When you stop suddenly in a moving bus, your body lurches forward. When you push a heavy patient bed, it requires more force than pushing a wheelchair. These everyday experiences in healthcare and daily life are all governed by three fundamental principles established over 300 years ago. Newton’s laws of motion explain the relationship between physical objects and the forces acting upon them, forming the foundation of classical mechanics that we rely on today.

Table of Contents

What are Newton’s three laws of motion

Sir Isaac Newton presented his three laws of motion in 1686 in his work “Principia Mathematica Philosophiae Naturalis.” These laws describe how objects behave when forces act on them. The first law states that an object at rest remains at rest, and an object in motion remains in motion at constant speed and in a straight line unless acted on by an unbalanced force. The second law defines how acceleration depends on the mass of an object and the amount of force applied. The third law establishes that whenever one object exerts a force on another object, the second object exerts an equal and opposite force on the first.

Newton’s first law: The principle of inertia

Newton’s first law states that every object will remain at rest or in uniform motion in a straight line unless compelled to change its state by the action of an external force. This tendency to resist changes in motion is called inertia.

Understanding inertia in healthcare settings

Inertia has direct applications in nursing and medical care. When transporting patients on gurneys or wheelchairs, the object stays at rest until you apply force to move it. Once moving, it continues in that direction until you apply force to stop it. This is why medical equipment needs proper brakes and safety mechanisms.

In emergency situations, understanding inertia is critical. When an ambulance stops suddenly, patients and medical equipment continue moving forward due to inertia. This is why securing patients and equipment properly is essential for safety. Similarly, airbags in vehicles inflate during accidents because when a car stops suddenly, passengers continue moving forward at the original speed until the airbag applies an opposing force.

Daily life examples of the first law

Blood rushes from your head to your feet when an elevator stops quickly. A book stays on a table until someone moves it. These examples demonstrate how objects maintain their state of motion unless an external force intervenes. The law appears counterintuitive because in our daily experience, moving objects eventually stop. However, this occurs because friction acts as an external force, not because objects naturally tend to stop.

Newton’s second law: Force and acceleration

The acceleration of an object depends on the mass of the object and the amount of force applied. This relationship is expressed mathematically as F = ma, where F is force, m is mass, and a is acceleration.

Medical applications of the second law

In healthcare, this law explains why moving heavier patients requires more force than moving lighter patients. A fully loaded crash cart needs more force to accelerate than an empty one. The same principle applies when administering injections-the force needed to push the plunger depends on the resistance (mass and friction) in the syringe.

Physical therapy relies heavily on Newton’s second law. When therapists help patients regain strength, they gradually increase resistance (force) to build muscle. The patient’s ability to move against this resistance demonstrates the relationship between force, mass, and acceleration. Rehabilitation exercises are designed with this principle in mind, starting with lighter weights and progressing to heavier ones as the patient’s strength increases.

Calculating force in practical situations

If you need to move a 50-kilogram patient bed and want it to accelerate at 2 meters per second squared, you need to apply 100 newtons of force. If the bed weighs 100 kilograms, you need 200 newtons of force for the same acceleration. This demonstrates why hospital equipment is often designed with wheels and handles to reduce the force required for movement.

Newton’s third law: Action and reaction

Whenever one object exerts a force on another object, the second object exerts an equal and opposite force on the first. This law is often misunderstood because the two forces act on different objects, not the same object.

Walking and movement

When you walk, your foot pushes backward against the ground (action force). The ground pushes your foot forward with equal force (reaction force), propelling you forward. This is why walking on ice is difficult-the ice cannot provide enough reaction force due to reduced friction.

In healthcare, understanding this law helps explain patient mobility challenges. When patients push against a wall during physical therapy exercises, the wall pushes back with equal force. A patient using crutches pushes down on them, and the crutches push up on the patient, supporting their weight.

Medical equipment and devices

Blood pressure cuffs work based on action-reaction principles. When the cuff inflates, it exerts pressure on the arm (action), and the arm exerts equal pressure back on the cuff (reaction). The device measures this interaction to determine blood pressure. Similarly, when administering CPR, the force you apply to the chest creates an equal reaction force that compresses the heart and helps circulate blood.

Real-world applications in medicine and daily life

Newton’s laws appear everywhere in medical practice. When drawing blood, the syringe plunger moves because you apply force (second law). The blood flows out due to pressure differences created by this force. In the medical field, Newton’s laws of motion help design and support devices for people with mobility issues.

Biomechanics and patient care

Biomechanics combines biology and physics to understand how forces affect the human body. When a patient falls, the impact force depends on their mass and the acceleration due to gravity (second law). Understanding this helps healthcare providers assess injury severity and design fall prevention strategies.

Prosthetic limbs are engineered using Newton’s laws. The device must provide appropriate reaction forces when the user walks. The mass and force distribution must match the user’s needs to create natural movement patterns. Physical therapists use these principles when teaching patients to use assistive devices properly.

Vehicle safety and patient transport

Ambulances use specialized equipment to secure patients during transport. When the vehicle accelerates, decelerates, or turns, patients experience forces due to their inertia (first law). Proper restraints apply opposing forces to keep patients safe. The same principles apply to wheelchair securement in vehicles and hospital bed designs that prevent patient movement during transport.

Understanding forces in medical procedures

Many medical procedures involve careful application of Newton’s laws. During surgery, instruments apply precise forces to tissues. The second law governs how much force is needed to cut, clamp, or manipulate different tissues based on their mass and desired acceleration.

Respiratory equipment like ventilators push air into lungs (action force) and the lungs push back (reaction force). The pressure and volume relationships follow these physical principles. Understanding these forces helps medical professionals adjust ventilator settings appropriately for each patient.

The broader impact of Newton’s discoveries

Beyond immediate medical applications, Newton’s laws revolutionized our understanding of the physical world. They explained planetary motion, enabled space exploration, and formed the foundation for engineering disciplines. Modern medical imaging equipment, surgical robots, and diagnostic devices all operate based on these fundamental principles.

While quantum mechanics and relativity theory have expanded our understanding of physics at very small scales and very high speeds, Newton’s laws remain accurate and useful for describing everyday phenomena at human scales. In healthcare settings, these classical laws provide all the understanding needed for patient care, medical device design, and therapeutic interventions.

What do you think? How might understanding Newton’s laws improve patient safety in your healthcare setting? Can you identify other medical procedures or equipment that rely on these fundamental principles of motion and force?

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References
  1. https://www1.grc.nasa.gov/beginners-guide-to-aeronautics/newtons-laws-of-motion/
  2. https://phys.libretexts.org/Bookshelves/University_Physics/Book:_Introductory_Physics_-_Building_Models_to_Describe_Our_World_(Martin_Neary_Rinaldo_and_Woodman)/05:_Newtons_Laws/5.01:_Newtons_Three_Laws
  3. https://praxilabs.com/en/blog/2021/02/24/applications-of-newtons-laws-of-motion-in-daily-life/

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Applied Sciences

1 Biochemistry – Basic Concepts

  1. Significance of Biochemistry in Nursing
  2. Matter and its Properties
  3. Physical States of Matter
  4. Physical and Chemical Changes
  5. Elements, Compounds, and Mixtures
  6. Types of Chemical Reactions
  7. Atom and its Structure
  8. Chemical Bonding
  9. Molecular Weight of Compounds

2 Water and Electrolytes

  1. Properties and Uses of Water
  2. Solutions
  3. Electrolytes
  4. Water and Electrolyte Balance

3 Biomolecules-I Carbohydrates, Lipids and Nucleic Acids

  1. Carbohydrates
  2. Definition and Chemical Composition of Carbohydrates
  3. Classification
  4. Physical and Chemical Properties
  5. Biological Functions
  6. Lipids
  7. Definition and Chemical Composition
  8. Classification
  9. Physical and Chemical Properties
  10. Biological Functions
  11. Nucleic Acids
  12. Definition and Chemical Composition
  13. Nucleosides and Nucleotides
  14. Polynucleotides
  15. Biological Role of Nucleic Acids

4 Biomolecules-II Proteins and Enzymes

  1. Definition and Chemical Composition
  2. Amino Acids, Peptide Bonds and Peptides
  3. Classification of Proteins
  4. Structure of Proteins
  5. Physical and Chemical Properties of Proteins
  6. Biological Functions of Proteins
  7. Nature and Function
  8. Characteristics
  9. Coenzymes and Cofactors
  10. Nomenclature of Enzymes
  11. Enzyme Specificity
  12. Nature of Enzyme Action
  13. Factors Affecting Enzyme Activity
  14. Diagnostic Applications of Enzymes
  15. Measurement of Enzyme Activity and Precautions in Enzyme Assays
  16. Enzymes of Importance in Heart Diseases
  17. Enzymes of Importance in Liver Diseases

5 Body Fluids

  1. Functions of Blood
  2. Composition of Blood
  3. Composition Variation in Disease Conditions
  4. Biochemical Analysis of Blood
  5. Blood Clotting
  6. Blood Grouping
  7. Functions of Urine
  8. Physical Examination of Urine
  9. Normal Constituents of Urine
  10. Abnormal Constituents of Urine and Their Diagnostic Significance
  11. Functions of CSF
  12. Composition of CSF
  13. Variation of Composition in Disease Conditions
  14. Biochemical Analysis of CSF

6 Metabolism of Major Dietary Components

  1. Energy Storage Unit: Adenosine Triphosphate (ATP)
  2. Metabolism: Definition and General Features
  3. Digestion and Absorption
  4. Metabolism of Carbohydrates
  5. Metabolism of Lipids
  6. Metabolism of Proteins

7 Measurement and accuracy

  1. Measurement of Liquids
  2. Measurement of Solids
  3. Measurement of Temperature
  4. Measurement of Time
  5. Measurement of Mass
  6. Accuracy and Precision
  7. Calibration and Standardization

8 Motion, force and gravity

  1. Newton’s Laws of Motion
  2. Force
  3. Gravitation
  4. Types of Motion
  5. Projectile and Circular Motion
  6. Gravitation and Satellite Motion

9 Work, energy and pressure

  1. Work
  2. Energy
  3. Pressure
  4. Pressure and Fluids
  5. Atmospheric Pressure and Its Measurement
  6. Relationship Between Work, Energy, and Power

10 Heat and sound

  1. Heat
  2. Temperature
  3. Thermal Expansion
  4. Heat Transfer
  5. Sound
  6. Speed of Sound
  7. Reflection and Refraction of Sound Waves

11 Light

  1. Reflection of Light
  2. Refraction of Light
  3. Dispersion of Light
  4. Scattering of Light
  5. Polarization of Light

12 Electricity, electronics and nuclear physics

  1. Current and Resistance
  2. Electric Circuits
  3. Capacitance
  4. Magnetic Effects of Current
  5. Electromagnetic Induction
  6. Semiconductor Devices
  7. Atomic Nucleus
  8. Radioactivity
  9. Nuclear Reactions

13 Introduction to Microbes

  1. Definition of Microbes
  2. Development of Microbiology as a Science
  3. Where do Microbes Fit Among Living Things?
  4. Classification of Microbes
  5. Bacteria
  6. Morphological Classification of Bacteria
  7. Fungi
  8. Morphological Classification of Fungi

14 Identification and Growth of Microbes

  1. Identification of Microbes
  2. Microscope
  3. Techniques to Study Microbes
  4. Growth of Bacteria
  5. Culture Media
  6. Culture Technique

15 Disease Producing Bacteria

  1. Staphylococci
  2. Streptococci
  3. Diplococcus pneumoniae
  4. Corynebacterium diphtheriae
  5. Clostridia
  6. Bacillus anthracis
  7. Neisseria
  8. Haemophilus
  9. Bordetella pertussis
  10. Brucella
  11. Pasteurella pestis
  12. Enterobacteria
  13. Vibrio cholerae
  14. Pseudomonas aeruginosa
  15. Mycobacterium tuberculosis
  16. Mycobacterium leprae
  17. Mycobacterium balnei

16 Other Pathogens

  1. Spirochaetes
  2. Pathogenic Spirochaetes
  3. Venereal Treponeme โ€” T. pallidum
  4. Non-Venereal Treponemes
  5. Borrelia
  6. Leptospira
  7. Rickettsiae
  8. Pathogenic Rickettsiae
  9. Chlamydias
  10. Mycoplasma
  11. Bacteroides and Fusobacteria

17 Disease Producing Fungi

  1. Mycosis
  2. Sources of Mycoses
  3. Classification of Mycoses
  4. Superficial Mycoses
  5. Surface Mycoses
  6. Cutaneous Mycoses
  7. The Three Genera
  8. Ring Worm Diseases
  9. Candidiasis
  10. Subcutaneous Mycoses
  11. Mycetoma
  12. Phycomycosis
  13. Chromomycosis
  14. Rhinosporidiosis
  15. Sporotrichosis
  16. Systemic Mycoses
  17. Cryptococcosis
  18. Histoplasmosis
  19. Opportunistic Mycoses
  20. Aspergillosis
  21. Zygomycosis
  22. Myxotoxicosis

18 Microbial Infections and their Transmissions

  1. Definition of Infection
  2. Types of Infections
  3. Sources of Infection in Humans
  4. Factors Influencing Infection
  5. Mechanism of Infection
  6. Toxins
  7. Portals of Entry
  8. Portals of Exit
  9. Transmission of Infection
  10. Successful Pathogen

19 Destruction of Microorganisms

  1. Definitions
  2. Destruction of Microbes
  3. Physical Agents
  4. Chemical Agents
  5. Chemotherapy and Chemotherapeutic Agents
  6. Source and Action of Sulfonamide Drugs
  7. Source and Action of Antibiotic Drugs
  8. Drug Resistant (Drug Fast) Organisms

20 Viruses

  1. Discovery of Viruses
  2. Nature of Viruses
  3. Definition of Viruses
  4. Morphology of Viruses
  5. Morphology of Bacteriophage
  6. Multiplication/Replication
  7. Cultivation of Viruses
  8. Transmission of Viruses
  9. Inclusion Bodies
  10. Virus Mutations
  11. Host Specificity
  12. Classification of Viruses
  13. Disease Producing DNA Viruses
  14. Disease Producing RNA Viruses
  15. Hepatitis Viruses
  16. HIV and AIDS
  17. Control of Viral Diseases

21 Immunity

  1. Definitions
  2. What is Immunity?
  3. The Three Lines of Defense in the Body
  4. Inflammation
  5. Types of Immunity
  6. The Immune System
  7. Antigens and Antibodies
  8. Allergy/Hypersensitivity/Anaphylaxis
  9. Practical Application of Immunology

22 Parasites and Vectors

  1. Definition of Terms
  2. Types of Parasites
  3. Types of Host
  4. Protozoon Parasites Pathogenic to Humans
  5. Helminth Parasites Pathogenic to Humans
  6. Vectors

23 Nutrition and Dietetics – Principles and Definitions

  1. Food as a Source of Nutrients
  2. Nutrient Categories
  3. Nutrient Contributions of Foods
  4. Nutrients and their Functions
  5. Defining Nutrition and Dietetics
  6. The Role of Food in Health and Disease
  7. Community Nutrition

24 Planning Diets

  1. Planning Diets
  2. Diets for Normal Individuals
  3. Diet Planning in Disease
  4. Social, Economic and Psychological Factors in Diet Planning

25 Assessment of Nutritional Status

  1. What is Nutritional Status?
  2. Rationale for Assessment of Nutritional Status
  3. How to Assess Nutritional Status?
  4. Nutritional Surveillance: Concept and Implications

26 Dietary Management in Disease-I

  1. Diet Therapy in Nutritional Deficiency Disorders
  2. Diseases of the Gastrointestinal Tract
  3. Liver, Gallbladder and Pancreatic Disorders
  4. Disorders of the Cardiovascular System
  5. Diseases of the Urinary System
  6. Diseases of the Musculoskeletal System

27 Dietary Management in Disease-II

  1. Glandular Disturbances
  2. Neurological Disorders
  3. Fevers and Infections
  4. Surgery and Cancer
  5. Weight-related Problems
  6. Complications in Pregnancy
  7. Inborn Errors of Metabolism
  8. Nutrition in Childhood Problems