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    Ductile Iron Pipe (DI Pipe) (Production Rate – 50,000 TPA)

    Ductile Iron Pipe (DI Pipe) (Production Rate – 50,000 TPA)
    Ductile Iron Pipe (DI Pipe) (Production Rate – 50,000 TPA)
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      DUCTILE IRON PIPE (DI PIPE) (PRODUCTION RATE – 50,000 TPA)

      [EIRI/EDPR/4726] J.C.: 2946XL

      Ductile iron is a family of cast graphitic irons which possess high strength, ductility and resistance to shock. Annealed cast ductile iron can be bent, twisted or deformed without fracturing. Its strength, toughness and ductility duplicate many grades of steel and far exceed those of standard gray irons. Yet it possesses the advantages of design flexibility and low-cost casting procedures similar to gray iron. The difference between ductile iron and gray iron is in the graphite formation. Ordinary gray iron is characterized by a random flake graphite pattern in the metal. In ductile iron the addition of a few hundredths of 1 % of magnesium or cerium causes the graphite to form in small spheroids rather than flakes. These create fewer discontinuities in the structure of the metal and produce a stronger, more ductile iron. This nodular graphite structure inhibits the creation of linear cracks hence the ability to withstand distortion. 

      With ductile iron, the safety and reliability of process equipment is improved. The improved mechanical properties increase its resistance to breakage from physical load, or mechanical and thermal shock far above that of gray iron. The corrosion resistance of ductile iron is equal or superior to gray cast iron and to cast steel in many corrosives. Its wear resistance is comparable to some of the best grades of steel and superior to gray iron in heavy load or impact load situations. Since it can be cast with the same low-cost procedures used for gray cast iron, it is considerably less expensive than cast steel and only moderately more expensive than gray iron. The substantial advantages obtained from its high yield strength and ductility make it an economical choice for many applications.


      COST ESTIMATION

      Plant Capacity            167 MT/Day

      Land & Building (13505 sq.mt.)    Rs. 16.88 Cr

      Plant & Machinery                    Rs. 110.63 Cr

      Working Capital for 1 Month    Rs. 20.22 Cr

      Total Capital Investment          Rs. 153.52 Cr

      Rate of Return                          41%

      Break Even Point                      54%


      CONTENTS

      INTRODUCTION

      TYPICAL MICRO STRUCTURE OF DUCTILE IRON

      WHILE THERE ARE MANY DIFFERENT DUCTILE IRON SPECIFICATIONS, FOUNDRIES ROUTINELY OFFER 3 COMMON GRADES;

      PROPERTIES

      PROPERTIES OF DUCTILE IRON PIPE

      RANGES & DIMENSIONS

      RANGES

      DIMENSION OF PIPES THICKNESS OF DUCTILE IRON PIPES

      BENEFITS

      CHARACTERISTICS

      THE FOLLOWING ARE THE TYPES OF JOINTS USUALLY USED FOR 

      DUCTILE IRON PIPES

      THERE ARE MAINLY THREE SECTIONS OF DUCTILE IRON PIPE:

      SOCKET

      BARREL

      SPIGOT

      ADVANTAGES/DISADVANTAGES

      ADVANTAGES

      DISADVANTAGES

      USES/APPLICATIONS

      BIS SPECIFICATION

      MARKET OVERVIEW

      INDIA DUCTILE IRON PIPES MARKET TRENDS

      DUCTILE IRON PIPES MARKET DYNAMICS:

      DUCTILE IRON PIPES MARKET REGIONAL INSIGHTS:

      DUCTILE IRON PIPES MARKET KEY PLAYERS

      MANUFACTURERS/SUPPLIERS

      RAW MATERIALS SUPPLIERS

      PIG IRON

      CAST IRON SCRAP

      STEEL SCRAP

      SILICON CARBIDE

      FERRO SILICON

      MAGNESIUM INGOT

      FERRO MANGANESE

      FIRE CLAY

      BENTONITE

      COAL DUST

      GRAPHITE POWDER

      SILICA SAND

      LIME STONE

      MANUFACTURING PROCESS STEPS

      RAW MATERIAL SELECTION

      DESULPHURISATION

      MELTING AND COMPOSITION CONTROL

      MAGNESIUM TREATMENT

      NODULISING

      INOCULATION

      EFFECT OF INOCULATION

      MOULD CONDITIONING

      CORE MAKING

      CASTING

      CENTRIFUGAL CASTING

      ESSENTIALLY, TWO WORKING METHODS ARE USED:

      DE LAVAUD PROCESS

      WET-SPRAY PROCESS

      INTERNAL GRINDING

      HEAT TREATMENT

      ZINC COATING

      CUT OFF AND CHAMFERING MACHINE

      HYDROSTATIC PRESSURE TESTING

      CEMENT MORTAR FEEDING AND LINING

      STEAM CURING

      INTERNAL POLISHING

      BITUMEN COATING

      QUALITY CONTROL

      MARKING AND STENCILING

      STORAGE, PACKING AND DISPATCH

      PROCESS FLOW

      INDUCTION FURNACE & OPERATIONAL ASPECTS

      RAW MATERIALS AND ENERGY SOURCE

      IMPORTANT ASPECTS OF OPERATION

      OTHER ASPECTS OF INDUCTION FURNACE STEEL MAKING

      ENVIRONMENTAL EMISSIONS

      SAFETY & INDUCTION FURNACE

      REASONS OF MOST ACCIDENTS IN THE MELT SHOPS WITH INDUCTION FURNACES ARE

      ENGINEERING DESIGN CONSIDERATIONS

      ETP FACILITY

      ETP FLOW DIAGRAM (TYPICAL)

      SEWAGE AND WASTE WATER EFFLUENT

      STP FLOW DIAGRAM (TYPICAL)

      WASTE GENERATION & MANAGEMENT/GREEN BELT

      GREEN BELT

      UTILITY REQUIREMENT (ESTIMATED) - MONTH

      PLANT & MACHINERY SUPPLIERS

      ANNEALING FURNACE

      HEATREATMENT FURNACE

      INDUCTION FURNACE

      SAND MIXTURE AND MULLER

      SAND SIEVING MACHINE

      SQUEEZE MOLDING MACHINE

      SHAKEOUT MACHINE

      CORE SHOOTER MACHINE

      DRYING OVEN

      MOLDING BOXES

      METAL TESTING MACHINE

      PRECISION MEASURING TOOLS

      PRECISION MEASURING TOOLS

      NDT INSPECTION EQUIPMENT

      DRILLING, LATHE, TAPING MACHINES

      GRINDING MACHINE

      EOT CRANE

      POWER TRANSFORMERS

      ELECTRICAL PANEL

      ELECTRIC MOTOR

      EFFULENT TREATMENT PLANT (ETP PLANT)

      AIR POLLUTION CONTROL EQUIPMENTS

      AIR CONDITIONING EQUIPMENTS

      AIR COMPRESSORS

      PLATFORM WEIGHING MACHINE

      MATERIAL HANDLING EQUIPMENTS

      FIRE FIGHTING EQUIPMENTS

      SHOT BLASTING MACHINE

      JIGS AND FIXTURE

      PRELIMINARY LAYOUT

      PRINCIPLES OF PLANT LAYOUT

      MAJOR PROVISIONS IN ROAD PLANNING FOR MULTIPURPOSE SERVICE ARE:

      PLANT LOCATION FACTORS

      PRIMARY FACTORS

      RAW-MATERIAL SUPPLY:

      MARKETS:

      POWER AND FUEL SUPPLY:

      WATER SUPPLY:

      CLIMATE:

      TRANSPORTATION:

      WASTE DISPOSAL:

      LABOR:

      REGULATORY LAWS:

      TAXES:

      SITE CHARACTERISTICS:

      COMMUNITY FACTORS:

      FLOOD AND FIRE CONTROL:

      ANTICIPATED ENVIRONMENTAL IMPACTS

      CONSTRUCTION PHASE

      OPERATION PHASE

      MITIGATION MEASURES (PROPOSED)

      HEALTH SAFETY & ENVIRONMENT

      PROPOSED IMPLEMENTATION SCHEDULE

      PROJECT FINANCIALS

      BASIS & PRESUMPTIONS (FOR PROFITABILITY WORKINGS)

      CONCLUSIONS


      APPENDIX – A:

      01. PLANT ECONOMICS

      02. LAND & BUILDING

      03. PLANT AND MACHINERY

      04. OTHER FIXED ASSESTS

      05. FIXED CAPITAL

      06. RAW MATERIAL

      07. SALARY AND WAGES

      08. UTILITIES AND OVERHEADS

      09. TOTAL WORKING CAPITAL

      10. TOTAL CAPITAL INVESTMENT

      11. COST OF PRODUCTION

      12. TURN OVER/ANNUM

      13. BREAK EVEN POINT

      14. RESOURCES FOR FINANCE

      15. INSTALMENT PAYABLE IN 5 YEARS

      16. DEPRECIATION CHART FOR 5 YEARS

      17. PROFIT ANALYSIS FOR 5 YEARS

      18. PROJECTED BALANCE SHEET FOR (5 YEARS)

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