🧱 Chloride content in concrete

Construction PN-EN 14629

Determination of total acid-soluble chloride content in hardened concrete by potentiometric or Volhard titration. Key test for reinforcement corrosion risk.

Overview

Chlorides in concrete are the main cause of steel reinforcement corrosion in reinforced concrete structures, leading to pitting corrosion and loss of load-bearing capacity. Sources of chlorides are: de-icing salts on roads and bridges, seawater (coastal structures), chlorides in aggregate or mixing water, and industrial environments.

Standard PN-EN 14629 describes methods for determining total acid-soluble chloride content in hardened concrete. Result is expressed as percentage of chloride mass relative to cement or concrete mass. Critical value initiating reinforcement corrosion is usually 0.2–0.4% Cl⁻ of cement mass (according to PN-EN 206 — max. 0.20–0.40% depending on exposure class).

The standard allows two titration techniques: potentiometric (with silver electrode as indicator) and Volhard (back titration of excess AgNO₃ with potassium thiocyanate with iron indicator). Both give comparable results with difference max. 0.005% Cl⁻. Potentiometric titration is preferred due to objectivity of endpoint detection.

The test is performed in structure diagnostics (bridges, parking lots, wharves), corrosion risk assessment, repair design and scientific research on concrete durability.

Method principle

Sample of powdered concrete (obtained by core drilling or milling) is dissolved in hot nitric acid, which releases bound and free chlorides. After filtration, solution is titrated: (1) potentiometrically — adding AgNO₃ solution and recording silver electrode potential vs. reference electrode — equivalence point corresponds to sudden potential change; (2) by Volhard method — adding excess AgNO₃ (chlorides precipitate as AgCl), then titrating excess AgNO₃ with KSCN solution with Fe³⁺ indicator (red color = endpoint). Chloride content is calculated from titrant consumption and converted to % cement or concrete mass.

Applications

Key parameters

ParameterValue
Determination range0.01–5% Cl⁻ (concrete mass)
Critical value (PN-EN 206)0.20–0.40% Cl⁻ cement mass (depending on class)
SolventHNO₃ diluted 1:1 (dissolves acid-soluble chlorides)
TitrantAgNO₃ 0.1 mol/L
Sample mass5–20 g powdered concrete
Repeatability±0.005% Cl⁻

Standard

Standard number
PN-EN 14629:2007
Title (PL)
Wyroby i systemy do ochrony i napraw konstrukcji betonowych — Metody badań — Oznaczanie zawartości chlorków w betonie
Title (EN)
Products and systems for the protection and repair of concrete structures — Test methods — Determination of chloride content in hardened concrete

Step-by-step procedure

1. Concrete sample collection

Core drilling ∅20–50 mm or profile milling of layers every 5–10 mm. Collect concrete powder min. 20 g from each depth.

⏱ Time: 30–60 min

2. Drying and grinding

Dry powder at 105°C / 2 h. Grind in mill to fraction <0.125 mm. Sieve through 0.125 mm sieve.

⏱ Time: 3 h • 🌡 Temperature: 105°C

3. Sample weighing

Weigh 5.000±0.001 g powdered concrete on analytical balance. Transfer to 250 mL beaker.

⏱ Time: 5 min

4. Acid dissolution

Add 25 mL deionized water and 10 mL HNO₃ (1:1). Heat to boiling, boil 3 min. Cool.

⏱ Time: 15 min • 🌡 Temperature: ~100°C

5. Filtration

Filter through quantitative filter (Whatman 40/42 paper) into 250 mL flask. Wash residue with hot water. Fill to mark.

⏱ Time: 15 min

6. Potentiometric titration

Take 50–100 mL aliquot of filtrate. Insert Ag and reference electrodes. Titrate with AgNO₃ 0.1 mol/L. Record E = f(V) curves. Read equivalence point.

⏱ Time: 10–15 min

7. Alternative: Volhard titration

To aliquot add excess AgNO₃ (e.g. 25 mL). Precipitate AgCl, filter. Titrate filtrate with KSCN with Fe³⁺ until stable pink color.

⏱ Time: 20 min

8. Calculations

Cl⁻ [%] = (V_AgNO₃ × c × 35.45 × 100) / (m × 1000 × aliquot/250). Convert to % cement mass (if cement content known).

⏱ Time: 5 min

9. Quality control

Analysis of blank, duplicate, CRM sample with certified Cl⁻ content. Recovery 95–105%.

⏱ Time: 30 min

10. Interpretation and report

Compare result with critical values PN-EN 206 (0.20–0.40% cement mass). Prepare chloride profile (concentration vs. depth).

⏱ Time: 30 min

Required equipment and apparatus

EquipmentExampleIndicative price
Potentiometric titrator with Ag electrodeMetrohm 888 Titrando, Mettler Toledo T525 000–60 000 PLN
Silver indicator electrodeMetrohm 6.0430.100, Mettler Toledo DM140-SC800–2 000 PLN
Ag/AgCl reference electrodeMetrohm 6.0726.100500–1 500 PLN
Core drill / profile milling machineHilti DD 150-U, Proceq Profometer PM-68 000–25 000 PLN
Laboratory grinder (concrete crushing)RETSCH DM200, IKA MF 10.110 000–30 000 PLN
Heating plate / water bathIKA C-MAG HP 7, Memmert WNB 142 000–6 000 PLN
Analytical balance 0.1 mgMettler Toledo ME204, Sartorius Quintix 2245 000–15 000 PLN

Reagents, media and consumables

ReagentCASDetails
Silver nitrate (AgNO₃) 0.1 mol/L7761-88-8Titrant, standardized solution, for potentiometric and Volhard titration
Nitric acid (HNO₃) 65% pure7697-37-2For dissolving concrete sample (diluted 1:1), releasing chlorides
Potassium thiocyanate (KSCN) 0.1 mol/L333-20-0Titrant for back titration (Volhard method)
Ammonium iron sulfate7783-83-7NH₄Fe(SO₄)₂·12H₂O, Volhard indicator — saturated aqueous solution
Chloride standard (NaCl)7647-14-5Certified CRM, for titration verification, 1000 mg Cl⁻/L
Deionized water7732-18-5Conductivity <0.1 mS/m, for solution preparation and dilutions

Health and safety (OHS)

🔍 Find a laboratory performing this test