for 3D Seismic Imaging of Subsurface Volcanoes: Applications to the Tarim Flood Basalt
    07:58

    Data Processing Methods for 3D Seismic Imaging of Subsurface Volcanoes: Applications to the Tarim Flood Basalt

    Published on: August 7, 2017

    Quantitative Detection of Trace Explosive Vapors by Programmed Temperature Desorption Gas Chromatography-Electron Capture Detector
    07:57

    Quantitative Detection of Trace Explosive Vapors by Programmed Temperature Desorption Gas Chromatography-Electron Capture Detector

    Published on: July 25, 2014

  • これらのプロセスは,1979年のSoufriere噴火の異常な堆積物の特徴を説明します.