Detailed Project Report on Zinc EDTA (12%) (Cap:1 Ton/Day)

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ZINC EDTA (12%) (CAP: 1 MT/DAY)
[EIRI/EDPR/1603] J.C.: 402, 575, 2122
INTRODUCTION
Zinc EDTA is a derivative of Ethylene diamine Tetra acetic Acid.
Ethylene diamine Tetra acetic Acid is a Sequestering/Chelating Agent. EDTA is a synthetic amino acid. It is widely known as EDTA. It is a white powder. EDTA Acid is insoluble in water. It is also named as Ethylene diamine Tetra acetate. It is widely used to dissolve Metallic Impurities. There are various Salts/Derivatives of EDTA.
EDTA is widely recognized as effective Sequestering Agent. EDTA grabs metallic cation such as Lead or Calcium from the process and forms a stable compound that is then excreted from the system. The stability of this bond is vital to get the success in removing the inorganic impurities out of the system. If the bond is weak, other chemicals can break this bond to form their own compounds.
Chelation is a special type of reaction in which a metal atom reacts with compound containing donor atoms (Chelating agents) to form a complex compound. The type of bond in between the donor atom and the acceptor atom (metal) is coordination bond. The complex formed by such a bond is highly stable over a wide temperature range but are attacked by strong oxidizing agents.
The word chelate is derived from the Greek word `Chele' which means `claus'. Thus the word is descriptive of the very tight bond formed between the chelating agent and the metalion. In a chelation complex or simply, chelate, because donor atoms are connected intermolecularly by chains of other atoms, a chelate ring is formed for each donor atom after the first which coordinates with the metal. The chelating agent is also called ligand.
Chelates and chelation reactions are abundant in nature and hundreds of technological applications are practiced. The technological importance of chelation derives from the almost universal presence of metal ions of one kind or another. They are present either naturally and often in spite of efforts to eliminate them, or by intentional addition. Chelating agents provide a means of manipulating and controlling metal ions by forming complexes that usually have properties that are markedly different from those of either the original ions or the chelants. These properties may serve to reduce undesirable effects of metal ions as in sequestration, or to create desirable effects as in metal buffering and solubalization.
Because of their length and complexity, sistermatic names of chelates are little used except for special purposes. Chelates are named in the literature in a variety of other ways, but in context, little or no difficulty in communication is encountered. Chelates are often named merely as a complex. A common practice in the literature is to give the symbol of the central atom and an abbreviation for the ligand with or without an indication of ionic charges, oxidation states structure, or counterions as in the following: Pb-EDTA, Cacit, Cu(en)2, Co(II)-(Phen and Na [Co(caca)3]. The complex form of zinc with EDTA is named as chelated zinc or Zn-EDTA.
Due to the special properties such as colour, catalytic effect and solubility properties of chelates, the chelation reaction is very important in a number of fields such as industrial, agriculture and biological fields.
One of the most powerful nutrient elements, Chelated Zinc 12% with Ethylene Diamine Acetic Acid (EDTA) ensures optimal utilization of Zinc for better growth and sustainable higher productivity of agricultural and plantation crops in a ay no comparable product does. EDTA based Chelated Zinc containing 12% Zinc is so integrated in the purest form as to provide the plants not only physiological stimuli to overcome environmental stresses, but also activates relevant enzymes to produce more of the harvestable units per area in per unit of time.
COST ESTIMATION
Plant Capacity 1 MT/Day
Land & Building (800 sq.mt.) Rs. 1.44 Cr
Plant & Machinery Rs. 53.00 Lac
Working Capital for 1 Months Rs. 53.51 Lac
Total Capital Investment Rs. 2.64 Cr
Rate of Return 21%
Break Even Point 64%
CONTENTS
INTRODUCTION
PROPERTIES
USES AND APPLICATIONS
ROLE OF ZINC IN PLANT GROWTH:
THE MAIN FIELDS OF APPLICATION OF CHELATION REACTION ARE:
CHELATED ZNC 12% AND ITS APPLICATION AND COMPOSITION
CHELATED ZINC 12%
METHOD OF APPLICATION OF CHELATED ZINC 12%
COMPOSITION OF CHELATED ZINC 12%
MOST IMPORTANT ASPECT OF CHELATED ZINC 12%
ADVANTAGE OF CHELATED ZINC 12%
CHELATE AND ITS ACTIVITIES
SYMPTONS ON ZINC DEFICIENCY
MARKET POSITION
PRESENT MANUFACTURERS OF ZN EDTA
FACTORS AFFECTING STABILITY OF THE CHELATED COMPOUND
PH EFFECTS
METAL BUFFERING
ACCORDING TO EQUATION
SOLUBILIZATION
ZINC DEFICIENCY AND ITS FUNCTION
FUNCTIONS OF ZINC IN PLANTS
ZINC DEFICIENCY AND TOXICITY
ZINC IN SOILS
AVAILABLE ZINC
FACTOR AFFECTING AVAILABILITY AND MOVEMENT OF ZINC
INTERACTIONS WITH OTHER ELEMENTS
ZINC INTERACTION WITH OTHER NUTRIENTS
ZINC INTERACTION WITH OTHER TRACE ELEMENTS
ZINC FERTILIZER AND CORRECTION OF DEFICIENCIES
EVALUATION OF ZINC AVAILABILITY TO PLANTS
SOIL TEST AND PLANT ANALYSIS
CORRECTION OF DEFICIENCIES
ZINC FERTILIZERS
GEOGRAPHIC DISTRIBUTION OF ZN DEFICIENCY
RAW MATERIAL
THE STRUCTURE OF EDTA [(CH2COOH)2 NCH2CH2N(CH2COOH)2] IS AS FOLLOWS
THE DONOR ATOMS OF EDTA ARE N AND O
ZINC HYDROXIDE (ZN(OH)2)
CALCULATIONS OF RAW MATERIALS REQUIRED
THE EQUATION OF THE REACTION IS AS FOLLOWS
(HOOCH2C)2 NCH2 CH2N(CH2COOH)2 + ZN(OH)2
FOR 1.5 TON/DAY
THEREFORE, RAW MATERIALS REQUIRED/MONTHS ARE
MANUFACTURING PROCESS
PROCESS
SEPARATION METHODS
DRYING
PROCESS FLOW CHART OF CHELATED ZINC SOLUTION
PROCESS FLOW CHART FOR THE FORMATION OF CHELATED ZINC
PRODUCTION PROCESS OF METAL CHELETES
PRINCIPLES OF PLANT LAYOUT
MAJOR PROVISIONS IN ROAD PLANNING FOR MULTIPURPOSE SERVICE ARE:
PLANT LOCATION FACTORS
PRIMARY FACTORS
1. RAW-MATERIAL SUPPLY:
2. MARKETS:
3. POWER AND FUEL SUPPLY:
4. WATER SUPPLY:
5. CLIMATE:
6. TRANSPORTATION:
7. WASTE DISPOSAL:
8. LABOR:
9. REGULATORY LAWS:
10. TAXES:
11. SITE CHARACTERISTICS:
12. COMMUNITY FACTORS:
13. VULNERABILITY TO WARTIME ATTACK:
14. FLOOD AND FIRE CONTROL:
EXPLANATION OF TERMS USED IN THE PROJECT REPORT
1. DEPRECIATION:
2. FIXED ASSETS:
3. WORKING CAPITAL:
4. BREAK-EVEN POINT:
5. OTHER FIXED EXPENSES:
6. MARGIN MONEY:
7. TOTAL LOAD:
8. LAND AREA/MAN POWER RATIO:
PROJECT IMPLEMENTATION SCHEDULES
INTRODUCTION
PROJECT HANDLING
PROJECT SCHEDULING
PROJECT CONSTRUCTION SCHEDULE
TIME SCHEDULE
PLANT LAYOUT
SUPPLIERS OF RAW MATERIALS
SUPPLIERS OF EDTA (ETHYLENE DIAMINE TETRA ACETIC ACID)
SUPPLIERS OF ZINC HYDROXIDE
SUPPLIERS OF SOLVENT (ACETONE)
SUPPLIERS OF LABORATORY CHEMICALS & MISC CONSUMABLES
SUPPLIERS OF PACKAGING MATERIALS
SUPPLIERS OF PLANT AND MACHINERIES
SUPPLIERS OF REACTOR
SUPPLIERS OF FILTER PRESS
SUPPLIERS OF LABORATORY TESTING EQUIPMENTS
SUPPLIERS OF AUTOMATIC PACKAGING MACHINES
SUPPLIERS OF STORAGE TANK
SUPPLIERS OF CENTRIFUGE
SUPPLIERS OF ROTARY DRUM DRYER
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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