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Weifang Xinbeihai Hot Dip Galvanizing Equipment Co., Ltd.

Customized Hot Dip Galvanizing Line with High-Velocity Pulse Firing System and Supplymentary Equipment

Produktdetails:
Herkunftsort: CHINA
Markenname: Beihai Galvanizing
Modellnummer: Nicht standardmäßig
Zahlung und Versand AGB:
Min Bestellmenge: 1
Preis: negotiable
Verpackung Informationen: Wie Holzkiste, Anzug zum Versenden und Heben
Lieferzeit: 60-120 arbeitstage
Zahlungsbedingungen: L/c, t/t
Versorgungsmaterial-Fähigkeit: Keine Grenze
  • Detailinformationen
  • Produkt-Beschreibung

Detailinformationen

Firmentyp: Herstellung und Handel Herkunft: CHINA/TAIWAN seit 1990
Umfang: Ausrüstung für eine komplette Feuerverzinkungsanlage Vorteil: Hohe Qualität
Anwendung: mit einer Breite von mehr als 20 mm, Nachverkaufsservice erbracht: Ingenieure verfügbar Maschinerie übersee, Feldinstandsetzungs- und Reparaturservice instandhalten
Zustand: Neu Typ: Heißes DIP-Verzinken
Beschichtung: Verzinkung, Zink oder Zn-Al, Warmdippverzinkung Dimension (l*w*h): angepasst
Produktname: Feuerverzinkungsanlage Farbe: Customized Color
Kontrolle: Intelligente Steuerung Ofen: Hochgeschwindigkeits-Impulsfeuerungssystem
Kunden: Weltweit Brenner: Hochgeschwindigkeits-Pulsbrenner
Größe: Machen Sie wie der Kunde braucht oder wir entwerfen Anwendbare Branchen: Fertigungsanlage
Dimension: angepasst Kraftstoff: Erdgas, LPG, Diesel
Sicherheitssystem: Ja Kühlmethode: Wasserlöschen
Heizmethode: Induktionsheizung Pflanzendesign: individuell für die Kunden
Verbrennungssystem: Hochgeschwindigkeits-Impulsverbrennungssystem
Hervorheben:

High Velocity Pulse Firing System Hot Dip Galvanizing Line

,

Water Quenching Galvanizing Equipment

,

Induction Heating Galvanizing Plant

Produkt-Beschreibung

Hot Dip Galvanizing Line Plant Factory Equipment Customize Zinc Kettle Furnace
Our Service

We supply reliable, high-performance, environmentally friendly, and technologically advanced galvanizing factories with comprehensive services:

  • Demand communication and custom plant design
  • Supply of hot-dip galvanizing equipment
  • Assembly and commissioning
  • Supply of galvanizing techniques
  • After-sales service
Design Method
Step 1: Choose Plant Type - 3D Plant Layout

Our 3D view design provides a clearer and more understandable workshop layout compared to traditional AutoCAD drawings, making it accessible beyond just design professionals.

Step 2: Site/Online Visit - VR Previewing
Step 3: Confirm Project - Sign the Contract

After requirements determination, we provide comprehensive documentation including:

  • Machine overview and specifications
  • Installation and operation descriptions
  • Maintenance and troubleshooting guides
  • Detailed control diagrams
  • Electrical wiring schematics
  • Parameter settings and emergency plans
Manufacturing Process

After contract signing, we begin manufacturing by:

  • Procuring steel, raw materials, and electronic components
  • Designing control software (PLC and HMI) for system automation
Installation & Commissioning

Our comprehensive installation and commissioning process includes:

  • Mechanical assembly and system integration
  • Power system connection and layout management
  • Furnace combustion system adjustment for optimal heat efficiency
  • Traveling crane operation optimization
  • Technical guidance for hot dip galvanizing processes
Customization Requirements

To customize your galvanizing plant, we need the following information:

Name Specification
Plan Products to be galvanized, annual capacity, expected start date
Galvanizing Plant Workshop dimensions (L x W x H)
Zinc Kettle Size specifications and steel plate thickness
Furnace Fuel Fuel type preference (LNG, LPG, Diesel, etc.)
Environmental Equipment Wastewater, acid mist, and fume treatment requirements
Additional Features Waste heat systems, tank protection types, auxiliary equipment
Why Choose Us

Beihai Galvanizing - Your trusted partner for customized galvanizing solutions. We deliver:

  • Tailored factory designs to your exact specifications
  • Comprehensive equipment solutions from A to Z
  • Professional installation and commissioning services
  • Ongoing technical support and after-sales service

Partner with us for a win-win future in galvanizing solutions!

Hot dip galvanizing knowledge sharing

Normal Temperature Range between 435 and 490 °C

In this temperature interval a very strong dependence of layer growth on the Si content of the steel is observed. Four typical galvanizing ranges exist (low-silicon, Sandelin, Sebisty and high-silicon), and all have significantly different coating thickness and structure.

Growth and structure of zinc coatings are influenced by hydrogen, which diffuses out, and thus indirectly by the Si content of the steel. Silicon impedes hydrogen effusion and determines the microstructure and character of the marginal zone in steel. Phosphor concentrates in steels through segregation

processes in the marginal zone and prevents the formation of a compact and dense δ1 phase, which becomes noticeable through strong layer growth, in particular in steels containing little silicon.

In the low-silicon range and in the Sebisty range above 450 °C, hydrogen indirectly impedes layer growth, because, due to delayed hydrogen effusion or delayed hydrogen postdiffusion through the reaction of the melt with the marginal zone of the steel,a dense δ1 phase can be formed. A gap between the steel and zinc coating develops clearly in the low-silicon range and slightly less so in the Sebesty range above 450 °C, because effusing hydrogen impedes layer growth by disturbing the phase-boundary bond. For this reason, a uniform cause for the parabolic growth in these two ranges can be assumed.

In particular, in the Sandelin range, where the formation of a δ1 phase hardly ever occurs and a dense δ1 phase never occurs, the hydrogen effusion promotes the layer growth, since the reactive surface is kept constantly active.

In the high-silicon range, the influence of hydrogen is only slightly noticeable. The silicon concentrating at the phase boundary in the course of the reaction, however, reduces the iron supply in the reaction zone. For this reason, the development of a continuous δ1 phase is no longer possible, and the rate of the galvanizing reaction increases strongly compared to the Sebisty range.

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