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🌬️ Pursed-Lip Breathing Technique Physiology Simulator

An interactive model of pursed-lip breathing physiology demonstrating the reduction in dynamic compression of airways and alleviation of breathlessness.

COPD Management2DModerate60 FPS
pursed-lip-breathing-physiology-simulator ↗ Open standalone

Normal Exhalation in the COPD Airway

COPD weakens the scaffolding that keeps small airways open.

  • Small bronchi: Collapse point (no cartilage support)
  • Reduced: Elastic recoil (emphysema destroys septa)
  • <2 mm: Airway diameter (most vulnerable zone)
  • Forced exhale: Trigger (raises pleural pressure)

Why small airways collapse

Emphysema destroys elastic tissue tethering airways open.

Dynamic airway compression

Forced exhalation pressure squeezes floppy bronchioles shut.

Equal pressure point

Collapse point shifts upstream as airflow speeds up.

Air Trapping and Hyperinflation

Airways shut before alveoli finish emptying, trapping stale air.

  • ↑ 150%: Residual volume (vs healthy lung)
  • ~55-65%: Air trapped (of tidal breath)
  • Hyperinflated: Chest state (flattened diaphragm)
  • Dyspnea: Symptom (breathlessness on exertion)

Premature airway closure

Collapsed segments seal before alveolar air fully escapes.

Rising residual volume

Trapped air stacks breath over breath, lungs stay overfull.

Flattened diaphragm

Hyperinflation blunts diaphragm mechanics, work of breathing rises.

Pursed-Lip Breathing Begins

Exhaling through lightly pursed lips adds resistance at the mouth.

  • Narrowed: Lip gap (candle-blowing shape)
  • 1:2 to 1:4: Inhale:exhale ratio (slow prolonged exhale)
  • Reduced: Airflow speed (gentler than forced exhale)
  • Slightly ↑: Mouth pressure (builds resistance)

The pursing maneuver

Lips form a narrow opening, like gently blowing out a candle.

Resistance at the mouth

Narrowed opening slows exiting air, raising downstream pressure.

Voluntary slow exhale

Patients extend exhale time instead of forcing air out fast.

Back-Pressure Holds Airways Open

Resistance at the lips raises pressure back through the airway tree.

  • 4-14 cmH2O: Back-pressure (depends on pursing)
  • Pneumatic splint: Effect (props airway walls)
  • Shifts downstream: Equal pressure point (toward mouth)
  • ↓ Sharply: Collapse risk (walls stay open)

Pneumatic splinting

Back-pressure pushes outward on airway walls from inside.

Equal pressure point shifts

Collapse point moves toward the mouth, away from fragile airways.

Pressure gradient control

Slower flow lowers the pressure drop across weak airway segments.

Reduced Trapping, Easier Breathing

Slower, more complete exhalation improves ventilation efficiency.

  • ~15-20%: Air trapped (down from ~60%)
  • ↓ to 10-12: Respiratory rate (breaths per minute)
  • ↓ 2-4 points: Dyspnea (Borg) (reported relief)
  • Improved: Oxygen saturation (better gas exchange)

More complete emptying

Fuller exhale leaves more room for the next fresh breath.

Slower breathing pattern

Fewer, deeper breaths replace rapid shallow panting.

Everyday clinical use

Patients use pursing during exertion, stairs, and flare-ups.

⚙ Under the hood

An interactive model of pursed-lip breathing physiology demonstrating the reduction in dynamic compression of airways and alleviation of breathlessness.

CanvasBiomedicine

2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install

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