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  2. File:P-T Diagram for CaCO3.svg - Wikipedia

    en.wikipedia.org/wiki/File:P-T_Diagram_for_CaCO3.svg

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  3. Solubility chart - Wikipedia

    en.wikipedia.org/wiki/Solubility_chart

    The following chart shows the solubility of various ionic compounds in water at 1 atm pressure and room temperature (approx. 25 °C, 298.15 K). "Soluble" means the ionic compound doesn't precipitate, while "slightly soluble" and "insoluble" mean that a solid will precipitate; "slightly soluble" compounds like calcium sulfate may require heat to precipitate.

  4. Alkali–carbonate reaction - Wikipedia

    en.wikipedia.org/wiki/Alkali–carbonate_reaction

    The alkali–carbonate reaction is an alteration process first suspected in the 1950s in Canada for the degradation of concrete containing dolomite aggregates. [ 1 ] [ 2 ] Alkali from the cement might react with the dolomite crystals present in the aggregate inducing the production of brucite , (MgOH) 2 , and calcite (CaCO 3 ).

  5. Common-ion effect - Wikipedia

    en.wikipedia.org/wiki/Common-ion_effect

    HCl → H + + Cl −. If HCl is added to the H 2 S solution, H + is a common ion and creates a common ion effect. Due to the increase in concentration of H + ions from the added HCl, the equilibrium of the dissociation of H 2 S shifts to the left and keeps the value of K a constant.

  6. Calcium carbonate - Wikipedia

    en.wikipedia.org/wiki/Calcium_carbonate

    Crystal structure of calcite. Calcium carbonate is a chemical compound with the chemical formula Ca CO 3.It is a common substance found in rocks as the minerals calcite and aragonite, most notably in chalk and limestone, eggshells, gastropod shells, shellfish skeletons and pearls.

  7. Calcium hydroxide - Wikipedia

    en.wikipedia.org/wiki/Calcium_hydroxide

    Calcium hydroxide is modestly soluble in water, as seen for many dihydroxides. Its solubility increases from 0.66 g/L at 100 °C to 1.89 g/L at 0 °C. [8] Its solubility product K sp of 5.02 × 10 −6 at 25 °C, [1] its dissociation in water is large enough that its solutions are basic according to the following dissolution reaction:

  8. Barium chloride - Wikipedia

    en.wikipedia.org/wiki/Barium_chloride

    The second step requires reaction between barium sulfide and hydrogen chloride: BaS + 2 HCl → BaCl 2 + H 2 S. or between barium sulfide and calcium chloride: BaS + CaCl 2 → CaS + BaCl 2 [2] In place of HCl, chlorine can be used. [7] Barium chloride is extracted out from the mixture with water.

  9. Conjugate (acid-base theory) - Wikipedia

    en.wikipedia.org/wiki/Conjugate_(acid-base_theory)

    An example of this case would be the splitting of hydrochloric acid HCl in water. Since HCl is a strong acid (it splits up to a large extent), its conjugate base (Cl −) will be weak. Therefore, in this system, most H + will be hydronium ions H 3 O + instead of attached to Cl − anions and the conjugate bases will be weaker than water molecules.