Knowledge Check

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Last updated: September 28, 2026Bookmark

Overview

Mechanical ventilation is any means by which physical devices or machines are used to either assist or replace spontaneous respiration. It is one of the main interventions offered in the ICU.

  • Goals of mechanical ventilation
    • Maintain oxygenation
    • Maintain ventilation
    • Reduce work of breathing
    • Protect the lungs from ventilator-induced injury
    • Buy time while the underlying disease is being treated

Ventilation vs oxygenation

TermDefinitionNota bene
VentilationVentilation is the removal of CO2. It is controlled by minute ventilation and assessed using PaCO2.For a high PaCO2 → increase minute ventilation. For a low PaCO2 → reduce minute ventilation
OxygenationOxygenation is the delivery of oxygen. It is mainly controlled using FiO2 and PEEP and assessed using SpO2 and PaO2If there is hypoxia increase FiO2 first then PEEP if needed. Prolonged hyperoxia should be avoided by reducing FiO2 as soon as safely possible.

Indications for mechanical ventilation

General indicationsExamples
Airway protectionGCS ≤ 8, loss of airway reflexes, severe head and neck trauma, and upper airway obstruction
Hypoxaemic (type 1) respiratory failureARDS, pneumonia, pulmonary oedema, pulmonary embolism, and pulmonary fibrosis
Hypercapnic (type 2) respiratory failureCOPD exacerbation, neuromuscular disease, asthma, drug overdose, and respiratory muscle fatigue
Increaesd work of breathingSevere sepsis, septic shock, severe metabolic acidosis, and respiratory fatigue

Initial setting in PAC

ParameterInitial Setting
Inspiratory pressure10 – 20 cmH20 adjusted to achieve and adequate VT
RR10–20 breathes/min (commonly 12–16 breathes/minute)
Inspiratory time
FiO₂Initially 100%, then rapidly titrate (often to ~40%)
PEEP5 cmH₂O

Ventilation Variables

Mechanical ventilation can be described using 3 variables: trigger, control, and cycling.

Trigger

This is how the ventilator determines when to initiate a controlled breath.

Trigger variables and typical settings

OptionsTypical setting
Time triggeredRR of 14-20
Pressure triggered~ 2cm H20
Volume triggered2-3L/min

Control

This is the aspect the ventilator controls during inspiration. It can be pressure or volume (flow).

Control variables and typical setting

ControlTypical settings
Pressure controlledVT of 6-8 mL/kg
Volume (Flow) controlledIndirect by selecting Vt, RR and I:E ratio.

Cycling

This is what signals the ventilator to stop inspiration

Cycling variables and typical settings

Cycling variableTypical settings
Volume cycled< 25% peak flow
Flow cycledVT of 6-10 mL/kg
Time cycledProvide RR of 14-20

Ventilation Modes

This is how the ventilator delivers the breath.

NB: AC and SIMV are identical in patients with no spontaneous breaths

Types of breaths

Source of triggerLevel of support
Mandatory breathVentilatorFull support
Synchronized (assisted) breathPatientFull or partial support
Non-synchronized breathPatientNo support

Assist Control (AC) Mode

The ventilator provides a fixed tidal volume or pressure once a breath has been triggered. It has both mandatory and assisted breaths.

It is also known as CMV on some machines.

AC mode

ComponentSettings
Breath typePressure cycling, volume cycling, volume-targeted
Universal settingsFiO2 and PEEP
Major settingsTidal volume or Pressure Control, and Respiratory rate
Other settingsSensitivity, inspiratory time or flow rate, and flow pattern
Assist controlDescriptionMonitoring
Volume assist-control (V-AC)The ventilator delivers a set tidal volume with every mandatory or patient-triggered assisted breath.Monitoring the plateau pressure is important since the same tidal volume delivered to a lung with worse compliance can lead to higher airway pressures.
Pressure assist control (P-AC)The ventilator delivers breaths up to a set inspiratory pressure.The tidal volume must be monitored closely since less volume is delivered in a lung with poor compliance, and more is delivered in a lung with more compliance.
  • Indications
    • Initial mode for an intubated patient
    • Critically ill patients requiring full ventilatory support
    • In patients where fluctuations in tidal volume are undesired
  • Advantages
    • A predictable minute ventilation is possible since tidal volume is fixed
    • P-AC limits inspiratory pressure
    • Low work of breathing
  • Disadvantage
    • In V-AC, Airway pressure can rise with increased compliance or airway resistance
    • In P-AC, tidal volume can fall substantially if compliance worsens
    • Respiratory alkalosis
    • Auto-PEEP
    • Hypotension in hyperventilating patients
    • Hypotension in hyperventilating patients

Synchronised Intermittent Mandatory Ventilation (SIMV)

The ventilator provides a set number of mandatory breaths synchronised with the patient’s spontaneous efforts.

It is also known as IMV on some machines.

It is usually combined with pressure support (PS) for spontaneous breaths (SIMV-PS)

SIMV Mode

ComponentSettings
Breath typePressure control, volume control, volume-targeted
Universal settingsFiO2 and PEEP
Major settingsTidal volume or Pressure Control,, respiratory rate, additional spontaneous breath
Other settingsSensitivity, inspiratory time or flow rate, and flow pattern
  • indications
    • Useful for weaning
    • Critically ill patients who are hyperventilating
    • Patients who are prone to auto-PEEP or high airway pressures
  • Advantages
    • Guarantees a minimum minute ventilation like assist control
    • Has a lower mean airway pressure than assist-control mode
    • It can provide a wide range of respiratory support
  • Disadvantages
    • Increased work of breathing
    • Spontaneous breaths between mandatory breaths can result in inadequate ventilation if the patient is week

Pressure Support (PS)

Pressure support only has spontaneous breaths. The patient initiates the breath, triggers the ventilator, receives a preset amount of pressure/volume assistance, then continues to breathe spontaneously.

It is also known as pressure support ventilation (PSV), volume support ventilation (VSV), or continuous positive airway pressure (CPAP).

The typical pressure support (PS) is 5 – 15 cmH20 for spontaneous breaths in SIMV/PSV.

Inspiration is terminated when the inspiratory flow falls to a preset level. The default expiratory threshold is 25 – 30% in most machines. Decreasing the expiratory threshold increases the inspiratory time, and vice versa.

SV mode

ComponentSettings
Breath typePressure support or volume-targeted (volume support)
Universal settingsFiO2 and PEEP
Major settingsVolume support or pressure support
Other settingsSensitivity and expiratory threshold
  • Indications
    • Weaning
    • Spontaneous breathing trials
    • PS is used to support spontaneous breaths in SIMV
  • Advantages
    • Comfortable for conscious patients
  • Disadvantages
    • Each breath is triggered by the patient
    • A minimum minute ventilation cannot be guaranteed
    • Poor quality of sleep
    • It cannot provide full ventilatory support

Breath Types

Either volume or pressure can be used for each breath.

Volume vs Pressure targeted ventilation

DescriptionEffect of high lung complianceEffect of low lung compliance
Volume Targeted VentilationAny mode that delivers a specific tidal volumeLow airway pressureHigh airway pressure
Pressure Targeted VentilationAny mode that ensures pressure does not exceed a maximum preset valueHigh lung volumeLow lung volume

Volume Control

The ventilator controls the volume delivered. The tidal volume is set, and the pressure varies depending on compliance and airway resistance.

Pressure Control

The ventilator controls the inspiratory pressure. The inspiratory pressure is set, and the tidal volume variesaccording to compliance and airway resistance.

Volume-targeted

Pressure-Regulated Volume Control (PRVC)

PRVC combines features of volume and pressure control. A target tidal volume is set, then the ventilator adjusts inspiratory pressure to deliver the set volume.

Airway Pressure Release Ventilation (APRV)

APRV is a form of prolonged high airway pressure with brief pressure releases using:

  • P-high (high airway pressure)
  • P-low (low airway pressure during release)
  • T-high (how long the patient stays at P-high)
  • T-low (how long the pressure is released)

The patient can breathe spontaneously during the high-pressure phase.

The prolonged high-pressure phase helps maintain alveolar recruitment, while the brief release allows exhalation and CO₂ clearance.

Ventilator Settings

Universal Settings

These settings are encountered across most conventional ventilator modes

SettingDescriptionInitial value/target
Fraction of inspired oxygen (FiO2)This controls the concentration of oxygen delivered.Initially 100%, then rapidly titrate (often to ~40%)
Positive End-Expiratory Pressure (PEEP)This is the pressure remaining in the airway at the end of expiration. PEEP prevents alveolar collapse, increases functional residual capacity, promotes alveolar recruitment, and improves oxygenation.5 cm H20

Major Settings

Basic ventilation parameters and their initial settings

SettingDescriptionInitial value/target
Tidal volume (VT)The volume delivered with each breath. It is set using the ideal/predicted body weight since lung size correlates to height and sex more than actual body weight.6 – 8 ml/kg (4 – 6 ml/kg in ARDS)
Respiratory Rate (RR)This is the number of mandatory breaths per minute. It can be increased when a greater minute ventilation is needed. Increasing RR increases minute ventilation and CO2 elimination, while reducing PaCO2. In COPD/asthma, increasing RR can shorten expiratory time → cause air trapping and increase auto-PEEP12 – 16 per minute.
Peak Inspiratory Pressure (PIP)PIP is the highest airway pressure reached during inspiration. It reflects airway resistance, lung/chest-wall compliance, flow, and tidal volume.< 35 cmH20
Pressure Support (PS)PS is the amount of pressure added during a patient-triggered spontaneous breath. Increasing PS increases tidal volume and reduces work of breathing5 – 15 cm H20
FiO2Start at 100% then rapidly titrate often to ~ 40%
Inspiratory flow40 – 60 L/min
TriggerPressure 2 cmH2O or flow trigger

Minor Settings

SettingsDescriptionInitial value/target
I:E Ratio/Inspiratory TimeI:E = Inspiratory time:Expiratory time. Prolonging the expiratory time prevents air trapping → auto-PEEP → dynamic hyperinflation.1:2 – 1:3 in normal lungs; 1:3 – 1:4 in COPD and asthma
TriggerTrigger determines how the ventilator detects that the patient wants to take a breath. It can be a pressure triggered (negative presure detected in the circuit) or flow trigger (a change in flow in the circuit). Flow trigger is more patient friendly. It is useful when auto-PEEP is present since the patient may need to generate considerable effort before the ventilator detects a breath in pressure trigger.Pressure trigger – -2cmH20; Flow trigger ~ 2L/min.
Inspiratory FlowThis is how rapidly the ventilator delivers the inspiratory volume. increasing flow shortens the inspiratory time and prolongs the expiratory time.40 – 60 L/min

Initial ventilator settings

ParameterInitial Setting
FiO₂Initially 100%, then rapidly titrate (often to ~40%)
PEEP5 cmH₂O
Tidal volume (VT)6–8 mL/kg of the ideal body weight
RR10–20 breathes/min (commonly 12–16 breathes/minute)
PIPAim < 35 cmH2O
PS5 – 15 cmH2O if spontaneous breaths are being supported
I:E1:2 – 1:3; adjusted according to disease
TriggerPressure ~ -2 cmH2O or flow ~ 2L/min
Flow40–60 L/min
Reference Intervals ›
Biochemistry
ACTHP: <80 ng/L
ALTP: 5–35 U/L
AlbuminP: 35–50 g/L
AldosteroneP: 100–500 pmol/L
Alk. phosphataseP: 30–130 U/L
α-AmylaseP: 0–180 IU/dL
α-FetoproteinS: <10 kU/L
Angiotensin IIP: 5–35 pmol/L
ADHP: 0.9–4.6 pmol/L
ASTP: 5–35 U/L
BicarbonateP: 24–30 mmol/L
BilirubinP: 3–17 μmol/L
BNPP: <50 ng/L
CRPP: <10 mg/L
CalcitoninP: <0.1 mcg/L
Calcium (ionized)P: 1.0–1.25 mmol/L
Calcium (total)P: 2.12–2.60 mmol/L
ChlorideP: 95–105 mmol/L
CholesterolP: <5.0 mmol/L
VLDLP: 0.128–0.645 mmol/L
LDLP: <2.0 mmol/L
HDLP: 0.9–1.93 mmol/L
Cortisol AMP: 450–700 nmol/L
Cortisol MidnightP: 80–280 nmol/L
CK ♂P: 25–195 U/L
CK ♀P: 25–170 U/L
CreatinineP: 70–100 μmol/L
FerritinP: 12–200 mcg/L
FolateS: 2.1 mcg/L
FSHP: 2–8 U/L ♂; >25 menopause
GGT ♂P: 11–51 U/L
GGT ♀P: 7–33 U/L
Glucose (fasting)P: 3.5–5.5 mmol/L
Growth hormoneP: <20 mu/L
HbA1C (DCCT)B: 4–6%
HbA1C (IFCC)B: 20–42 mmol/mol
Iron ♂S: 14–31 μmol/L
Iron ♀S: 11–30 μmol/L
Lactate (venous)P: 0.6–2.4 mmol/L
Lactate (arterial)P: 0.6–1.8 mmol/L
LDHP: 70–250 U/L
LHP: 3–16 U/L
MagnesiumP: 0.75–1.05 mmol/L
OsmolalityP: 278–305 mosmol/kg
PTHP: 0.8–8.5 pmol/L
PotassiumP: 3.5–5.3 mmol/L
Prolactin ♂P: <450 U/L
Prolactin ♀P: <600 U/L
PSAP: 0–4 mcg/mL
Protein (total)P: 60–80 g/L
Red cell folateB: 0.36–1.44 μmol/L
Renin (erect)P: 2.8–4.5 pmol/mL/h
Renin (recumbent)P: 1.1–2.7 pmol/mL/h
SodiumP: 135–145 mmol/L
TBGP: 7–17 mg/L
TSHP: 0.5–4.2 mU/L
T4P: 70–140 nmol/L
Free T4P: 9–22 pmol/L
TIBCS: 54–75 μmol/L
TriglyceridesP: 0.50–2.3 mmol/L
T3P: 1.2–3.0 nmol/L
Troponin TP: <0.1 mcg/L
Urate ♂P: 210–480 μmol/L
Urate ♀P: 150–390 μmol/L
UreaP: 2.5–6.7 mmol/L
Vitamin B12S: 0.13–0.68 nmol/L
Vitamin DS: 50 nmol/L
Arterial Blood Gases
pH7.35–7.45
PaCO₂4.7–6.0 kPa
PaO₂>10.6 kPa
Base excess±2 mmol/L
Urine
Cortisol (free)<280 nmol/24h
Hydroxyindole acetic acid16–73 μmol/24h
Hydroxymethylmandelic acid16–48 μmol/24h
Metanephrines0.03–0.69 μmol/mmol cr.
Osmolality350–1000 mosmol/kg
17-Oxogenic steroids ♂28–30 μmol/24h
17-Oxogenic steroids ♀21–66 μmol/24h
17-Oxosteroids ♂17–76 μmol/24h
17-Oxosteroids ♀14–59 μmol/24h
Phosphate (inorganic)15–50 mmol/24h
Potassium14–120 mmol/24h
Protein<150 mg/24h
Protein/creatinine ratio<3 mg/mmol
Sodium100–250 mmol/24h
Haematology
WCC4.0–11.0 ×10⁹/L
RBC ♂4.5–6.5 ×10¹²/L
RBC ♀3.9–5.6 ×10¹²/L
Hb ♂130–180 g/L
Hb ♀115–160 g/L
PCV ♂0.4–0.54 L/L
PCV ♀0.37–0.47 L/L
MCV76–96 fL
MCH27–32 pg
MCHC300–360 g/L
RDW11.6–14.6%
Neutrophils2.0–7.5 ×10⁹/L (40–75%)
Lymphocytes1.0–4.5 ×10⁹/L (20–45%)
Eosinophils0.04–0.44 ×10⁹/L (1–6%)
Basophils0–0.10 ×10⁹/L (0–1%)
Monocytes0.2–0.8 ×10⁹/L (2–10%)
Platelets150–400 ×10⁹/L
Reticulocytes0.8–2.0% / 25–100 ×10⁹/L
Prothrombin time10–14 s
APTT35–45 s
Paediatric
Pulse Rate (bpm)
Neonate140–160
Infant <1yr120–140
1–5 years110–130
5–12 years80–120
>12 years70–100
Respiratory Rate (tachypnoea)
0–2 months≥60/min
2–12 months≥50/min
1–5 years≥40/min
>5 years≥30/min
Blood Pressure (mmHg)
Term65/45
1 year75/50
4 years85/60
8 years95/65
10 years100/70
Weight Formulas
3–12 months(a + 9)/2 kg
1–6 years2a + 8 kg
>6 years(7a − 5)/2 kg
Haemoglobin (g/dL)
Term newborn13–20
1 month11–18
2 months10–15
1–2 years10–13
>2 years11–14
MUAC (6 months–5 years)
Obese>17.5 cm
Normal13.5–17.4 cm
At risk12.5–13.4 cm
Moderate malnutrition11.5–12.4 cm
Severe malnutrition<11.5 cm
Developmental Milestones
Social smile1.5 months
Head control4 months
Sits unsupported7 months
Crawls10 months
Stands unsupported10–12 months
Walks12–13 months
Talks18 months
CSF WBC (/mm³)
Term newborn0–25
>2 weeks0–5
Calculator ›

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