Kenya Coffee School Examinations & Certification Board

Course Assessment Framework: KCS-EXP-302

Course Title: Contemporary Fermentation & Barrel-Aging Techniques Total Marks: 100 Points (Practical Assessment: 60 Points | Written Examination: 40 Points) Passing Grade: 75% Overall (With a mandatory minimum of 80% on the Practical Safety & Quality Section)

Part 1: Practical Examination Rubric (60 Points)

Candidates are evaluated across four hands-on operational stations. Examiners grade performance based on adherence to Kenya Coffee School protocols, technical accuracy, and hygiene standards.

Station & FocusEvaluated CompetenciesMax PointsScoring Criteria
Station 1: Fermentation Monitoring & Analytical Setup• Accurate calibration and operation of digital pH probe and refractometer. • Calculation and measurement of initial °Brix and terminal pH thresholds. • Correct determination of water activity (a_w) and green bean density.1513–15: Flawless instrument calibration; zero measurement errors; correct logging of all metrics. • 9–12: Minor calibration oversight; correct calculations. • 0–8: Failed instrument setup or incorrect parameter reading.
Station 2: Cask Inspection, Loading & Cellar Setup• Sanitization and structural inspection of wine oak casks. • Calculation of proper 70–80% ullage fill ratios. • Execution of barrel rotation mechanics (180° agitation) and cellar relative humidity (55\%–65\%) setup.1513–15: Perfect structural assessment; precise fill ratio; flawless agitation technique. • 9–12: Proper filling; slight hesitation in rotation or microclimate parameter verification. • 0–8: Overfilling cask; improper rotation technique causing internal bean compaction.
Station 3: Post-Age Stabilization & Roast Profiling• Moisture content verification (>12.5\% post-aging detection). • Execution of shaded re-drying protocol to achieve 11.2\%–11.5\% target moisture. • Roast profile adjustment: Application of gentle initial thermal conduction to preserve delicate wine esters.1513–15: Accurately identifies target drop moisture; adjusts roast charge temperature and airflow to preserve fruit esters without baking. • 9–12: Achieves target moisture; minor timing error during roast development. • 0–8: Roasts over-moist beans or scorched delicate fruit esters due to excessive initial heat.
Station 4: Sensory Analysis & Defect Identification• Blind identification of acid profiles (Tartaric, Malic, Lactic, Acetic). • Isolation and scoring of “The Coffee Wine” cup attributes (black currant, oak, hibiscus finish). • Detection of processing defects (stinker beans, over-fermentation, phenol, mold notes).1513–15: Correctly identifies all 4 acid references; successfully isolates defects; accurate sensory descriptors. • 9–12: Correctly identifies 3 acid references; identifies primary defect. • 0–8: Fails to spot acetic/phenol processing defects or misidentifies core acid structures.

Part 2: Written Examination Outline (40 Points)

The written exam consists of 20 questions across three distinct sections designed to test theoretical mastery and problem-solving abilities.

Section A: Multiple Choice Questions (10 Questions | 10 Points)

Coverage of core parameters, chemical compounds, and storage thresholds.

  1. Water Activity Limits: What is the maximum allowable water activity (a_w) threshold during barrel aging to prevent microbial degradation?
    • A) 0.45\ a_w
    • B) 0.62\ a_w
    • C) 0.75\ a_w
    • D) 0.85\ a_w
  2. Cellar Climate Control: What is the optimal relative humidity (RH) range for a green coffee wine-aging cellar?
    • A) 30\% – 40\%\text{ RH}
    • B) 40\% – 50\%\text{ RH}
    • C) 55\% – 65\%\text{ RH}
    • D) 75\% – 85\%\text{ RH}
  3. Acid Identification: Which acid is primarily responsible for the characteristic wine-like, bright acidity found in high-grade washed Kenyan SL28/SL34 cultivars?
    • A) Citric Acid
    • B) Malic Acid
    • C) Phosphoric Acid
    • D) Acetic Acid
  4. Cask Ullage: Why is a 20%–30% headspace (ullage) maintained when filling oak barrels with green coffee?
    • A) To allow heat buildup inside the barrel
    • B) To permit bean expansion and enable effective tumbling during rotation
    • C) To speed up alcohol production
    • D) To reduce the weight of the barrel for transport

(Questions 5–10 cover fermentation kinetics, yeast strains, roaster airflow mechanics, and defect chemistry.)

Section B: Short Answer & Calculations (5 Questions | 15 Points)

Requires concise technical explanations and mathematical calculations.

  1. Moisture Equilibrium Calculation: A 60 kg bag of barrel-aged green coffee exits the cask at 13.2\% moisture. Calculate the target weight required to re-stabilize the batch to 11.5\% moisture before roasting.
  2. Thermal Dynamics in Roasting: Explain why charging a roaster with wine-barrel aged green coffee using standard high initial heat application results in a flat, baked flavor profile.
  3. Agitation Mechanics: Describe the physical consequence on bean moisture uniformity if a barrel is left stationary for 14 consecutive days during the aging cycle.
  4. Biochemical Pathways: Differentiate between anaerobic maceration and traditional aerobic open-tank fermentation in terms of pH drop rate and volatile ester production.
  5. Defect Prevention: State two environmental conditions that lead to the proliferation of Aspergillus mold during post-harvest processing and cask conditioning.

Section C: Essay Case Study (1 Question | 15 Points)

Scenario: A specialty coffee estate in Nyeri has attempted wine-barrel aging using high-density AA green coffee (Screen 17/18). After 30 days in the cask, the cupping panel reports a heavy vinegar aroma, sour acetic notes, and visible white spots on the bean surface. Upon testing, the moisture content is 13.8\% and water activity is 0.68\ a_w.

Task: As a certified Kenya Coffee School processing specialist, write a technical diagnostic report covering:

  1. Root Cause Analysis: Identify three specific operational failures in cellar climate control, barrel preparation, or moisture tracking that caused this batch failure.
  2. Corrective Protocol: Outline the immediate steps required to salvage the remaining unaffected estate inventory.
  3. Standard Operating Procedure (SOP): Formulate a step-by-step control guide for the estate to successfully produce “The Coffee Wine” profile on their next processing cycle without exceeding safety thresholds.


Answers :

Kenya Coffee School Examinations & Certification Board

KCS-EXP-302 Written Examination Answer Key & Solutions

Total Marks: 40 Points

Section A: Multiple Choice Answer Key (10 Points)

QuestionCorrect AnswerTechnical Justification
1. Water Activity LimitsB) 0.62\ a_wa_w > 0.65 triggers mold proliferation (Aspergillus) and enzymatic degradation. Keeping a_w \le 0.62 ensures microbial stability during extended cask contact.
2. Cellar Climate ControlC) 55\% – 65\%\text{ RH}RH below 50% shrinks oak staves, breaking the air seal; RH above 70% creates condensate that drives moisture into green beans.
3. Acid IdentificationC) Phosphoric AcidHigh-grade washed SL28/SL34 cultivars grown in volcanic soils are renowned for distinct phosphoric acid levels, giving them a bright, sparkling, wine-like structure.
4. Cask UllageB) To allow bean expansion…Headspace allows green coffee to tumble freely during 180° rotations, preventing bean compaction and localized moisture pockets.

Section B: Short Answer & Worked Solutions (15 Points)

Question 1: Moisture Equilibrium Calculation (3 Points)
  • Problem: Calculate target dry weight for a 60 kg batch exiting the cask at 13.2% moisture to reach a target 11.5% moisture.
  • Formula: \text{Dry Matter Mass} = \text{Initial Weight} \times (1 - \text{Initial Moisture}) \text{Target Weight} = \frac{\text{Dry Matter Mass}}{1 - \text{Target Moisture}}
  • Step-by-Step Calculation:
    1. Determine dry matter content at 13.2% moisture (0.132): \text{Dry Matter Mass} = 60\text{ kg} \times (1 - 0.132) = 60 \times 0.868 = 52.08\text{ kg}
    2. Calculate required total mass at 11.5% target moisture (0.115): \text{Target Weight} = \frac{52.08\text{ kg}}{1 - 0.115} = \frac{52.08}{0.885} \approx 58.85\text{ kg}
  • Final Solution: The batch must be air-dried until total weight drops to 58.85 kg (water loss of 1.15\text{ kg}).
Question 2: Thermal Dynamics in Roasting (3 Points)
  • Solution: High initial charge temperatures cause premature scorching of the outer cell wall, which locks in volatile esters and volatilizes delicate fruit acids too quickly. The inner core remains under-developed while the outer layer bakes, stripping away the nuanced wine-like aromatics.
Question 3: Agitation Mechanics (3 Points)
  • Solution: Leaving a barrel stationary causes moisture and wine condensate to pool at the bottom of the cask due to gravity. Beans in the lower section become over-hydrated (>14\% moisture) and develop mold or acetic sourness, while top beans remain under-conditioned.
Question 4: Biochemical Pathways (3 Points)
  • Solution: Anaerobic maceration limits oxygen, forcing yeast into fermentative pathways that generate higher concentrations of complex fruity esters (ethyl acetate) and slow the pH drop curve. Open-tank aerobic fermentation allows rapid bacterial proliferation (acetic acid bacteria), dropping pH quickly and creating sharp acetic vinegar tones.
Question 5: Defect Prevention (3 Points)
  • Solution:
    1. Relative humidity exceeding 70% RH in the aging cellar.
    2. Water activity (a_w) rising above 0.65 due to incomplete post-aging re-drying or wet cask interiors.

Section C: Essay Case Study Diagnostic Report (15 Points)

1. Root Cause Analysis (5 Points)
  • High Cellar Humidity/Temperature: Relative humidity exceeded 70% or temperature rose above 21°C, allowing condensation to form on internal cask walls and raising a_w to 0.68.
  • Excess Barrel Wetness: The wine cask was loaded with pooled liquid rather than being properly drained, forcing free water into the bean matrix and raising moisture to 13.8\%.
  • Lack of Barrel Rotation & Aeration Control: Static positioning allowed localized moisture accumulation and oxygen ingress, favoring acetic acid bacteria and surface mold growth (visible white spots).
2. Corrective Protocol for Unaffected Inventory (5 Points)
  1. Immediate Transfer & Unloading: Remove uncompromised green beans from aging casks immediately.
  2. Moisture & Water Activity Sorting: Measure a_w on all batches. Segregate any coffee with a_w > 0.65.
  3. Rapid Shaded Air-Drying: Spread affected beans in thin layers on raised drying beds under 70% shade cloth with active air circulation until moisture drops below 11.5\% and a_w \le 0.60.
  4. Cask Sterilization: Ozone-treat or steam-sanitize wine casks to eliminate residual Aspergillus spores before reloading future batches.
3. Standard Operating Procedure (SOP) Guide for “The Coffee Wine” (5 Points)
  • Pre-Loading Check: Verify green coffee moisture is 11.0\% – 11.2\% and density is \ge 820\text{ g/L}. Ensure cask is fully drained without standing liquid.
  • Fill Ratio & Environment: Load to 75% capacity (25% ullage). Lock cellar parameters to 15^\circ\text{C} – 18^\circ\text{C} and 55\% – 65\%\text{ RH}.
  • Agitation Schedule: Rotate casks 180° twice daily for the first 14 days, then 3 times weekly thereafter.
  • Weekly Monitoring Log: Sample beans weekly; track moisture (max 12.5\%) and a_w (max 0.62). Terminate aging immediately if threshold limits are reached.

Section C Grading Rubric

+----------------------------------------------------------------------------------------+
|                                  SECTION C RUBRIC                                      |
+----------------------------------------------------------------------------------------+
|  POINTS  | CRITERIA                                                                    |
+----------+-----------------------------------------------------------------------------+
|  13–15   | Identifies all 3 root causes with exact parameters; provides precise        |
|          | mathematical/biochemical reasoning; outlines complete SOP with exact limits.|
+----------+-----------------------------------------------------------------------------+
|   9–12   | Identifies 2–3 root causes; outlines logical corrective action and SOP;    |
|          | minor technical omissions in parameter thresholds.                          |
+----------+-----------------------------------------------------------------------------+
|   5–8    | Correctly identifies 1 root cause; vague corrective steps; SOP lacks        |
|          | actionable operational controls.                                            |
+----------+-----------------------------------------------------------------------------+
|   0–4    | Fails to diagnose root causes; incorrect technical recommendations.         |
+----------------------------------------------------------------------------------------+

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