Model paper

Dean's Office Official Model Question Paper

BHM 201 · Food Science & Nutrition

Programme
BHM
Academic year
Semester 3
Paper type
Official Model Question
Sitting
Dean's Office Blueprint
Full marks
60
Duration
180 minutes

Tribhuvan University

Faculty of Management

Office of the Dean

Official Model Question Paper / Dean's Office Blueprint

Course: BHM 201 · Food Science & Nutrition

Level: Bachelor of Hotel Management (BHM) · Semester 3

Full Marks: 60

Time: 3 hrs.

Candidates are required to give their answers in their own words as far as practicable. Figures in the margin indicate full marks.

Section A

Brief Answer Questions. Attempt ALL questions. (5 × 2 = 10)

[5*2=10]
  1. Differentiate between macronutrients and micronutrients with two dietary examples of each.

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    Macronutrients vs. Micronutrients

    • Macronutrients: Essential chemical substances required by the human body in large daily quantities (grams) to provide caloric metabolic energy, growth, and tissue repair (e.g., carbohydrates, proteins, lipids/fats).
    • Micronutrients: Essential organic vitamins and inorganic dietary minerals required in trace daily amounts (milligrams or micrograms) to catalyze biochemical enzymes, regulate metabolic pathways, and sustain cellular immune function (e.g., Vitamin C, Vitamin A, Iron, Calcium, Zinc).
  2. Explain the concept of “Essential Amino Acids” and “Biological Value (BV)” of food proteins.

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    Essential Amino Acids & Biological Value (BV)

    • Essential Amino Acids (EAAs): The 9 amino acids (histidine, isoleucine, leucine, lysine, methionine, phenylalanine, threonine, tryptophan, valine) that the human body cannot synthesize de novo and must obtain directly through dietary intake.
    • Biological Value (BV): A nutritional metric measuring the percentage of absorbed dietary nitrogen that is retained and utilized for tissue synthesis (Whole egg protein has a reference BV of 100, representing a complete protein with an optimal amino acid balance).
  3. Define “Water Activity” (awa_w) and state the minimum threshold required for bacterial proliferation in foods.

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    Concept of Water Activity (awa_w)

    Water Activity (awa_w) is the ratio of the vapor pressure of water in a food matrix (PP) to the vapor pressure of pure distilled water (P0P_0) at identical temperature (aw=P/P0a_w = P / P_0, ranging on a scale from 0.00 to 1.00).

    • Bacterial Proliferation Threshold: Most foodborne pathogenic bacteria require a minimum water activity of aw0.85a_w \ge 0.85 to 0.910.91 to multiply. Foods with aw<0.60a_w < 0.60 (e.g., dried grains, honey, biscuits) inhibit all microbial growth.
  4. Decode the “FATTOM” acronym representing the environmental conditions required for bacterial growth.

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    The FATTOM Acronym in Food Microbiology

    • F - Food: Nutrients, specifically high-protein and carbohydrate matrices (TCS foods).
    • A - Acidity: Neutral to slightly acidic pH range (4.64.6 to 7.57.5); growth ceases below pH 4.6.
    • T - Temperature: Thriving in the Temperature Danger Zone (5C5^\circ\text{C} to 60C60^\circ\text{C}).
    • T - Time: Permitted extended exposure; cells double exponentially every 20 minutes.
    • O - Oxygen: Aerobic, anaerobic, or facultative oxygen requirements.
    • M - Moisture: High available water activity (aw0.85a_w \ge 0.85).
  5. Outline the three sink compartments and operating parameters of the Three-Sink manual dishwashing method.

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    The Three-Sink Dishwashing Method

    1. Sink 1 (Wash): Hot potable water at 45C\ge 45^\circ\text{C} (110F110^\circ\text{F}) mixed with commercial dishwashing detergent to scrub away food particles and grease.
    2. Sink 2 (Rinse): Clean hot running water at 45C\ge 45^\circ\text{C} to rinse away loosened soils and detergent residue.
    3. Sink 3 (Sanitize): Chemical sanitizing bath (e.g., 50–100 ppm chlorine bleach at 24C24^\circ\text{C}40C40^\circ\text{C} for at least 30 seconds) or hot water thermal sanitizing at 77C\ge 77^\circ\text{C} (171F171^\circ\text{F}) for 30 seconds, followed by complete air drying on stainless drying racks (never towel dried).

Section B

Short Answer Questions. Attempt any SIX questions. (6 × 5 = 30)

[6*5=30]
  1. Classify dietary carbohydrates into Monosaccharides, Disaccharides, and Polysaccharides, discussing the physiological functions of dietary fiber.

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    Classification of Carbohydrates & Dietary Fiber

    1. Carbohydrate Classification:

    • Monosaccharides (Simple Sugars, C6H12O6C_6H_{12}O_6): Glucose, Fructose (fruit sugar), Galactose.
    • Disaccharides (Double Sugars, C12H22O11C_{12}H_{22}O_{11}):
      • Sucrose (Glucose + Fructose): Table cane sugar.
      • Lactose (Glucose + Galactose): Milk sugar.
      • Maltose (Glucose + Glucose): Malt grain sugar.
    • Polysaccharides (Complex Carbohydrates, (C6H10O5)n(C_6H_{10}O_5)_n): Starch (amylose & amylopectin in grains/tubers), Glycogen (animal liver/muscle starch), Cellulose.

    2. Physiological Functions of Dietary Fiber:

    • Soluble Fiber (Pectins, gums, beta-glucan): Dissolves into a viscous gel in the digestive tract; lowers blood LDL cholesterol, stabilizes postprandial glucose absorption.
    • Insoluble Fiber (Cellulose, hemicellulose, lignin): Absorbs water, bulks stool volume, accelerates gastrointestinal transit time, preventing constipation and diverticulosis.
  2. Compare Fat-Soluble Vitamins (A, D, E, K) and Water-Soluble Vitamins (B-complex, C). Identify three major deficiency diseases and their dietary sources.

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    Fat-Soluble vs. Water-Soluble Vitamins

    Feature Fat-Soluble Vitamins (A, D, E, K) Water-Soluble Vitamins (B-Complex, C)
    Absorption & Storage Absorbed with dietary lipids into lymph; stored in adipose tissue and liver. Absorbed directly into blood; not stored significantly (excess excreted in urine).
    Toxicity Risk High potential for hypervitaminosis toxicity if overdosed. Extremely low toxicity risk (excess excreted).

    Three Major Deficiency Diseases:

    1. Night Blindness & Xerophthalmia (Vitamin A Deficiency): Impairs retinal rhodopsin synthesis. Sources: Carrots, spinach, liver, egg yolk.
    2. Rickets in Children / Osteomalacia in Adults (Vitamin D Deficiency): Impaired intestinal calcium absorption leading to soft, deformed leg bones. Sources: Sunlight synthesis, fortified milk, fatty fish (salmon).
    3. Scurvy (Vitamin C / Ascorbic Acid Deficiency): Defective collagen synthesis causing bleeding gums, poor wound healing, subcutaneous petechiae. Sources: Citrus fruits, bell peppers, amla, tomatoes.
  3. Illustrate the four phases of the Bacterial Growth Curve and explain why food handlers must strictly control the Temperature Danger Zone (5°C to 60°C).

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    Bacterial Growth Curve & Temperature Danger Zone

    Bacterial Population (Log)
           │             /\--- Stationary Phase
           │            /     \
           │           /       \--- Death / Decline Phase
           │          / (Log Phase: Rapid Multiplication)
           │  ───────/ (Lag Phase: Metabolic Adaptation)
           └──────────────────────── Time
    

    The Four Growth Phases:

    1. Lag Phase: Bacteria adapt to nutrients and environment without cell division (1–4 hours).
    2. Log (Exponential) Phase: Exponential binary fission (248162 \rightarrow 4 \rightarrow 8 \rightarrow 16), cells double every 15–20 minutes under favorable conditions.
    3. Stationary Phase: Growth rate equals death rate as nutrients deplete and metabolic toxins accumulate.
    4. Decline / Death Phase: Exponential cell death due to toxic environment.

    The Temperature Danger Zone (5C5^\circ\text{C} to 60C60^\circ\text{C}):

    Bacteria multiply rapidly within this thermal range. TCS (Time/Temperature Control for Safety) foods must never remain within the Danger Zone for more than 2 hours (prep/buffet) or a cumulative maximum of 4 hours, after which pathogenic bacterial loads reach infectious or toxigenic levels.

  4. Explain the scientific principles underlying four major methods of food preservation: Pasteurization, Canning, Freezing, and Modified Atmosphere Packaging (MAP).

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    Food Preservation Principles

    1. Pasteurization (Thermal Processing): Mild heat treatment (HTST: 72°C for 15 seconds; or LTLT: 63°C for 30 minutes) designed to destroy all pathogenic vegetative bacteria (Mycobacterium tuberculosis, Coxiella burnetii, Salmonella) and inactivate spoilage enzymes while preserving liquid milk/juice nutritional and sensory qualities.
    2. Canning (Commercial Sterilization): Sealing food hermetically in cans and retorting under steam pressure at 121°C for specified duration to achieve a 12-decimal reduction (12D concept) targeting heat-resistant Clostridium botulinum endospores.
    3. Freezing (Low Temperature Preservation): Lowering internal core food temperature to ≤ -18°C. Halts vegetative microbial growth and converts liquid water into ice crystals, lowering water activity (awa_w) and arresting enzymatic reactions.
    4. Modified Atmosphere Packaging (MAP): Flushing packaging headspaces with altered gas mixtures (elevated CO2 ~20–30% to inhibit mold/aerobes, elevated N2 as an inert filler, reduced O2 < 1% to prevent oxidative rancidity).
  5. Differentiate between Biological, Chemical, and Physical food safety hazards in commercial kitchens, giving two distinct examples and prevention strategies for each.

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    Biological, Chemical, and Physical Food Hazards

    1. Biological Hazards: Living pathogenic organisms or their metabolic toxins (Salmonella, Listeria monocytogenes, Norovirus, aflatoxins). Prevention: Thorough cooking (≥ 74°C), rapid chilling, and color-coded cutting boards.
    2. Chemical Hazards: Toxic chemical substances contaminating food (cleaning chemical residues, pesticide sprays, toxic heavy metals leaching from copper/lead cookware). Prevention: Store chemicals in locked cupboards away from food prep areas; rinse sanitizers thoroughly; use only food-grade stainless steel cookware.
    3. Physical Hazards: Extraneous foreign physical objects that can cause choking, broken teeth, or internal cuts (glass shards, metal shavings from can openers, plastic fragments, hair, fingernails). Prevention: Shielding overhead kitchen fluorescent lights, eliminating staples/pins in kitchens, and wearing hair nets/toques.
  6. Describe the Cotton Swab Plating Method used in commercial kitchen quality assurance to assess the personal hand hygiene of food handlers.

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    Cotton Swab Plating Method for Hand Hygiene

    1. Sample Collection: A sterile cotton swab moistened with sterile peptone water or saline is rolled across a standardized 10 cm² surface area of a food handler"s palm, finger pads, and subungual nail regions before and after handwashing.
    2. Inoculation & Plating: The swab tip is agitated in a sterile diluent tube or streaked evenly in a criss-cross pattern onto nutrient agar or selective media (e.g., Baird-Parker agar for Staphylococcus aureus).
    3. Incubation: Inverted Petri dishes are incubated in a bacteriological incubator at 37°C for 24 to 48 hours.
    4. Colony Counting & Evaluation: Total Colony Forming Units (CFU/cm²) are counted on a colony counter. A post-wash hand count of < 10 CFU/cm² with zero S. aureus or coliforms confirms compliant handwashing efficacy.

Section C

Comprehensive / Analytical Questions. Attempt any TWO questions. (2 × 10 = 20)

[2*10=20]
  1. Explain the 7 Principles of Hazard Analysis Critical Control Point (HACCP). Illustrate the step-by-step implementation of HACCP for the preparation and service of chilled Roast Chicken Salad in a 5-star hotel banquet.

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    The 7 Principles of HACCP & Application to Roast Chicken Salad

    The Seven Codex Alimentarius HACCP Principles:

    1. Conduct a Hazard Analysis: Identify biological, chemical, or physical hazards across the food chain.
    2. Determine Critical Control Points (CCPs): Identify steps where control can be applied to prevent, eliminate, or reduce hazards to acceptable levels.
    3. Establish Critical Limits (CLs): Define maximum/minimum boundaries separating safe food from unsafe food.
    4. Establish Monitoring Procedures: Continuous or periodic observations tracking CCP compliance.
    5. Establish Corrective Actions: Predetermined actions executed when monitoring indicates CL deviation.
    6. Establish Verification Procedures: Audits, tests, and calibrations confirming HACCP system efficacy.
    7. Establish Documentation & Record Keeping: Written records proving compliance (temperature logs).

    Step-by-Step HACCP Implementation for Chilled Roast Chicken Salad:

    Process Step Identified Hazard Is it a CCP? Critical Limit (CL) Monitoring Procedure Corrective Action
    1. Receiving Raw Chicken Salmonella, Campylobacter CCP 1 Delivery temperature 4C\le 4^\circ\text{C}; packaging intact. Probe thermometer check of 3 random cases; log invoice. Reject shipment immediately if core temperature >4C> 4^\circ\text{C}.
    2. Roasting / Cooking Survival of pathogens CCP 2 Minimum core internal temperature of 74C\ge 74^\circ\text{C} for 15\ge 15 seconds. Calibrated digital probe inserted into thickest part of chicken breast. Continue roasting until core temperature reaches 74C\ge 74^\circ\text{C}.
    3. Blast Chilling Spore germination (Clostridium perfringens) CCP 3 Cool from 60C60^\circ\text{C} to 21C21^\circ\text{C} within 2 hrs; and 21C21^\circ\text{C} to 4C\le 4^\circ\text{C} within further 4 hrs. Automated digital blast chiller chart logger recording time-temperature. If cooling rate missed within 2 hours, re-heat to 74C74^\circ\text{C} or discard.
    4. Cold Assembly & Mixing Cross-contamination from handlers CCP 4 Ambient assembly room temp 16C\le 16^\circ\text{C}; max assembly time 30 min. Supervisor visual check; sanitize gloves and surfaces. Discard batch if exposed to ambient >20C> 20^\circ\text{C} for >2> 2 hours.
    5. Buffet Holding & Service Bacterial multiplication in Danger Zone CCP 5 Cold salad display held at 4C\le 4^\circ\text{C} in iced wells; max 2 hrs display. Probe temperature taken every 30 minutes; timer tag on salad bowls. Discard remaining salad after 2 hours on display. Never mix fresh salad with old batch.
  2. Case Study: Following a corporate dinner of 200 delegates at a resort, 45 guests report severe abdominal cramps, watery diarrhea, vomiting, and high fever 16 hours after consumption of Hollandaise sauce served over grilled salmon. As the Resort Food Safety Officer, formulate an emergency epidemiological outbreak investigation protocol: (a) identify the likely etiological pathogen and vehicle, (b) trace the contamination chain, and (c) implement corrective food safety protocols.

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    Foodborne Illness Outbreak Investigation Case Study

    (a) Pathogen Identification & Incubation Period Profile:

    • Etiological Agent: Non-typhoidal Salmonella enterica (likely S. Enteritidis).
    • Rationale: The classic 12 to 36-hour incubation period (symptoms manifested at 16 hours), fever, severe abdominal cramping, and watery diarrhea correlate with Salmonella.
    • Vehicle: The Hollandaise sauce. Made with raw or insufficiently heated egg yolks held warm at 40°C–45°C (directly in the optimum microbial growth zone) for extended periods without refrigeration.

    (b) Contamination Chain Traceability:

    1. Source Contamination: Eggs from a local poultry supplier infected with trans-ovarian Salmonella colonization.
    2. Time-Temperature Abuse: The sauce chef prepared a large batch of Hollandaise at 16:00 and held it in a warm bain-marie at 42°C until service at 20:30 (over 4.5 hours in the optimal bacterial growth range), allowing logarithmic multiplication of bacterial load.

    (c) Corrective Food Safety & Recovery Protocols:

    1. Quarantine & Lab Sampling: Immediately seal and freeze remaining food samples from the dinner (48-hour retained banquet sample library) and send to an accredited microbiological testing laboratory for PCR pathogen confirmation.
    2. Medical Assistance: Coordinate medical consultations and rehydration treatment for affected guests; file an official report with the public health epidemiology division.
    3. Mandatory Policy Change (SOP):
      • Pasteurized Eggs Only: Ban the use of unpasteurized shell eggs for all lightly cooked or raw egg preparations (Hollandaise, Béarnaise, Mayonnaise, Caesar dressing, Tiramisu). Mandate certified commercially pasteurized liquid egg yolk.
      • Holding Time Limit: Strict maximum 2-hour holding limit for Hollandaise sauce at 52°C–54°C, after which any remaining sauce must be discarded.
      • Comprehensive Retraining: Mandatory food safety and hygiene re-certification for all kitchen line staff.