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Effect of Sea Water on Concrete01:22

Effect of Sea Water on Concrete

955
Concrete exposed to seawater can undergo degradation like the dissolution of ettringite and gypsum, increasing the material's porosity and decreasing its strength. In contrast, the crystallization of salts within the concrete's pores can cause expansion, particularly above the waterline where evaporation occurs. Nonetheless, this expansion only happens when seawater, enabled by the concrete's permeability, manages to infiltrate the structure.
Concrete in areas between tide marks,...
955
Testing Water Quality01:14

Testing Water Quality

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When the quality of water for concrete preparation is uncertain, its impact on the setting time of cement and compressive strength of mortar is assessed by comparison with de-ionized or distilled water benchmarks. American Society for Testing and Materials (ASTM) C1602 requires the setting times to be within 90 minutes of the control, British Standard (BS) 3146:1980 allows a 30-minute variance in the initial setting, while British Standards European Norm (BS EN) 1008 specifies initial setting...
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Determining the pH of Salt Solutions04:08

Determining the pH of Salt Solutions

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The pH of a salt solution is determined by its component anions and cations. Salts that contain pH-neutral anions and the hydronium ion-producing cations form a solution with a pH less than 7. For example, in ammonium nitrate (NH4NO3) solution, NO3− ions do not react with water whereas NH4+ ions produce the hydronium ions resulting in the acidic solution.  In contrast, salts that contain pH-neutral cations and the hydroxide ion-producing anions form a solution with a pH greater than 7. For...
46.7K
Diagnosing Acidosis and Alkalosis01:24

Diagnosing Acidosis and Alkalosis

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Diagnosing acid-base imbalances involves systematically analyzing arterial blood samples, focusing on three key measurements: pH, bicarbonate (HCO3−) concentration, and carbon dioxide partial pressure (PCO2). This analysis follows a four-step process that helps identify the imbalance's underlying cause and nature.
First, the pH level is assessed to determine whether the blood pH is normal (7.35–7.45), low (acidosis), or high (alkalosis).
Next, the PCO2  and...
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Quality of Water01:19

Quality of Water

498
In concrete preparation, the quality of water is paramount as it affects the strength and durability of the concrete. Potable water is usually preferred; however, it must not have excessive sodium or potassium to prevent compromising the concrete's integrity. Water quality is typically evaluated based on impurities such as dissolved solids, chlorides, and sulfates, and its pH value is ideally between 6 and 8. Even slightly acidic natural water may be acceptable unless it contains harmful...
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Video Experimental Relacionado

Updated: Jan 12, 2026

Extracellular Multi-Unit Recording from the Olfactory Nerve of Teleosts
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Extracellular Multi-Unit Recording from the Olfactory Nerve of Teleosts

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Seguimiento de la acidificación peligrosa de los océanos mediante el ruido ambiental

Paul Voosen

    Science (New York, N.Y.)
    |October 30, 2025
    PubMed
    Resumen

    Una nueva técnica acústica ofrece una forma más sencilla de monitorear la vida marina. Este método ayuda a rastrear las amenazas del aumento de las emisiones de carbono a los ecosistemas oceánicos.

    Área de la Ciencia:

    • Biología marina
    • Tecnología acústica
    • Ciencias del medio ambiente

    Sus antecedentes:

    • El aumento de los niveles de dióxido de carbono atmosférico está aumentando la acidez de los océanos.
    • La acidificación de los océanos representa una amenaza significativa para los organismos y los ecosistemas marinos.
    • Los métodos actuales de monitoreo de la vida marina son a menudo complejos y requieren muchos recursos.

    Objetivo del estudio:

    • Introducir y evaluar una nueva técnica acústica para el seguimiento de la vida marina.
    • Evaluar la viabilidad de utilizar la acústica para detectar los impactos de las emisiones de carbono en los entornos marinos.
    • Proporcionar una herramienta más accesible para la evaluación de la salud de los ecosistemas marinos.

    Principales métodos:

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  • Desarrollo de sensores acústicos especializados y algoritmos de procesamiento de señales.
  • Desarrollo de sistemas de seguimiento acústico en diversos hábitats marinos.
  • Análisis de los datos acústicos para identificar patrones indicativos de la presencia de vida marina y los niveles de estrés.
  • Principales resultados:

    • La técnica acústica diferenció con éxito entre varios paisajes sonoros marinos.
    • Cambios en las señales acústicas correlacionadas con factores de estrés ambientales conocidos, incluidos los relacionados con las emisiones de carbono.
    • El método demostró el potencial para el monitoreo no invasivo y a gran escala de la vida marina.

    Conclusiones:

    • El monitoreo acústico presenta un enfoque prometedor y rentable para evaluar la salud del ecosistema marino.
    • Esta técnica puede ayudar a comprender y mitigar los impactos del cambio climático, específicamente el aumento de las emisiones de carbono, en la biodiversidad marina.
    • La investigación y el desarrollo adicionales pueden mejorar la aplicación de la tecnología acústica en los esfuerzos de conservación marina.