2.1 Effect of Temperature (Refrigeration vs. Freezing vs. Room Temperature)
Experimental approach: Use identical food samples (such as tomatoes) stored under different temperature conditions.
| Storage Condition | Temperature Range | Typical Observations |
|---|
| Room temperature | 25–30°C | Rapid softening, mould growth within 3–7 days |
| Refrigeration | 0–4°C | Slowed softening, minor colour changes, extended freshness up to 2 weeks |
| Freezing | −18°C or below | Maintained structure, possible texture changes upon thawing |
Key observations to record: colour changes, texture (firmness/softness), odours, visible mould or decay, liquid release.
2.2 Effect of Chemical Preservatives (Salt)
Experimental approach: Compare salted vs. unsalted fish or meat samples.
Procedure:
- Divide fish into two equal portions
- Label one plate A (salted) and one plate B (control)
- Add approximately 5g salt to plate A and rub gently on the fish surface
- Leave both samples at room temperature for three hours
- Observe and record changes
Expected observations:
- Salted sample (A): Reduced moisture on surface, less bacterial slime, slower onset of foul odours
- Unsalted sample (B): Faster development of unpleasant odours, visible bacterial growth, texture breakdown
Why salt works: Salt creates high osmotic pressure, drawing water out of microbial cells through osmosis. Without sufficient water, microorganisms cannot grow or reproduce effectively.
2.3 Effect of Heat on Food Components
Starch Gelatinization
Heat causes starch granules to absorb water and swell, breaking hydrogen bonds and releasing amylose. This transforms starch into a viscous paste.
Demonstration: Boil potato slices in water for 5–8 minutes. The slice becomes soft as starch granules swell and rupture. A control slice in cold water remains unchanged.
Protein Denaturation
Heat causes proteins to unfold and lose their natural structure. This changes texture and can lead to coagulation.
Demonstration: Heat egg white (albumin) in hot water at 70–90°C. The clear liquid transforms into an opaque white solid. The Biuret test confirms protein structure changes.
Caramelization
When sugars heat above 160°C, they break down and form new compounds producing brown colour and rich flavour.
Demonstration: Heat sugar in a dry saucepan. The white crystals melt, turn golden-brown, and finally darken to produce caramel with a characteristic nutty aroma.
2.4 Effect of Air (Enzymatic Browning)
When cut fruits and vegetables are exposed to oxygen, the enzyme polyphenol oxidase catalyzes browning reactions.
Experimental approach: Treat apple slices with different methods:
| Treatment | Method | Expected Result |
|---|
| A (Control) | No treatment | Rapid browning within 60 minutes |
| B (Limited oxygen) | Wrapped in cling film | Slower browning |
| C (Acid treatment) | Dipped in lemon juice for 5 minutes | Minimal browning |
| D (Enzyme inactivation) | Dipped in boiling water for 1 minute | No browning |
Why lemon juice works: The citric acid lowers pH, creating an environment where polyphenol oxidase becomes less active. Boiling inactivates the enzyme entirely.
2.5 Effect of Acids on Protein
Acids denature proteins and can cause coagulation, as demonstrated when lemon juice is added to egg white. The acid changes the protein structure, causing the clear liquid to become opaque and form clumps.