🥩 Protein — Kjeldahl method

Food Chemistry PN-EN ISO 8968-1 / AOAC 2001.11

Classical method for determining total protein in food based on nitrogen content (N × conversion factor). Reference method in food analysis since 1883.

Overview

The Kjeldahl method is the world reference standard for determining nitrogen and crude protein content in food, feed, soil, and environmental samples. Developed in 1883 by Danish chemist Johan Kjeldahl, it remains the most widely used method for quantitative protein determination in food quality control laboratories worldwide.

The principle of the method involves mineralization of the sample in concentrated sulfuric acid with a catalyst (CuSO₄, K₂SO₄), during which organic nitrogen is converted to ammonium sulfate. Then, after alkalizing the solution with sodium hydroxide, the released ammonia is distilled with steam and absorbed in boric acid solution. The amount of ammonia is determined by titration with hydrochloric acid. Protein content is calculated by multiplying nitrogen content by a conversion factor (e.g., 6.25 — general; 6.38 — milk; 5.70 — cereals; 6.25 — meat).

The Kjeldahl method is required by EU and Polish regulations concerning food labeling, feed control, and certification of food raw materials. The repeatability of the method for protein content defined in AOAC 991.20 and ISO 8968-1 standards is 0.038% protein, making it a highly precise reference technique.

Modern Kjeldahl systems (BÜCHI, Gerhardt, VELP, FOSS) automate block mineralization, steam distillation, and titration, enabling analysis of 20–40 samples per day. The method is universal — suitable for both homogeneous and heterogeneous samples (meat, cereals, milk, feed).

Method principle

The method consists of three stages: (1) Mineralization — the sample is digested in concentrated H₂SO₄ (temp. 380–420°C) with selenium or copper catalyst and K₂SO₄ raising the boiling point, which causes decomposition of organic compounds and conversion of nitrogen to (NH₄)₂SO₄. (2) Distillation — after cooling and adding excess NaOH, released NH₃ is distilled with steam to a receiver with boric acid (H₃BO₃). (3) Titration — the resulting ammonium borate is titrated with standardized HCl solution to the endpoint (color change of mixed Tashiro indicator). Nitrogen content is converted to crude protein: protein [%] = N [%] × F, where F is the conversion factor depending on the product type.

Applications

Key parameters

ParameterValue
Measurement range0.1–100% protein (depending on matrix)
Conversion factors6.25 (general), 6.38 (milk), 5.70 (cereals), 6.25 (meat)
Repeatability±0.038% protein (according to ISO 8968-1)
Mineralization temperature380–420°C
Mineralization time45–90 min (depending on matrix)
Sample size0.5–2.0 g

Standard

Standard number
PN-EN ISO 8968-1:2014 / AOAC Official Method 2001.11
Title (PL)
Oznaczanie zawartości azotu — Część 1: Metoda Kjeldahla i obliczanie białka surowego
Title (EN)
Determination of nitrogen content — Part 1: Kjeldahl principle and crude protein calculation

Step-by-step procedure

1. Sample preparation

Homogenize the sample. Weigh 0.5–2.0 g on an analytical balance into a Kjeldahl flask. Record mass with 0.001 g accuracy.

⏱ Time: 5 min

2. Addition of reagents

Add 2 catalyst tablets (K₂SO₄ + CuSO₄) and 20 mL conc. H₂SO₄. Mix carefully.

⏱ Time: 3 min

3. Mineralization

Place flasks in block digestor. Heat gradually to 420°C. Mineralize until solution becomes clear (light green/colorless).

⏱ Time: 45–90 min • 🌡 Temperature: 380–420°C

4. Cooling

Turn off heating. Leave flasks to cool to room temperature. Carefully add 50 mL deionized water.

⏱ Time: 20–30 min

5. Distillation preparation

Place flask in steam distillation unit. Prepare receiver with 50 mL 4% boric acid with Tashiro indicator (pink color).

⏱ Time: 3 min

6. Alkalization and distillation

Distillation unit automatically doses 40% NaOH. Steam releases NH₃, which is absorbed in H₃BO₃ solution (color change to green).

⏱ Time: 4–5 min

7. Titration

Titrate distillate with standardized 0.1 mol/L HCl to endpoint (color change from green to violet). Record HCl consumption.

⏱ Time: 3–5 min

8. Blank test

Conduct full procedure without sample (with reagents only). Subtract HCl consumption for blank from result.

⏱ Time: 60 min

9. Calculations

N [%] = (V_sample − V_blank) × c_HCl × 14.007 × 100 / (m_sample × 1000). Protein [%] = N [%] × conversion factor.

10. Quality control

Analyze CRM every series (10–20 samples). Nitrogen recovery 98.5–101.5%. Maintain control chart.

⏱ Time: 60 min

Required equipment and apparatus

EquipmentExampleIndicative price
Kjeldahl block digestorBÜCHI SpeedDigester K-436 (20 positions), Gerhardt Kjeldatherm35 000–65 000 PLN
Kjeldahl steam distillation unitBÜCHI KjelFlex K-360, VELP UDK 16940 000–75 000 PLN
Gas scrubberBÜCHI Scrubber B-414, Gerhardt Turbosog8 000–15 000 PLN
Analytical balance 0.1 mgMettler Toledo MS205DU, Sartorius Quintix 2248 000–20 000 PLN
Automatic burette / TitratorMetrohm 888 Titrando, SI Analytics TitroLine 700015 000–35 000 PLN
Kjeldahl flasks 250–500 mLDURAN / Simax borosilicate, set of 20 pcs.600–1 200 PLN
Catalyst tabletsBÜCHI Kjeldahl Tablets (K₂SO₄ + CuSO₄), 1000 pcs.400–800 PLN

Reagents, media and consumables

ReagentCASDetails
Concentrated sulfuric acid 96% p.a.7664-93-9For mineralization, 2.5 L for ~50 determinations
Sodium hydroxide 40%1310-73-2For alkalization before distillation, 2.5 L
Boric acid 4%10043-35-3Ammonia absorbing solution, with mixed Tashiro indicator
Hydrochloric acid 0.1 mol/L standardized7647-01-0For titration, 1 L bottle with certificate
Potassium sulfate K₂SO₄7778-80-5Catalyst — raises boiling point
Copper(II) sulfate CuSO₄·5H₂O7758-99-8Mineralization catalyst, in tablets or powder
Mixed Tashiro indicatorMethyl red + methylene blue, color change green→violet
Reference material CRM (protein)E.g., NIST SRM 1849a (milk) or BIPEA, for validation and quality control

Health and safety (OHS)

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