1At a glance
- Primary Cause
- Inadequate ventilation (under-breathing) or rebreathing exhaled air.
- Normal PaCO2 Range (Arterial)
- 4.7-6.0 kPa (35-45 mmHg)
- Threshold for Hypercapnia (PaCO2)
- > 6.0 kPa (> 45 mmHg)
- CO2 in Air
- Approximately 0.04% (by volume)
- CO2 in Exhaled Breath
- Approximately 4-5% (by volume)
- Effect on Respiration
- High CO2 is the primary driver for the urge to breathe.
- Impact on Narcosis
- Can exacerbate nitrogen narcosis at depth.
- Risk Factor
- Often overlooked due to symptoms mimicking other issues.
2Causes and Contributing Factors
Poor Ventilation: The most common cause of hypercapnia in diving is insufficient breathing. This can occur when a diver intentionally breathes shallowly to conserve air, experiences increased breathing resistance from their regulator or snorkel, or is working hard and not keeping up with their body's oxygen demand and CO2 production. Anxiety or cold can also lead to shallow, rapid breathing patterns that are inefficient at clearing CO2.
Equipment Issues: Malfunctioning or poorly maintained equipment can contribute significantly. A regulator with high breathing resistance, a partially blocked exhaust valve, or a CO2 absorbent in rebreathers that is exhausted or incorrectly packed can all prevent efficient CO2 removal. Long or narrow snorkels, especially when surface swimming, can also lead to rebreathing exhaled air, increasing CO2 levels.
Physical Exertion and Depth: Increased physical activity naturally produces more CO2. At depth, gas is denser, making it harder to breathe and increasing the work of breathing. This combination means that even moderate exertion at depth can quickly lead to hypercapnia if breathing efforts don't match production. Pre-existing respiratory conditions can also increase susceptibility.
3Hypercapnia Symptoms and Severity
| PaCO2 Level (kPa / mmHg) | Severity | Symptoms | Impact on Dive Safety |
|---|---|---|---|
| 6.0 - 6.7 kPa (45 - 50 mmHg) | Mild | Increased respiratory drive, headache, feeling of suffocation, increased sweating. | Reduced comfort, potential for distraction, increased anxiety. |
| 6.7 - 8.0 kPa (50 - 60 mmHg) | Moderate | Shortness of breath, confusion, dizziness, nausea, impaired judgment. | Significant risk of poor decision-making, disorientation, potential for panic. |
| 8.0 - 10.7 kPa (60 - 80 mmHg) | Severe | Muscle twitching, drowsiness, impaired motor control, severe headache, visual disturbances. | High risk of incapacitation, unconsciousness, uncontrolled ascent or descent. |
| > 10.7 kPa (> 80 mmHg) | Critical | Convulsions, loss of consciousness, respiratory arrest. | Life-threatening emergency, requires immediate medical intervention. |
4Recognising and Managing Symptoms
Early Symptoms: Hypercapnia often presents with subtle signs initially, making it difficult to recognise. Divers may feel a persistent, uncomfortable urge to breathe, shortness of breath (dyspnoea), or experience a headache that worsens. Other early indicators include dizziness, nausea, and increased sweating. These symptoms can easily be mistaken for anxiety or overexertion.
Advanced Symptoms: As CO2 levels rise, the symptoms become more severe. Divers might experience confusion, impaired judgment, muscle twitching, or a feeling of drowsiness. In extreme cases, hypercapnia can lead to panic, unconsciousness, or even convulsions, which are extremely dangerous underwater. It can also amplify the effects of nitrogen narcosis, further impairing a diver's cognitive function and decision-making.
Action on Symptoms: If you suspect hypercapnia, the immediate action is to ascend to a shallower depth, slow down your breathing, and focus on deep, deliberate breaths to ventilate your lungs effectively. If symptoms persist or worsen, terminate the dive safely. On the surface, remove your mask and regulator, breathe fresh air, and inform your dive buddy and dive leader.
5Hypercapnia on Liveaboard Trips
Frequent and Multiple Dives: Liveaboards typically involve multiple dives per day, sometimes for several consecutive days. This high diving frequency means that divers might accumulate fatigue, which can indirectly contribute to shallower breathing or reduced awareness of symptoms. Ensuring adequate rest and hydration between dives is crucial to mitigate this risk.
Varied Equipment and Conditions: Divers on liveaboards might use rental gear, or unfamiliar equipment. Always check your regulator's performance and ensure your rebreather's absorbent is fresh. Furthermore, diverse dive sites can present varying conditions, from strong currents requiring more exertion to deeper dives where gas density is a factor. Planning dives within your comfort and experience limits is essential.
Buddy System and Communication: The buddy system is paramount. Encourage open communication with your buddy about how you are feeling during the dive. Recognising subtle changes in your buddy's behaviour or breathing patterns could be an early warning sign. On liveaboards, the dive brief usually covers potential hazards; pay close attention to any advice regarding exertion or specific dive profiles that might increase hypercapnia risk.
6Common misconceptions
Myth: Hypercapnia only affects rebreather divers. Fact: While rebreather divers are at particular risk due to CO2 absorbent issues, open-circuit divers can also experience hypercapnia from factors like high breathing resistance, overexertion, or intentional skip breathing.
Myth: Holding your breath briefly to conserve air is fine. Fact: Intentionally holding your breath or 'skip breathing' for extended periods is a common cause of hypercapnia. It prevents the efficient exhalation of CO2, leading to a build-up. Maintain a slow, continuous breathing pattern.
Myth: If I can still breathe, I'm fine. Fact: You may be able to breathe, but inefficiently. Hypercapnia can occur even when you feel you are breathing normally, especially if your breathing is shallow or your regulator's resistance is high. The feeling of 'air hunger' despite having air is a key symptom.
FAQ
Qu'est-ce qui cause des niveaux élevés de CO2 en plongée ?
Des niveaux élevés de CO2 (hypercapnie) en plongée sont principalement causés par une respiration insuffisante, la réinspiration de l'air expiré ou des problèmes d'équipement comme des détendeurs à haute résistance ou des absorbants de CO2 usés dans les recycleurs. Le surmenage, surtout en profondeur, augmente également la production de CO2.
Quels sont les symptômes de l'hypercapnie sous l'eau ?
Les symptômes incluent une forte envie de respirer, un essoufflement, des maux de tête, des vertiges, des nausées et de la confusion. Dans les cas plus graves, les plongeurs peuvent ressentir un jugement altéré, des fasciculations musculaires ou une perte de conscience.
Comment puis-je prévenir l'hypercapnie pendant une plongée ?
Pour prévenir l'hypercapnie, respire profondément et régulièrement, évite de retenir ta respiration, assure-toi que ton détendeur est bien entretenu et a une faible résistance respiratoire, et évite le surmenage. Une bonne configuration de l'équipement, notamment pour les recycleurs, est également cruciale.
L'hypercapnie peut-elle aggraver la narcose à l'azote ?
Oui, l'hypercapnie peut significativement exacerber les effets de la narcose à l'azote. La combinaison d'un CO2 élevé et d'une pression partielle d'azote accrue en profondeur peut entraîner une altération cognitive, une confusion et un jugement réduit plus prononcés que l'une ou l'autre condition seule.
Que dois-je faire si je me sens hypercapnique en plongée ?
Si tu suspectes une hypercapnie, ralentis, respire profondément et délibérément pour ventiler tes poumons, et remonte à une profondeur moins élevée si possible. Si les symptômes persistent ou s'aggravent, termine la plongée en toute sécurité et alerte ton binôme et le chef de plongée en surface.