hydraulic forge heating furnace
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Comparative Analysis of Heating Methods for Brass Billet Forging

Natural Gas Furnace vs MF Induction Furnace · SME Context · Rev. 1.0

Executive Summary

This report evaluates Natural Gas Furnaces and Medium Frequency Induction Furnaces for pre-forging heating of brass billets to their plastic deformation temperature range of 650 – 850 °C. The selection of heating technology is a strategic decision impacting metallurgical quality, die life, energy expenditure, and production flexibility. In the Serbian 2026 context, regulated SME tariffs show a critical differential: natural gas (~5 RSD/kWh) is about 3.3x cheaper than electricity (~16.5 RSD/kWh), heavily impacting TCO despite induction’s higher efficiency.

🔥 Gas Advantage

Superior thermal homogeneity (ΔT < 5 °C core-to-surface), ideal for large-diameter billets. Lower energy cost and excellent production buffer via soaking zone.

⚡ Induction Advantage

Heating rates up to 500 °C/min, instantaneous start-up, zero on-site combustion emissions. Suited for high-volume continuous production with tight just-in-time requirements.

Section 01

Introduction & Material Basis

Brass alloys (Cu–Zn systems, typically CW617N / CZ122 / H62) are the dominant material for hot-forged components: valve bodies, fittings, connectors, and structural hardware. Their forgeability is maximised at elevated temperatures where the face-centred-cubic (FCC) α-phase and the body-centred-cubic (BCC) β-phase coexist, reducing yield strength and improving ductility.

650–850
Forging temp. range (°C)
57–63%
Copper content (typical)
1,080
kg/hour (scenario)
≤ 15%
Max acceptable scaling loss
📊 Serbia 2026 Energy Context · SME / Small Customers
The choice of heating technology for brass billets before forging is a strategic decision impacting metallurgical quality, die life, energy consumption, and production flexibility. This report compares natural gas furnaces and medium frequency (MF) induction furnaces in the specific context of small and medium enterprises (SMEs) in Serbia, using data updated to spring 2026.

Data Sources: AERS (Serbian Energy Agency), EPS (Elektroprivreda Srbije), Srbijagas, GlobalPetrolPrices (September 2025, updated 2026), Serbia-Energy.eu (January 2026). Regulated tariffs for small customers with consumption up to 100,000 m³/year of gas.

💡 Key Cost Difference: In Serbia, the electricity price for SMEs is ~16.5 RSD/kWh, while the equivalent natural gas cost is ~5.0 RSD/kWh. This makes gas about 3.3 times cheaper per thermal kWh, thanks to the favorable Gazprom contract extended until 2026. However, this difference can vary significantly based on company location and source availability (e.g., gas grid access or low-cost renewable electricity).

Section 02

Technology Overview

Heating ZoneSoaking Chamber

Principle: Controlled combustion of CH₄ + air transfers heat via convection, flame impingement, and radiation from refractory walls.

Design: Multi-zone: heating zone (rapid ΔT) + soaking/holding zone (temperature equalisation across billet cross-section).

Required infrastructure: Gas line, chimney, safety systems, ventilation.

Induction coil + billet⚡ MF 1–10 kHzInduction

Principle: AC at medium frequency (500 Hz – 10 kHz) through a copper coil induces eddy currents inside the billet; heat generated by Joule effect (I²R) directly in the metal.

Design: Through-feed coil system; billets pushed continuously through the electromagnetic field.

Required infrastructure: High-power electrical supply, water cooling system.

Skin Depth Formula (IEC 60404)
δ = √( ρ / (π · f · μ₀ · μᵣ) )
δ = skin depth (m) · ρ = electrical resistivity of brass ≈ 6.2×10⁻⁸ Ω·m (at 20°C, rising to ~1.4×10⁻⁷ Ω·m at 750°C) · f = frequency (Hz) · μ₀ = 4π×10⁻⁷ H/m · μᵣ ≈ 1.0 for brass (non-magnetic)
Engineering implication: For billets with diameter > 80 mm, gas furnaces provide inherently superior thermal homogeneity. For diameters ≤ 40 mm, induction heating can achieve acceptable gradients (< 20 °C) with properly matched frequency selection.

Section 03

Comparative Analysis

3.1 Energy Efficiency

Induction furnaces transfer energy directly into the workpiece with a typical electrical-to-billet efficiency of 90–95%. Gas furnaces lose significant energy through exhaust gases and refractory heat storage; their billet heating efficiency is typically 45–65%, though recuperative burner systems can raise this to ~75%.

Energy Efficiency Comparison
% of input energy transferred to the billet (literature values, brass billets)

3.2 Heating Rate & Thermal Dynamics

The table below summarises characteristic heating rates and thermal response parameters for both technologies. These parameters directly determine production throughput and the feasibility of just-in-time manufacturing schedules.

5–15
Gas furnace heating rate (°C/min)
100–500
Induction heating rate (°C/min)
30–60
Gas preheat time to operating temp (min)
< 1
Induction start-up time (min)
Temperature Profile: Core vs Surface (50 mm diameter brass billet)
Simulated temperature distribution during heating

3.3 Metallurgical Impact on Brass

The heating method has a direct influence on grain structure, surface integrity, and forging response. Three mechanisms are critical:

Dezincification

Selective removal of Zn from the alloy surface. Occurs above ~600 °C in the presence of oxygen. Induction-heated billets exhibit a dezincification depth of 0.1–0.3 mm vs. < 0.05 mm for reducing-atmosphere gas furnaces.

Scale Formation

Oxidation layer (CuO, Cu₂O, ZnO). Gas furnace with slightly reducing atmosphere (λ ≈ 0.95): scale loss 0.3–0.7 % of billet weight. Open induction coil: 0.8–1.5 % weight loss (3× higher).

Grain Growth

Prolonged soaking at > 800 °C promotes grain coarsening (ASTM grain size < 3). Gas furnaces risk this if soaking times exceed 45 min; induction eliminates this risk but may produce fine uneven grains in the core.

Metallurgical Quality Score Comparison (normalised, 0–10)
Based on published data: Totten & Funatani, Handbook of Metallurgical Process Design; Zhou et al., J. Mater. Process. Technol. 2021

3.4 Operational & Infrastructure Costs

Despite induction’s superior efficiency, the Serbian tariff differential reverses the economic equation.

ParameterElectricityNatural GasDifference / Advantage
Specific consumption0.32 kWh/kg0.55 thermal kWh/kgGas more dispersive but low price
Cost per kg≈ 5.28 RSD/kg≈ 2.75 RSD/kg-48%
Hourly cost (1,080 kg)~5,702 RSD~2,970 RSDSavings ~2,732 RSD/hour
Annual cost (3,240 ton)~17.1 million RSD~8.9 million RSDSavings 8.2M RSD/year

🛠 Production Cost Calculator

Adjust parameters to see real-time cost changes. Defaults based on Serbia 2026 scenario (2×600g every 4s, 10h/day).

📋 Production Parameters

⚡ Energy Parameters (EDITABLE)

kWh of electricity required to heat 1 kg of brass (MF induction: 0.30–0.35)
kWh of thermal gas required to heat 1 kg of brass (gas furnace: 0.50–0.60)
Default: 16.5 RSD/kWh (Serbia 2026)
Default: 5.0 RSD/kWh (Serbia 2026)

📊 Calculation Results

Hourly Production
1,080 kg/h
Annual Production
3,240 ton
Days/year
300
⚡ Electricity Cost
Per kg:
5.28 RSD
Hourly:
5,702 RSD
Annual:
17.1M RSD
🔥 Gas Cost
Per kg:
2.75 RSD
Hourly:
2,970 RSD
Annual:
8.9M RSD
💰 ANNUAL SAVINGS WITH GAS
8.2M RSD
48% less

* Energy costs update automatically when modifying parameters above. Indicative values, excluding maintenance and depreciation.

3.5 Environmental & Safety Compliance

🔥 Gas Furnace — Emissions
On-site CO₂~0.20 kg/kWh input
NOₓ emissions (typical)80–200 mg/Nm³
Permitting complexityMedium–High
Explosion riskPresent
⚡ Induction Furnace — Emissions
On-site CO₂Zero (Scope 1)
NOₓ emissionsZero
Permitting complexityLow
Scope 2 CO₂ (grid)Grid-dependent
🌍 Environmental considerations: The gas furnace emits CO₂ and NOₓ on-site (combustion). Although it has lower energy costs, it requires more complex environmental permits and involves greenhouse gas emissions. The induction furnace has zero direct emissions (Scope 1), making it more “green” and simpler to authorize. However, its overall carbon footprint (Scope 2) depends heavily on the Serbian grid energy mix. In an area with hydroelectric or nuclear power, induction is the more sustainable choice. Additionally, induction reduces oxide (scale) formation and dezincification, improving material yield.

Section 04

Summary Comparison Table

Parameter🔥 Natural Gas Furnace⚡ MF Induction Furnace
Heating MechanismFlame, convection, radiation (external)Joule effect via eddy currents (internal)
Start-up Time30–60 min (refractory preheat)< 1 min (instantaneous)
Heating Rate5–15 °C/min100–500 °C/min
Core-to-Surface ΔT (50 mm billet)< 5 °C (after soaking)20–60 °C (frequency-dependent)
Production BufferExcellent — holding zonePoor — coil must be emptied
Surface Oxidation / Scale Loss0.3–0.7% (reducing atmosphere)0.8–1.5% (open coil)
Dezincification Depth< 0.05 mm0.1–0.3 mm
Die Life ImpactPositive — uniform material flowNeutral / Negative — harder surface
Electrical Energy Efficiency45–65% (≈75% recuperative)90–95%
Energy Cost per kg (Serbia 2026)~2.75 RSD~5.28 RSD (+48%)
On-site CO₂ / NOₓPresentZero
Annual Maintenance (estimated)800 – 1,800 € + spare parts300 – 800 € + cooling/electronics
Large Diameter (> 80 mm) SuitabilityExcellentRequires low-frequency & soak time

✅ Decision Table · Gas vs Electric for High Production (>3,000 ton/year)

FactorElectricGasIdeal for…
Energy costHighVery lowGas
Brass precision/qualityMinimal oxidationOxidation riskElectric
Initial investmentHigher (induction)LowerGas
Maintenance & complianceSimpleComplex (safety)Electric
Serbia availabilityEverywhereRequires gas gridElectric if no gas grid

Section 05

Conclusions & Recommendations

No single technology is universally superior. Selection must be based on a structured cost-benefit analysis incorporating local utility pricing, billet geometry, production cadence, and regulatory environment.

🔥 Select Natural Gas Furnace when:

  • Billet diameter exceeds 60–80 mm (skin depth limitations of induction)
  • Die life and material flow are primary quality KPIs
  • Production line has frequent short stoppages (> 15 min/shift)
  • Local gas prices are < 50% of electricity on kWh basis (as in Serbia 2026)
  • Reducing atmosphere is required to minimise dezincification (e.g., pressure valve seats, corrosion-critical components)
  • Capital budget is constrained (gas furnaces typically 30–50% lower CAPEX)

⚡ Select MF Induction Furnace when:

  • High-volume continuous production (> 15 billets/min) is required
  • Rapid start-up / shut-down cycles are operationally mandated
  • Facility is subject to strict emission regulations (EU IED, local permits)
  • Billet diameter is ≤ 50 mm and frequency can be optimised
  • Electricity is competitively priced (renewables, long-term contract)
  • Clean production environment required (ESD, precision components)
🎯 Recommendation for high-speed forging (1,080 kg/hour): Natural gas guarantees annual savings >8 million RSD, far exceeding higher maintenance and connection costs. For the Serbian 2026 high-production scenario, natural gas remains the economically dominant choice.
Recommended Next Step: Perform a total cost of ownership (TCO) analysis over a 10-year horizon, incorporating: (1) local energy tariff projections, (2) targeted scrap rate and die replacement cost differentials, (3) carbon cost forecast under applicable regulatory regime (EU ETS or equivalent), and (4) potential qualification costs for atmospheric control systems.
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hydraulic forge heating furnace