<?xml version="1.0" encoding="UTF-8"?><rss version="2.0"
	xmlns:content="http://purl.org/rss/1.0/modules/content/"
	xmlns:wfw="http://wellformedweb.org/CommentAPI/"
	xmlns:dc="http://purl.org/dc/elements/1.1/"
	xmlns:atom="http://www.w3.org/2005/Atom"
	xmlns:sy="http://purl.org/rss/1.0/modules/syndication/"
	xmlns:slash="http://purl.org/rss/1.0/modules/slash/"
	>

<channel>
	<title>Products From Waste &#8211; EIRI &#8211; eBooks and Project Reports</title>
	<atom:link href="https://projectreports.eiriindia.org/product-category/ebooks/products-from-waste-ebooks/feed/" rel="self" type="application/rss+xml" />
	<link>https://projectreports.eiriindia.org</link>
	<description>We Create Industrialist</description>
	<lastBuildDate>Sat, 26 Oct 2019 17:52:42 +0000</lastBuildDate>
	<language>en-US</language>
	<sy:updatePeriod>
	hourly	</sy:updatePeriod>
	<sy:updateFrequency>
	1	</sy:updateFrequency>
	<generator>https://wordpress.org/?v=6.8.3</generator>

<image>
	<url>https://projectreports.eiriindia.org/wp-content/uploads/2018/12/cropped-logo-1-32x32.jpg</url>
	<title>Products From Waste &#8211; EIRI &#8211; eBooks and Project Reports</title>
	<link>https://projectreports.eiriindia.org</link>
	<width>32</width>
	<height>32</height>
</image> 
	<item>
		<title>Products from Waste Technology Handbook</title>
		<link>https://projectreports.eiriindia.org/product/products-waste-technology-handbook/</link>
		
		<dc:creator><![CDATA[EIRI Team]]></dc:creator>
		<pubDate>Sat, 22 Feb 2014 12:50:50 +0000</pubDate>
				<guid isPermaLink="false">http://projectreports.eiriindia.org/?post_type=product&#038;p=1323</guid>

					<description><![CDATA[<p>Acrylic Sheets,  Activated Carbon from Saw Dust, Rice Husk and Coconut Shell, Activated Carbon from Wood, Biocoal Briquettes From Agricultural Cellulosic Waste, Biofertilisers from Cowdung and Other Wastes, Caffeine from Tea Waste, Coal/Fuel Briquettes From Agro Waste, (Bagasse, Coffee &#38; Rice Husk Etc.), Furfural, Gobar Gas Plant, Hand Made Paper, Hard Board from Rice Husk, Kraft Paper from Waste Carton Boxes, Kraft Paper from Waste Paper, Ossein and Gelatin, Oxalic Acid from Rice Husk, Paper Waste Recycling Plant (Paper Mill), Paraffin Wax from Slack Wax, Particle Board From Rice Husk, Pectin from Mango Peels, Plastic Granules, Polyester Yarn from Waste, Reclamation of Nickel from Spent Catalyst of Vanaspati Industries, Reclamation of Used Engine Oil, Recovery of Lead from Disposed Lead Acid, Recovery of Silver Nitrate from Photographic, Waste Fixer, Rubber Goods From Waste Rubber, Rubber Powder, Rubber Reclaiming, Secondary Lead Extraction From Scrap, Battery Plates, Pipes, Sheets, Silicon from Rice Husk, Silver Extraction from Waste Hypo Solution X-Ray Film and Cinema Film, Toluene and SBP from Crude Naphtha, Tread Rubber Used for Cold Process, Vermi-Composting, Vodka from Waste Grains, Zinc and Copper Sulphate from Brass Ash, E-Waste</p>
<p>The post <a rel="nofollow" href="https://projectreports.eiriindia.org/product/products-waste-technology-handbook/">Products from Waste Technology Handbook</a> appeared first on <a rel="nofollow" href="https://projectreports.eiriindia.org">EIRI - eBooks and Project Reports</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>1. Acrylic Sheets<br />
2. Activated Carbon from Saw Dust, Rice Husk and<br />
Coconut Shell<br />
3. Activated Carbon from Wood<br />
4. Biocoal Briquettes From Agricultural Cellulosic Waste<br />
5. Biofertilisers from Cowdung and Other Wastes<br />
6. Caffeine from Tea Waste<br />
7. Coal/Fuel Briquettes From Agro Waste<br />
(Bagasse, Coffee &amp; Rice Husk Etc.)<br />
8. Furfural<br />
9. Gobar Gas Plant<br />
10. Hand Made Paper<br />
11. Hard Board from Rice Husk<br />
12. Kraft Paper from Waste Carton Boxes<br />
13. Kraft Paper from Waste Paper<br />
14. Ossein and Gelatin<br />
15. Oxalic Acid from Rice Husk<br />
16. Paper Waste Recycling Plant (Paper Mill)<br />
17. Paraffin Wax from Slack Wax<br />
18. Particle Board From Rice Husk<br />
19. Pectin from Mango Peels<br />
20. Plastic Granules<br />
21. Polyester Yarn from Waste<br />
22. Reclamation of Nickel from Spent Catalyst<br />
of Vanaspati Industries<br />
23. Reclamation of Used Engine Oil<br />
24. Recovery of Lead from Disposed Lead Acid<br />
25. Recovery of Silver Nitrate from Photographic<br />
Waste Fixer<br />
26. Rubber Goods From Waste Rubber<br />
27. Rubber Powder<br />
28. Rubber Reclaiming<br />
29. Secondary Lead Extraction From Scrap,<br />
Battery Plates, Pipes, Sheets<br />
30. Silicon from Rice Husk<br />
31. Silver Extraction from Waste Hypo<br />
Solution X-Ray Film and Cinema Film<br />
32. Toluene and SBP from Crude Naphtha<br />
33. Tread Rubber Used for Cold Process<br />
34. Vermi-Composting<br />
35. Vodka from Waste Grains<br />
36. Zinc and Copper Sulphate from Brass Ash<br />
37. E-Waste</p>
<p>The post <a rel="nofollow" href="https://projectreports.eiriindia.org/product/products-waste-technology-handbook/">Products from Waste Technology Handbook</a> appeared first on <a rel="nofollow" href="https://projectreports.eiriindia.org">EIRI - eBooks and Project Reports</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>PLASTIC WASTE RECYCLING TECHNOLOGY</title>
		<link>https://projectreports.eiriindia.org/product/plastic-waste-recycling-technology/</link>
		
		<dc:creator><![CDATA[EIRI Team]]></dc:creator>
		<pubDate>Thu, 20 Feb 2014 06:50:28 +0000</pubDate>
				<guid isPermaLink="false">http://projectreports.eiriindia.org/?post_type=product&#038;p=1290</guid>

					<description><![CDATA[<p>The book covers Introduction, Details of Polymers ,  Types of  Plastics, Identification  of Plastics, Recycling of Plastic Waste, Recycling of Thermosets, Chemical  Recycling, Recycling Commodities Plastics, Recovery of Chemicals from Plastic Waste,  Factors Affecting  Recycling Process, Automatic Scrap Recycling, Reclaiming Polyamide Spin Fibres, EPS-Recycling from Post-Consumer Expanded Polystyrene, New Patented Processes, Environmental Health and Future Prospects, Recycling Polyester  Resins, Polyurethane Waste Recycling,  Recycling and Government Policies, Identification of Plastics,  Plastics and the Environment,  Recycling An Industrial Approach, Get Virgin Quality from Reprocessed, Plastic Granules  from Fresh Resin , Plastic Granules, Pet Bottle Recycling, Recycling of PVC, Recycling Techniques The Next Generation,  Quality Control Tests, Plant Economics of  Phenol Formaldehyde Resin, Plant Economics of  Poly Amide Resin, Plant Economics of Polyester Resins,  Plant Economics of Polycarbonate Resin (All Fig. in Lacs), Plant Economics of urea Formaldehyde Resin, Plant Economics  of  Acrylic Copolymer Emulsion.</p>
<p>The post <a rel="nofollow" href="https://projectreports.eiriindia.org/product/plastic-waste-recycling-technology/">PLASTIC WASTE RECYCLING TECHNOLOGY</a> appeared first on <a rel="nofollow" href="https://projectreports.eiriindia.org">EIRI - eBooks and Project Reports</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p align="justify"><strong>PLASTIC WASTE RECYCLING TECHNOLOGY<br />
</strong></p>
<p><strong>INTRODUCTION</strong></p>
<p>DETAILS OF POLYMERS</p>
<p>Types of Polymers<br />
Thermoplastics and Thermosets<br />
Polymer Structure<br />
Homopolymers and Copolymers<br />
Polymer Families<br />
Polymer Blends<br />
Additives<br />
Conversion<br />
Engineering Thermoplastics<br />
Addition and Condensation Polymerization<br />
Aliphatic and Aromatic Polymers<br />
Morphology and Properties<br />
Copolymerization<br />
Additives<br />
Classification of Plastics<br />
Definition<br />
Plastics Classification<br />
Thermoplastics<br />
Thermosettings</p>
<p><strong>TYPES OF PLASTICS</strong></p>
<p>IDENTIFICATION OF PLASTICS</p>
<p>Misecelianeous Observations<br />
Burning  Test<br />
Density Determination<br />
Heating Test<br />
Identification of Plastic Materials<br />
Thermoplastics<br />
ABS<br />
Acetal<br />
Acrylic<br />
Cellulose Acetate<br />
Cellulose Acetate Butyrate<br />
Cellulose Propionate<br />
Fluorocarbons<br />
Nylons<br />
Polycarbonate<br />
Polyethylene<br />
Polyphenylene Oxide (PPO)<br />
Polypropolene<br />
Polystyrene<br />
Polysulfone<br />
Polyurethane (Thermoplastics)<br />
PVC<br />
Thermoplastics<br />
Thermosetting Plastics<br />
Diallyl Phthalate (DAP)<br />
Epoxy<br />
Melamine formaldehyde<br />
Phenol Formaldehyde<br />
Polyesters<br />
Silicones<br />
Urea Formaldehyde</p>
<p><strong>RECYCLING OF PLASTIC WASTE </strong></p>
<p>Conventional Methods<br />
Current Trends<br />
Mechanical Recycling<br />
Mixed Plastic Waste<br />
Feedstock Recycling<br />
Hydrogenation<br />
Synthetic Gas Production<br />
Pyrolysis<br />
Solvolysis<br />
Energy Recovery<br />
A Commonly Used Process for Films  waste<br />
The  Commitment<br />
Optimixing Recycling<br />
Source of Plastic Waste<br />
New Trends<br />
Future</p>
<p><strong>RECYCLING OF THERMOSETS<br />
</strong></p>
<p><strong>CHEMICAL RECYCLING</strong></p>
<p>Cryogenic Recycling of Bottles<br />
Recycling of Synthetic<br />
Carpet Waste<br />
Low  cost Recycle Sorting<br />
Plastics into Fuel Oil<br />
Mobile System of Recycling<br />
Recycled Engineering Elastomers</p>
<p><strong>RECYCLING COMMODITIES PLASTICS</strong></p>
<p>Polylelins<br />
Polystyrene<br />
Polyvinyl Chloride PVC</p>
<p><strong>RECOVERY OF CHEMICALS FROM PLASTIC WASTE </strong></p>
<p>Plastic Degradation<br />
Modes of Polymer Degradation<br />
Thermal Degradation<br />
Mechanical Degradation<br />
Photo Degradation<br />
Bio Degradation<br />
Chemical Degradation<br />
Solvolysis<br />
Results and Discussions<br />
ICI, Mitsubishi Rayon Link for Acrylic  Recycling Techniques</p>
<p><strong>FACTORS AFFECTING RECYCLING PROCESS</strong></p>
<p>Pre-Conditions for high value added plastics/recycling<br />
Achievable quality sources of the waste and possibilities to improve the properties<br />
Additives and how they improve processing or quality</p>
<p><strong>AUTOMATIC SCRAP RECYCLING<br />
</strong><br />
Film Extrusion<br />
Sheet Extrusion<br />
Injection Moulding<br />
Blow Moulding<br />
Vacuum Forming<br />
Economics</p>
<p><strong>RECLAIMING POLYAMIDE  SPIN FIBRES<br />
</strong><br />
Methods of processing PA-spin fibre waste into  high quality compounds<br />
Extrusion line for compounding of PA-Spin fibre  waste  to engineering plastic compounds<br />
Performance capabilities of the TSK-N 60 Compounding  line</p>
<p><strong>EPS RECYCLING  FROM POST CONSUMER EXPANDED POLYSTYRENE<br />
</strong><br />
Figure and facts<br />
An Economical way of recycling gives EPS waste a new life<br />
Advantages of this technology<br />
Description of the process  and equipment<br />
Advantages of a co-rotating twin screw extruder in this terminology<br />
General information about the TSK Twin Screw  Extruder Series<br />
Thermoset/Chemical processing machines</p>
<p><strong>NEW PATENTED  PROCESSES </strong></p>
<p>Cryogenic Recycling Technology<br />
Reclaiming Vinyl fabric<br />
New Ideas for efficiency in film Recycling<br />
New innovations  by Sorema<br />
Another Method for Reprocessing<br />
Most used scrap emanating<br />
Patented Process for Recycling Expanded Polystyrene<br />
One Pass Extruder for Reclaiming Film Scrap<br />
Recycling Polymer Alloys<br />
New Technology Eliminates Paint Stripping<br />
Technology from Alida Recycling Ltd. to Reclaim Polyethene Films Label P.V.C. Adhesive  etc. All<br />
get separated<br />
Recycling mixed waste</p>
<p><strong>ENVIRONMENTAL HEALTH AND FUTURE  PROSPECTS </strong></p>
<p>Environmental Health and Future Prospects<br />
Hazardous Effects of Plastics<br />
Polluting  Substance<br />
Air Pollution<br />
Safety Pollution<br />
Safety Measures<br />
Product Safety<br />
Future Prospects<br />
Improving working  conditions and the environment<br />
Technology transfer and development</p>
<p><strong>RECYCLING POLYESTER RESINS </strong></p>
<p>PET and APET<br />
RPET<br />
PETG<br />
CPET<br />
Direct Method<br />
Remelting<br />
Chemical Reduction<br />
Process  Route  of Michigan Technology University</p>
<p><strong>POLYURETHANE  WASTE RECYCLING</strong></p>
<p>RECYCLING AND  GOVERNMENT POLICIES</p>
<p>Regional Co-Operation<br />
Practices abroad -Japan<br />
China<br />
Malaysia</p>
<p><strong>INDENTIFICATION OF PLASTICS<br />
</strong><br />
Separation of Laminates<br />
Tests for Physical Properties<br />
Burning Tests<br />
Simplest test for cellulose<br />
Griess Test for Nitrogen<br />
Prepare  Griess Reagent<br />
Lie Burmann-s Torch Morawkli Test<br />
Burning Tests for Plastic Identification<br />
Polyester (Alkyds)<br />
Silicones<br />
Acrylics<br />
Cellulose Acelate<br />
CAB<br />
Cellulose Propionate<br />
Cellulose Nitrate<br />
Ethyl Cellulose<br />
Polystyrene<br />
Styrene Acronitrite (SAN)<br />
ABS<br />
PVC<br />
PVA<br />
Polyvinylidene Chloride<br />
Polypropylene<br />
Polycarbonate<br />
Nylon<br />
Acetals<br />
Teflon<br />
Poly Phenylene Oxide<br />
Poly Phenylene Oxide<br />
Poly Sulphone<br />
Fibre Glass and Asbestos filter<br />
Solvent Required for Polymer Identification</p>
<p><strong>PLASTICS AND THE ENVIRONMENT<br />
</strong><br />
American Scenario<br />
Plastics Waste Solutions<br />
Source Reduction<br />
Recycling<br />
Waste to Energy<br />
Fuel Value<br />
Landfills<br />
Conclusion<br />
Biodegradable Plastics<br />
Mechanism of biogradation<br />
Problem encountered<br />
Application</p>
<p><strong>RECYCLING AN INDUSTRIAL APPROACH</strong></p>
<p>Recycling Routes<br />
Physical Recycling<br />
Physical recycling sorting Techniques<br />
Sink Folat Technique<br />
Electrostatic Separation Process (ESTA)<br />
Centrifugal System<br />
Froth Floatation Technique<br />
Recycling Process Machinery<br />
Physical Recycling<br />
Indian Scenario<br />
Physical Recycling Techniques Polyethylene Terephthalate (PET)<br />
Polyolefins (PE and PP)<br />
Polyvinyl Chloride (PVC)<br />
Polystyrene (PS)<br />
Industrial and Engneering Plastics<br />
Chemical Recycling<br />
Incineration<br />
Potential Recycted Plastics Products<br />
Indian Recycling the present status</p>
<p><strong>GET VIRGIN QUALITY FROM REPROCESSED<br />
</strong></p>
<p>The World of SB J-Von<br />
Range of TPR Compounds Currently manufactured include<br />
Why TPR<br />
Products to match<br />
Reprocessed Quality with Virgin<br />
The Product<br />
Areas of Application<br />
Advantages<br />
This product has proven its effectiveness in moulded articles like<br />
Test Results<br />
The Product<br />
Physical Properties<br />
The Product<br />
Physical Properties</p>
<p><strong>PLASTIC GRANULES FROM FRESH RESIN<br />
</strong></p>
<p>Manufacturing Process of LDPE Granules from LOPE Resin<br />
Plastic filter Granules (PP)<br />
PVC Granules<br />
Process of Manufacture<br />
Plant Economics<br />
Land and Building<br />
Plant and Machinery<br />
Fixed Capital<br />
Raw Materials<br />
Raw Materials<br />
Total Working Capital/Month<br />
Total Capital Investment<br />
Turn Over /Annum<br />
Profit Sales Ratio<br />
Rate of Return<br />
Break Even Point</p>
<p><strong>PLASTIC GRANULES</strong></p>
<p>Process of Manufacture<br />
Concentration of Blending<br />
Removal of Colour to obtain Transparent Granules by Activated Carbon Treatment<br />
Filteration<br />
Distillation<br />
Cooling and Dehumidifying<br />
Granulation<br />
Weighing, filling and Packing<br />
Plant Economics<br />
Land and Building<br />
Plant and Machinery<br />
Fixed Capital<br />
Raw Materials<br />
Total working capital/Month<br />
Total Capital Investment<br />
Turn Over/Annum<br />
Profit Sales Ratio<br />
Rate of Return<br />
Break Even Point</p>
<p><strong>PET BOTTLE RECYCLING</strong></p>
<p><strong>RECYCLING  OF PVC </strong></p>
<p>Coding and Aid to Separation<br />
Recycling of Short Life PVC Products<br />
Bottles<br />
Separation of Hydrocyclones<br />
New Products from Recycled PVC Bottles<br />
Prospects for Chemical Recycling of PVC<br />
Recyclable Vinyl<br />
PVC Bottes, Jars  and Containers<br />
Design Consideration<br />
Physical Properties<br />
Marketing Consideration<br />
Sales and Recyclable<br />
Lower Mold Costs</p>
<p><strong>RECYCLING TECHNIQUES THE NEXT GENERATION<br />
</strong><br />
What is resource Conseration?<br />
Why are plastics used?<br />
Importance  of Plastics recycling and waste management for a cleaner  environment<br />
MSW ( Municipal Solid Waste) Analysis<br />
IDPW (Industrial Packaging Waste) Analysis<br />
What does plastic  recycling involve ?<br />
Plastic waste recycling  processes<br />
Challenges in plastic waste recycling<br />
Think Quality A key to success in plastic recycling shredders<br />
Use  of a shredder in the Plastic Industry<br />
Plastic  drums and cans<br />
Lumps, purging and sprues<br />
Thermoforming and injection scraps<br />
Out concern for the environment<br />
Characteristics of a typical plastic reprocessing line<br />
Extruder<br />
Forced Feed<br />
The screen changer<br />
Die face cutter<br />
Conversation of mixed plastics<br />
Stop Press-A new invention<br />
Dissolving for recycle<br />
Conclusion</p>
<p><strong>QUALITY CONTROL TESTS<br />
</strong><br />
Suggested Equipment for Tests in Quality Control Laboratory<br />
Testing<br />
Anticipating problems<br />
Integrating disciplines<br />
Data disparities<br />
Tapping resources<br />
Automaed Stations<br />
Plastic Performance Tests<br />
Tensile Strength<br />
Deflection Temperature<br />
Unde Load<br />
Melt Flow Rate<br />
Flexural  Properties<br />
Optical Properties<br />
Glass<br />
Haze<br />
Impact Strength<br />
Izod<br />
Charpy<br />
Charpy<br />
Tensite Impact<br />
Falling Dart<br />
Instrumental Impact</p>
<p><strong>PLANT ECONOMICS OF  PHENOL FORMALDEHYDE RESIN</strong><br />
Rated Plant Capacity<br />
Land and Building<br />
Plant and Machinery<br />
Fixed Capital<br />
Total Working Capital/Month<br />
Total Capital Investment<br />
Turn over/Annum<br />
Profit Sales Ratio<br />
Rate of Return<br />
Break Even Point</p>
<p><strong>PLANT ECONOMICS OF POLY AMIDE RESIN<br />
</strong></p>
<p>Rated Plant Capacity<br />
Land and Building<br />
Plant and Machinery<br />
Fixed Capital<br />
Total Working Capital/Month<br />
Total Capital Investment<br />
Turn over/Annum<br />
Profit Sales Ratio<br />
Rate of Return<br />
Break Even Point</p>
<p><strong>PLANT ECONOMICS  OF POLYESTER RESINS<br />
</strong><br />
Rated Plant Capacity<br />
Land and Building<br />
Plant and Machinery<br />
Fixed Capital<br />
Total Working Capital/Month<br />
Total Capital Investment<br />
Turn over/Annum<br />
Profit Sales Ratio<br />
Rate of Return<br />
Break Even Point</p>
<p><strong>PLANT ECONOMICS OF POLYCARBONATE RESIN<br />
</strong><br />
Rated Plant Capacity<br />
Land and Building<br />
Plant and Machinery<br />
Fixed Capital<br />
Total Working Capital/Month<br />
Total Capital Investment<br />
Turn over/Annum<br />
Profit Sales Ratio<br />
Rate of Return<br />
Break Even Point</p>
<p><strong>PLANT ECONOMICS OF UREA FORMALDEHYDE RESIN<br />
</strong></p>
<p>Rated Plant Capacity<br />
Land and Building<br />
Plant and Machinery<br />
Fixed Capital<br />
Total Working Capital/Month<br />
Total Capital Investment<br />
Turn over/Annum<br />
Profit Sales Ratio<br />
Rate of Return<br />
Break Even Point</p>
<p><strong>PLANT ECONOMICS OF ACRYLIC COPOLYER EMULSION<br />
</strong></p>
<p>Rated Plant Capacity<br />
Land and Building<br />
Plant and Machinery<br />
Fixed Capital<br />
Total Working Capital/Month<br />
Total Capital Investment<br />
Turn over/Annum<br />
Profit Sales Ratio<br />
Rate of Return<br />
Break Even Point</p>
<p><strong>Engineers India Research Institute (EIRI) is a renowned name in the industrial world for offering technical</strong></p>
<p>and financial consultancy services.</p>
<p>EIRI services are:</p>
<p>Detailed Feasibility Reports<br />
New Project Identification<br />
Project Feasibility and Market Study<br />
Identification of Lucrative Industrial Project Opportunities<br />
Preparation of Project Profiles / Pre-Investment and Detailed Feasibility Studies,<br />
Market Surveys / Studies, Market Survey Cum Detailed Techno-Economic Feasibility Reports<br />
Project Reports in CD Roms<br />
Identification of Plant /Process/Machinery and Equipment, Industrial General Guidance for setting up new<br />
industrial projects.</p>
<p><strong>Our most up-to-date and Technologically Advanced Industrial Project Reports, categorized with respect to</strong></p>
<p>Financial Outlays and Sector – wise Classification are immensely useful for :</p>
<p>Existing Small or Medium Scale Industrialists facing competition from large houses<br />
Young Entrepreneurs dreaming to start their own industrial enterprise<br />
Young Graduates and Professionals wishing to begin their career<br />
Industrialists interested in Debottlenecking  their capacities &amp; New Product – Lines<br />
Large Industrial Houses pursuing  Expansion, Growth and Diversification Plans</p>
<p>The post <a rel="nofollow" href="https://projectreports.eiriindia.org/product/plastic-waste-recycling-technology/">PLASTIC WASTE RECYCLING TECHNOLOGY</a> appeared first on <a rel="nofollow" href="https://projectreports.eiriindia.org">EIRI - eBooks and Project Reports</a>.</p>
]]></content:encoded>
					
		
		
			</item>
	</channel>
</rss>
