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  2. Acid value - Wikipedia

    en.wikipedia.org/wiki/Acid_value

    In chemistry, acid value (AV, acid number, neutralization number or acidity) is a number used to quantify the acidity of a given chemical substance.It is the quantity of base (usually potassium hydroxide (KOH)), expressed as milligrams of KOH required to neutralize the acidic constituents in 1 gram of a sample.

  3. Charlot equation - Wikipedia

    en.wikipedia.org/wiki/Charlot_equation

    The Charlot equation, named after Gaston Charlot, is used in analytical chemistry to relate the hydrogen ion concentration, and therefore the pH, with the formal analytical concentration of an acid and its conjugate base. It can be used for computing the pH of buffer solutions when the approximations of the Henderson–Hasselbalch equation ...

  4. Henderson–Hasselbalch equation - Wikipedia

    en.wikipedia.org/wiki/Henderson–Hasselbalch...

    The Henderson–Hasselbalch equation can be used to model these equilibria. It is important to maintain this pH of 7.4 to ensure enzymes are able to work optimally. [10] Life threatening Acidosis (a low blood pH resulting in nausea, headaches, and even coma, and convulsions) is due to a lack of functioning of enzymes at a low pH. [10]

  5. Potassium acetate - Wikipedia

    en.wikipedia.org/wiki/Potassium_acetate

    Potassium hydrogen diacetate (CAS #4251-29-0) with formula KH(OOCCH 3) 2 is a related food additive with the same E number as potassium acetate. Medicine and biochemistry [ edit ]

  6. Hydroxyl value - Wikipedia

    en.wikipedia.org/wiki/Hydroxyl_value

    The conversion between hydroxyl value and other hydroxyl content measurements is obtained by multiplying the hydroxyl value by the factor 17/560. [2] The chemical substance may be a fat, oil, natural or synthetic ester, or other polyol. [3] ASTM D 1957 [4] and ASTM E222-10 [5] describe several versions of this method of determining hydroxyl value.

  7. Neutralization (chemistry) - Wikipedia

    en.wikipedia.org/wiki/Neutralization_(chemistry)

    [H +] 2 + T A [H +] 2 /K aK w = 0. and, after rearrangement and taking logarithms, pH = ⁠ 1 / 2 ⁠ pK w + ⁠ 1 / 2 ⁠ log (1 + ⁠ T A / K a ⁠) With a dilute solution of the weak acid, the term 1 + ⁠ T A / K a ⁠ is equal to ⁠ T A / K a ⁠ to a good approximation. If pK w = 14, pH = 7 + (pK a + log T A)/2. This equation ...

  8. Determination of equilibrium constants - Wikipedia

    en.wikipedia.org/wiki/Determination_of...

    The limitations arise because the Nernst equation breaks down at very low or very high pH. When a glass electrode is used to obtain the measurements on which the calculated equilibrium constants depend, the precision of the calculated parameters is limited by secondary effects such as variation of liquid junction potentials in the electrode.

  9. Acid strength - Wikipedia

    en.wikipedia.org/wiki/Acid_strength

    Its conjugate base is the acetate ion with K b = 10 −14 /K a = 5.7 x 10 −10 (from the relationship K a × K b = 10 −14), which certainly does not correspond to a strong base. The conjugate of a weak acid is often a weak base and vice versa.