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Ferrovanadium DC Furnace: Equipment and Technical Parameters
1. Equipment Overview
The ferrovanadium DC furnace adopts a single top cathode + furnace bottom anode DC arc furnace structure, suitable for producing FeV40, FeV50 and FeV60 ferrovanadium via silicothermic or aluminothermic reduction processes. Compared with traditional three-phase AC ferrovanadium furnaces, it delivers prominent advantages: concentrated and stable electric arc, 40%~50% lower graphite electrode consumption, low grid harmonic distortion, natural power factor of 0.90~0.96, high molten pool thermal efficiency, longer refractory service life and over 20 dB noise reduction.
Standard single furnace output capacities: 1.5t, 3t and 5t finished ferrovanadium furnaces, fully equipped with rectified power supply, water cooling, hydraulic tilting and full-automatic PLC control systems.
2. Complete Equipment System Composition
2.1 Power Supply & Rectification System (Core Power Unit)
High-voltage Power Distribution Unit
10kV incoming cabinet, isolating switch, vacuum circuit breaker, SVG reactive power filter compensation device; suppresses grid flicker to only 50%~70% of that of AC furnaces.
Primary side: 10kV; secondary AC output adjustable from 90~220V with multiple tap positions
Three-phase Full-controlled Bridge Rectifier
High-power thyristor rectifier with closed-circuit water cooling; outputs stable direct current with reversible positive/negative polarity switching; integrated multi-interlock protection against overcurrent, overvoltage, high water temperature and water leakage.
Large cross-section internal water-cooled flexible cables with current density ≤3A/mm² to minimize conductive loss
2.2 Furnace Body System
Furnace Shell
Cylindrical steel plate shell with double-layer circulating water jackets on upper section and thickened water cooling at slag line to reduce erosion from high-temperature radiation; equipped with temperature measuring and water leakage detection sensors.
Special Alkaline Refractory Lining for Ferrovanadium Smelting
Furnace bottom & molten pool: fused magnesia brick, magnesia-carbon brick (withstanding high reduction temperature of 1800~2100℃)
Slag line furnace wall: chrome-magnesia brick; conductive steel plate laid on furnace bottom as anode
Tubular fully water-cooled furnace cover reserved with feeding port, flue gas duct and central electrode hole
Furnace Tilting Mechanism
Full hydraulic bilateral tilting, tilting angle 0~110°, tilting speed 0.5~2°/min; three positioning modes: smelting horizontal position, slag tapping position and metal tapping position, with mechanical locking device.
Furnace Cover Lifting & Rotating Device
Hydraulic lifting + rotary structure; the cover can rotate away after lifting for furnace patching, slag line cleaning and electrode replacement.
2.3 Hydraulic Electrode Lifting System
Single-column hydraulic lifting unit for independent vertical adjustment of single cathode graphite electrode
PLC proportional valve dual closed-loop control (constant power regulation via voltage + current), switchable between manual and automatic modes
Electrode stroke: 1200~1400mm; lifting response time ≤0.3s to stabilize submerged arc and avoid arc breakage or electrode fracture
2.4 Circulating Water Cooling System
Independent closed pure water cooling unit for rectifier
Shared industrial circulating cooling water for furnace shell water jackets, furnace cover, conductive cross arms, water-cooled cables and copper shoes
Inlet water temperature ≤32℃, outlet water temperature ≤45℃, with interlock alarms for flow rate, pressure and temperature
2.5 Automatic Control System
PLC + upper computer DCS centralized monitoring:
Automatic smelting curve operation (power auto-adjustment for arc striking, melting, reduction, refining and tapping stages)
Real-time recording and accumulation of DC voltage, current, power and power consumption
Interlock protection and fault alarm storage for water cooling, hydraulic system, tilting and electrode lifting
Storage of process parameters, export of historical curves and output statistics
2.6 Auxiliary Supporting Systems
Raw Material Batching System: silos, belt conveyors, electronic batching scales (precision ±0.5%), mixing machines
Graphite electrode consumption of DC furnace: 0.8~1.1kg/t ferrovanadium; traditional three-phase AC furnace: 1.6~2.0kg/t, nearly 50% reduction
4. Core Technical Advantages of DC Ferrovanadium Furnace
Concentrated Arc Heat: Single-electrode DC arc radiates vertically downwards to molten pool, lowering thermal load on furnace wall slag line; service life of magnesia lining increased by over 30% with less frequent furnace patching.
Grid-friendly Performance: Balanced three-phase current without negative sequence harmonics, requiring smaller capacity reactive power compensation and higher transformer utilization rate.
Lower Production Cost: Halved electrode consumption, reduced power consumption per ton product and decreased refractory maintenance cost.
Stable Smelting Quality: Uniform electromagnetic stirring in molten pool for even vanadium distribution and minor fluctuation of ferrovanadium chemical composition.
Improved Operating Environment: Low noise under submerged arc, less flue gas overflow and slight equipment vibration.
Shaanxi Chengda Industrial Furnace Manufacturing Co., Ltd. is a high-tech enterprise specialized in the research, design, and manufacturing of various industrial furnaces, including AC and DC steelmaking electric arc furnaces, ladle refining furnaces, ferroalloy ore thermal furnaces, ferroall... Shaanxi Chengda Industrial Furnace Manufacturing Co., Ltd. is a high-tech enterprise specialized in the research, design, and manufacturing of various industrial furnaces, including AC and DC steelmaking electric arc furnaces, ladle refining furnaces, ferroalloy ore thermal furnaces, ferroall...