Ventilation principles
Read the topic background here, then explore the labeled visual and structured learning explanations on this page.
Read explanation on this page ↓ See diagram ↓Mechanical ventilation — on-site reading
This reference extract addresses Mechanical ventilation, a related subject. It does not cover every part of Ventilation principles.. The article introduction is reproduced here, so you do not need to leave MedAtlas to read it. It may not match the latest official medical guidance.
Mechanical ventilation or assisted ventilation is the medical term for using a ventilator machine to fully or partially provide artificial ventilation. Mechanical ventilation helps move air into and out of the lungs, with the main goal of helping the delivery of oxygen and removal of carbon dioxide. Mechanical ventilation is used for many reasons, including to protect the airway due to mechanical or neurologic cause, to ensure adequate oxygenation, or to remove excess carbon dioxide from the lungs. Various healthcare providers are involved with the use of mechanical ventilation and people who require ventilators are typically monitored in an intensive care unit.
Mechanical ventilation is termed invasive if it involves an instrument to create an airway that is placed inside the trachea. This is done through an endotracheal tube or nasotracheal tube. For non-invasive ventilation in people who are conscious, face or nasal masks are used. The two main types of mechanical ventilation include positive pressure ventilation where air is pushed into the lungs through the airways, and negative pressure ventilation where air is pulled into the lungs. There are many specific modes of mechanical ventilation, and their nomenclature has been revised over the decades as the technology has continually developed.
How this connects to Anaesthesiology and Critical Care
Pulmonary function combines airway ventilation, alveolar gas exchange, blood perfusion and respiratory-muscle mechanics. Airflow limitation, restricted expansion, impaired diffusion and ventilation–perfusion mismatch are distinct mechanisms that may coexist and require different investigations.
Text credit: Wikipedia contributors, “Mechanical ventilation”, original article · authors & revision history · CC BY-SA 4.0. Unmodified opening extract, accessed 24 September 2026. This Wikipedia-derived section is provided under CC BY-SA 4.0; the independent MedAtlas notes and design are separate works.
Ventilation principles · visual study map
Scalable vector illustration. Labeled conceptual map, not a precise anatomical, histological or diagnostic image.The wording in this learning map is adapted from the attributed Wikipedia background section below (CC BY-SA 4.0).
What the underlying subject studies
Anaesthesiology and critical care connect airway anatomy, ventilation, perfusion, consciousness, pain and organ support. Small changes in physiology may have important effects during illness and procedures.
How mechanisms and evidence connect
Clinical monitoring provides partial measurements, each with limitations. Mechanical, pharmacological and hemodynamic effects interact and must be interpreted in the whole-patient context.
How to develop a sound explanation
For study, trace the normal physiologic variable, possible disturbance, available monitoring and broad safety principles. This website does not supply procedural steps or device settings for clinical use.
References and verification (optional)
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NMC official CBME Curriculum 2024 and current regulations index ↗