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  2. Template:Acids and bases - Wikipedia

    en.wikipedia.org/wiki/Template:Acids_and_bases

    Acids and bases; Acceptor number; Acid; Acidbase reaction; Acidbase homeostasis; Acid strength; Acidity function; Amphoterism; Base; Buffer solutions ...

  3. Template : Blood gas, acid-base, & gas exchange terms

    en.wikipedia.org/wiki/Template:Blood_gas,_acid...

    Blood gas, acid-base, and gas exchange terms; P a O 2: Arterial oxygen tension, or partial pressure: P A O 2: Alveolar oxygen tension, or partial pressure: P a CO 2: Arterial carbon dioxide tension, or partial pressure: P A CO 2: Alveolar carbon dioxide tension, or partial pressure: P v O 2: Oxygen tension of mixed venous blood: P (A-a) O 2 ...

  4. pH - Wikipedia

    en.wikipedia.org/wiki/PH

    In living organisms, the pH of various Body fluids, cellular compartments, and organs is tightly regulated to maintain a state of acid-base balance known as acidbase homeostasis. Acidosis , defined by blood pH below 7.35, is the most common disorder of acidbase homeostasis and occurs when there is an excess of acid in the body.

  5. RICE chart - Wikipedia

    en.wikipedia.org/wiki/RICE_chart

    An ICE table or RICE box or RICE chart is a tabular system of keeping track of changing concentrations in an equilibrium reaction. ICE stands for initial, change, equilibrium . It is used in chemistry to keep track of the changes in amount of substance of the reactants and also organize a set of conditions that one wants to solve with. [ 1 ]

  6. Davenport diagram - Wikipedia

    en.wikipedia.org/wiki/Davenport_diagram

    Recall that the relationship represented in a Davenport diagram is a relationship between three variables: P CO 2, bicarbonate concentration and pH.Thus, Fig. 7 can be thought of as a topographical map—that is, a two-dimensional representation of a three-dimensional surface—where each isopleth indicates a different partial pressure or “altitude.”

  7. pH indicator - Wikipedia

    en.wikipedia.org/wiki/PH_indicator

    For example, if the concentration of the conjugate base is 10 times greater than the concentration of the acid, their ratio is 10:1, and consequently the pH is pK a + 1 or pK b + 1. Conversely, if a 10-fold excess of the acid occurs with respect to the base, the ratio is 1:10 and the pH is pK a − 1 or pK b − 1.