buffering, simple - definitie. Wat is buffering, simple
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Wat (wie) is buffering, simple - definitie

BUFFER SOLUTION
Bicarbonate buffering system
  • Carbon dioxide, a by-product of [[cellular respiration]], is dissolved in the blood, where it is taken up by red blood cells and converted to carbonic acid by carbonic anhydrase. Most of the carbonic acid then dissociates to bicarbonate and hydrogen ions.

Simple (video game series)         
VIDEO GAME SERIES
Simple 2000 Series; Simple Series; Simple 2000; Simple 1500; Simple 1500 series; Simple series; Simple series video games
The series is a line of budget-priced video games published by Japanese company D3 Publisher, a subsidiary of Bandai Namco Entertainment. Games in the series have been developed by several different companies, including Sandlot, Success, Irem, and Taito.
Simple past         
BASIC FORM OF THE PAST TENSE IN MODERN ENGLISH
Simple past tense; Past simple tense; Past simple; Simple Past; Simple past (English); Past indefinite
The simple past, past simple or past indefinite, sometimes called the preterite, is the basic form of the past tense in Modern English. It is used principally to describe events in the past, although it also has some other uses.
Simple Kaur         
WEIGHTLIFTER
Simple Kaur BHUMRAH; Simple Bhumrah
Simple Kaur Bhumrah (born 20 March 1986) is an Indian weightlifter. She won the silver medal in the Women's +75 kg category at the 2006 Commonwealth Games.

Wikipedia

Bicarbonate buffer system

The bicarbonate buffer system is an acid-base homeostatic mechanism involving the balance of carbonic acid (H2CO3), bicarbonate ion (HCO
3
), and carbon dioxide (CO2) in order to maintain pH in the blood and duodenum, among other tissues, to support proper metabolic function. Catalyzed by carbonic anhydrase, carbon dioxide (CO2) reacts with water (H2O) to form carbonic acid (H2CO3), which in turn rapidly dissociates to form a bicarbonate ion (HCO
3
) and a hydrogen ion (H+) as shown in the following reaction:

As with any buffer system, the pH is balanced by the presence of both a weak acid (for example, H2CO3) and its conjugate base (for example, HCO
3
) so that any excess acid or base introduced to the system is neutralized.

Failure of this system to function properly results in acid-base imbalance, such as acidemia (pH < 7.35) and alkalemia (pH > 7.45) in the blood.