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  2. Respiratory compensation - Wikipedia

    en.wikipedia.org/wiki/Respiratory_compensation

    The respiratory brainstem centers can only compensate for metabolic acid-base disturbances (metabolic acidosis and metabolic alkalosis). Renal compensation is needed to balance respiratory acid-base syndromes (respiratory acidosis and respiratory alkalosis). The kidneys can compensate for both, respiratory and metabolic acid-base imbalances.

  3. Respiratory acidosis - Wikipedia

    en.wikipedia.org/wiki/Respiratory_acidosis

    Acute respiratory acidosis occurs when an abrupt failure of ventilation occurs. This failure in ventilation may be caused by depression of the central respiratory center by cerebral disease or drugs, inability to ventilate adequately due to neuromuscular disease (e.g., myasthenia gravis, amyotrophic lateral sclerosis, Guillain–Barré syndrome, muscular dystrophy), or airway obstruction ...

  4. Winters's formula - Wikipedia

    en.wikipedia.org/wiki/Winters's_formula

    One difficulty in evaluation acid-base derangements is the presence of multiple pathologies. A patient may present with a metabolic acidosis process alone, but they may also have a concomitant respiratory acidosis. Winters's formula gives an expected value for the patient's P CO 2; the patient's actual (measured) P CO 2 is then compared to this ...

  5. 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.”

  6. Acid–base homeostasis - Wikipedia

    en.wikipedia.org/wiki/Acidbase_homeostasis

    Acidbase homeostasis is the homeostatic regulation of the pH of the body's extracellular fluid (ECF). [1] The proper balance between the acids and bases (i.e. the pH) in the ECF is crucial for the normal physiology of the body—and for cellular metabolism . [ 1 ]

  7. Base excess - Wikipedia

    en.wikipedia.org/wiki/Base_excess

    Base excess is defined as the amount of strong acid that must be added to each liter of fully oxygenated blood to return the pH to 7.40 at a temperature of 37°C and a pCO 2 of 40 mmHg (5.3 kPa). [2] A base deficit (i.e., a negative base excess) can be correspondingly defined by the amount of strong base that must be added.

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