CBSE Class 11 Biology Chapter 17: Breathing and Exchange of Gases NCERT Solutions

NCERT Solutions PDF Class 11 PDF

This chapter delves into the crucial physiological process of breathing and the exchange of respiratory gases in living organisms. The NCERT Solutions for Class 11 Biology, Chapter 17, provide comprehensive explanations for key concepts such as vital capacity, its significance, and the volume of air remaining in the lungs after normal breathing (Functional Residual Capacity). It elaborates on the diffusion of gases, explaining why it occurs primarily in the alveolar region due to specialized structural adaptations. Furthermore, the solutions detail the major mechanisms involved in the transport of carbon dioxide in the blood, including its carriage through plasma, red blood cells as carbaminohaemoglobin, and predominantly as bicarbonate ions. These solutions are designed to help students grasp the intricate details of respiratory physiology, aiding in their exam preparation and understanding of biological processes.

Quick info

BoardCBSE
ClassClass 11
SubjectBiology
Session2026
LanguageEnglish
TypeNCERT Solutions
ChapterChapter 17: Brething and Exchange of Gases

Chapter summary

Chapter 17 of the Class 11 Biology NCERT Solutions focuses on the mechanics and physiological aspects of breathing and the exchange of gases. It covers definitions like vital capacity and functional residual capacity, explains the structural basis for gas exchange in the alveoli, and details the multiple ways carbon dioxide is transported in the blood. The solutions provide clear explanations for these fundamental concepts of respiration.

Learning outcomes

  • Understand the definition and significance of vital capacity.
  • Identify the volume of air remaining in the lungs after normal breathing (FRC).
  • Explain why gas diffusion is limited to the alveolar region.
  • Describe the different mechanisms of carbon dioxide transport in the blood.
  • Relate the structure of alveoli and capillaries to efficient gas exchange.

Topics covered

Paper topics

  • Respiratory Organs
  • Mechanism of Breathing
  • Lung Volumes and Capacities
  • Vital Capacity
  • Functional Residual Capacity (FRC)
  • Gas Exchange
  • Diffusion of Gases
  • Alveolar Gas Exchange
  • Transport of Oxygen
  • Transport of Carbon Dioxide
  • Carbaminohaemoglobin
  • Bicarbonate Transport

Important topics

  • Vital Capacity and its Significance
  • Site of Gas Exchange (Alveoli)
  • Mechanism of Gas Diffusion
  • Transport of Carbon Dioxide (all three methods)
  • Role of Carbonic Anhydrase

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Questions and Solutions

Question 1

Define vital capacity. What is its significance?
Solution: Vital capacity refers to the maximum volume of air that can be forcefully exhaled from the lungs following a maximal inhalation. In a healthy human adult, this volume typically ranges from 3.5 to 4.5 litres. Its primary significance lies in its role in promoting efficient gas exchange. By allowing for the expulsion of stale air and the intake of fresh air, vital capacity ensures that the lungs are adequately ventilated, thereby maximizing the exchange of oxygen and carbon dioxide between the alveoli and the bloodstream.

Question 2

State the volume of air remaining in the lungs after a normal breathing.
Solution: The volume of air that remains in the lungs after a normal expiration is known as the Functional Residual Capacity (FRC). This capacity is composed of two other lung volumes: the Expiratory Reserve Volume (ERV) and the Residual Volume (RV).

The Expiratory Reserve Volume (ERV) is the additional volume of air that can be forcibly exhaled after a normal expiration, typically around 1000 mL to 1500 mL.

The Residual Volume (RV) is the volume of air that always remains in the lungs even after a maximum possible expiration, preventing lung collapse. This is usually about 1100 mL to 1500 mL.

Therefore, the Functional Residual Capacity (FRC) can be calculated as:

FRC = ERV + RV

Using the approximate maximum values:

FRC \approx 1500 \text{ mL} + 1500 \text{ mL}

FRC \approx 3000 \text{ mL}

Thus, the functional residual capacity of the human lungs is approximately 2500 to 3000 mL.

Question 3

Diffusion of gases occurs in the alveolar region only and not in the other parts of the respiratory system. Why?
Solution: The diffusion of respiratory gases (oxygen and carbon dioxide) is restricted to the alveolar region primarily because of the specialized structure of the alveoli and the surrounding capillaries, which are optimized for gas exchange.

Each alveolus is a tiny air sac lined with a very thin layer of squamous epithelial cells, making it highly permeable. Similarly, the walls of the pulmonary capillaries that surround the alveoli are also composed of a single layer of squamous epithelial cells.

When oxygen-rich air reaches the alveoli from the respiratory passages, and deoxygenated blood (rich in carbon dioxide) arrives from the body via the pulmonary artery, the conditions are set for diffusion. The barrier between the alveolar air and the capillary blood is extremely thin (the respiratory membrane), consisting of the alveolar epithelium, the capillary endothelium, and their fused basement membranes.

Gas exchange occurs via simple diffusion, driven by differences in partial pressures (or concentrations). The partial pressure of oxygen is higher in the alveolar air than in the deoxygenated blood, causing oxygen to diffuse from the alveoli into the blood. Conversely, the partial pressure of carbon dioxide is higher in the deoxygenated blood than in the alveolar air, leading to the diffusion of carbon dioxide from the blood into the alveoli.

Other parts of the respiratory tract, such as the trachea and bronchi, have thicker walls and are primarily involved in conducting air, warming, humidifying, and filtering it, but they lack the extensive surface area and thin diffusion barrier characteristic of the alveoli, making significant gas exchange impossible there.

Question 4

What are the major transport mechanisms for CO2? Explain.
Solution: Carbon dioxide (CO2) is transported from the tissues to the lungs via the blood through three primary mechanisms:
  1. Transport as dissolved CO2 in plasma: A small amount of CO2, approximately 7% of the total, is transported dissolved directly in the blood plasma. Carbon dioxide is soluble in water and reacts with water to form carbonic acid (H_2CO_3). This reaction is relatively slow in the plasma itself.

    CO_2 + H_2O \longrightarrow H_2CO_3

  2. Transport via Red Blood Cells (RBCs) as carbaminohaemoglobin: About 20-25% of the CO2 is transported by binding to haemoglobin within the red blood cells. CO2 binds to the amino groups (-NH2) on the polypeptide chains of haemoglobin, forming a compound called carbaminohaemoglobin.

    Hb + CO_2 \longrightarrow HbCO_2 (Carbaminohaemoglobin)

  3. Transport as bicarbonate ions: The majority of CO2, about 70%, is transported in the blood in the form of bicarbonate ions (HCO_3^-). When CO2 enters the red blood cells, it reacts with water in the presence of the enzyme carbonic anhydrase. This enzyme greatly accelerates the formation of carbonic acid (H_2CO_3). Carbonic acid then dissociates into a hydrogen ion (H^+) and a bicarbonate ion (HCO_3^-). The bicarbonate ions then move out of the RBCs into the plasma, while the hydrogen ions are buffered by haemoglobin.

    CO_2 + H_2O \xrightarrow{\text{Carbonic anhydrase}} H_2CO_3 \longrightarrow H^+ + HCO_3^-

    This mechanism is highly efficient due to the presence and action of carbonic anhydrase, which is found in much higher concentrations within RBCs than in plasma.

Common mistakes

  • Confusing vital capacity with total lung capacity.
  • Not understanding the role of carbonic anhydrase in CO2 transport.
  • Incomplete explanation of the diffusion gradient for gases.
  • Misinterpreting the percentage distribution of CO2 transport mechanisms.

Revision tips

  • Memorize the definitions of key respiratory volumes and capacities.
  • Draw diagrams to illustrate the process of gas exchange in alveoli.
  • Create a table summarizing the three ways CO2 is transported in the blood.
  • Focus on understanding the 'why' behind gas diffusion occurring only in alveoli.

Practice MCQs

Q1. What is the maximum volume of air a person can exhale after a maximum inspiration?

Q2. Which of the following is the primary site for the exchange of respiratory gases in humans?

Q3. Approximately what percentage of CO2 is transported dissolved in plasma?

Q4. The enzyme carbonic anhydrase plays a crucial role in which process?

Q5. What is the volume of air remaining in the lungs even after a forceful expiration?

Frequently asked questions

What is vital capacity and why is it important?

Vital capacity is the maximum amount of air that can be exhaled after taking the deepest possible breath. It is significant because it reflects the lung's ability to exchange air efficiently, ensuring adequate oxygen supply and removal of carbon dioxide.

Where does the diffusion of gases primarily occur in the respiratory system?

The diffusion of gases, specifically oxygen and carbon dioxide, primarily occurs in the alveolar region of the lungs. This is due to the thin walls of the alveoli and capillaries and the large surface area available for exchange.

What are the main ways carbon dioxide is transported in the blood?

Carbon dioxide is transported in the blood in three main ways: dissolved in plasma (about 7%), bound to haemoglobin as carbaminohaemoglobin (about 20-25%), and mostly as bicarbonate ions (about 70%).

What is the significance of the enzyme carbonic anhydrase in CO2 transport?

Carbonic anhydrase is crucial because it rapidly catalyzes the formation of carbonic acid from CO2 and water in red blood cells. This speeds up the conversion of CO2 into bicarbonate ions, which is the most efficient way to transport CO2 in the blood.

What is Functional Residual Capacity (FRC)?

Functional Residual Capacity (FRC) is the volume of air remaining in the lungs after a normal exhalation. It is the sum of the Expiratory Reserve Volume (ERV) and the Residual Volume (RV).

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