Feedstock. Guide page 41. Home. Feedstock for the complete set of guidance please visit 1.

Similar documents
Section 5: Food waste collection vehicles

London Borough of Bexley

MSW Pyrolysis integrated with Anaerobic Digestion

LCA of Biochar: How feedstocks and production systems stack up

Chemical Recycling of End-of-Life Plastic. Global Waste to Energy and Resources Summit May 2018

Bulky Waste Re-use Partners in Lancaster

TRANSFER STATIONS IN THE 21 ST CENTURY. I.D. Rowden, MWH New Zealand Limited, Palmerston North

Solar-Wind Specific Request for Proposals

Austria: Municipality of Vienna & the Province of Vorarlberg

DO YOU WANT TO TURN WASTE TO FUEL AND PROFIT?

Converting Municipal Solid Wastes to Drop-In Hydrocarbon Fuels

Net Metering Policy Framework. July 2015

IGE Business Model Presentation. FOYSON RESOURCES LIMITED EXTRAORDINARY GENERAL MEETING 31 st March 2015

Household food waste collections guide

In this Information Bulletin, the following terms, where capitalized, have the following meanings:

SEPA Statement Processed Fuel Oil

Biofuels: ACP s response to fossil fuel dependence

Making Tyre-Derived Materials a Commodity: A Comparison of the ASTM & CEN Standards

Shredding LARGE WASTE SHREDDERS VVZ - VNZ

Springfield Utility Board Net Metering Policy Adopted on February 13, 2008 (Resolution 08-1)

Regional Woody Biomass Feedstock Assessments. Woody Biomass Utilization Workshop Quincy, California May 25, 2010

DW SHREDDERS AK GRINDERS SM TROMMELS DZ GRINDER/SHREDDER STATIONARY SYSTEMS

EDITION WITH AUGMENTED REALITY CONTENT

Supply Chain Requirements for Jatropha Success in Ghana

European new pellets standards Case non-woody pellets, 4 May 2010, Lyon

Burnaby Refinery Fuel Composition. November 2018

TESTING THE UNIFORMITY OF SPRAY DISTRIBUTION UNDER DIFFERENT APPLICATION PARAMETERS

CHAPTER 25. SUBSTANTIVE RULES APPLICABLE TO ELECTRIC SERVICE PROVIDERS.

Neville Hargreaves Gastech, April 2017, Tokyo. Roll out of smaller scale GTL technology at ENVIA Energy s plant in Oklahoma City, USA

Experiences with domestic waste treatment and co-processing of Solid Recovered Fuels (SRF)

SM/SST SERIES Trommel Screens

RESIDENTIAL WASTE HAULING: Arvada s Existing System & Early Research. September 8, 2010 Presentation to Arvada Citizens Task Force

PETroleum CARBON FUEL (PCF)

Shredding. Transforming Waste. Valuable Resources. screening. sifting. separation. Technology For A Better Environment

Thermal Exploitation of Wastes in Lignite Combustion Facilities

Mini refinery feasibility study

Key facts. Combustion, biofuels and zero net carbon. Capturing the economic benefits of carbon neutral fuels

FITCHBURG GAS AND ELECTRIC LIGHT COMPANY NET METERING SCHEDULE NM

STATUTORY INSTRUMENTS. S.I. No. 160 of 2017

Technology Options for the Cement Industry with the Use of Alternative Fuels

TERMS AND CONDITIONS

Newfoundland & Labrador USED TIRE MANAGEMENT PROGRAM TIRE SUPPLIER GUIDE

Published on Market Research Reports Inc. (

Class 43.1, Class 43.2 and CRCE Presentation to Canadian Solar Industries Association

This presentation focuses on Biodiesel, scientifically called FAME (Fatty Acid Methyl Ester); a fuel different in either perspective.

Municipal Waste Advisory Council Battery Avoidance Strategies October 2007

Crude & Petroleum Products Specification & Analysis

Biomethane comparison with other biofuels. Dominic Scholfield. Global Biomethane Congress October 2012

Responsible Palm Oil Sourcing Criteria

Diesel Power Generating Plants. Introduction

GREATER VANCOUVER SEWERAGE AND DRAINAGE DISTRICT BYLAW NO. 307, A Bylaw to License Commercial Waste Haulers

PASSING ABILITY OF SCC IMPROVED METHOD BASED ON THE P-RING

Purpose of Presentation

Special Specification 7010 Debris Removal and Disposal

MENARD ELECTRIC COOPERATIVE POLICY MANUAL. SECTION IV Operating Rules for Cooperative Members

PERFORMANCE AND EMISSION ANALYSIS OF DIESEL ENGINE BY INJECTING DIETHYL ETHER WITH AND WITHOUT EGR USING DPF

Standards for solid biofuels - Status and prospects

RATE 765 RENEWABLE FEED-IN TARIFF

Bioenergy Qualifications

Heber Light & Power Electric Service Rule No. 14 NET METERING SERVICE

P.S.C.U. No. 50 Original Sheet No ROCKY MOUNTAIN POWER ELECTRIC SERVICE SCHEDULE NO. 136 STATE OF UTAH

paper industry units. The latest study carried out in UPM s Augsburg mill

Electricity Trends in Pennsylvania

Summer Reliability Assessment Report Electric Distribution Companies Perspective

NOW AVAILABLE EXCLUSIVELY IN THE UK. Renewable and GTL Paraffinic diesels from Green Biofuels

PFI Standard Specification for Residential/Commercial Densified Fuel 18-June-2008

This Regulation is established on the basis of subsections 26 (3) and (8) of the Waste Act.

Energy Densification via Hydrothermal Pretreatment (HTP) of Cellulosic Biomass

Energy Independence. tcbiomass 2013 The Path to Commercialization of Drop-in Cellulosic Transportation Fuels. Rural America Revitalization

Experimental Investigations on a Four Stoke Diesel Engine Operated by Jatropha Bio Diesel and its Blends with Diesel

Feed in Tariffs. What is the feed-in tariff? Guaranteed for 25 years - by the UK Government. How do I claim the feed-in tariff?

Project Reference No.: 40S_B_MTECH_007

Production of Transportation Fuels by Co-processing Biomass-Derived Pyrolysis Oils in a Petroleum Refinery Fluid Catalytic Cracking Unit

Community-Based Biomass Power

Confirmation of paper submission

VFC-5 to VFC-500 FLO-COATER

This Distribution Charter explains how PLS distributes collective licensing

Self-Assessor Carbon Levy Remitter Return INSTRUCTION GUIDE Climate Leadership Act

RECYCLABILITY EVALUATION PROTOCOL FOR PE FILMS

Practical Application of Bio-based Pyrolysis Oil Paula Flowers Hassett Lance Baird

POSIBILITIES TO IMPROVED HOMOGENEOUS CHARGE IN INTERNAL COMBUSTION ENGINES, USING C.F.D. PROGRAM

Ethanol, DME and Renewable Diesel for large scale displacement of fossil diesel in HD applications

FITCHBURG GAS AND ELECTRIC LIGHT COMPANY NET METERING SCHEDULE NM

Renewable Fuels Association One Massachusetts Ave. NW Suite 820 Washington, DC Telephone: (202) Fax: (202)

EASTERN ILLINI ELECTRIC COOPERATIVE REGULATION NO. 26A

Objectives / Expected results WP 1. WP1: Systems for increased fuel flexibility. WP Leader: Andreas Schmid DWP leader: Kaj Portin

12. OPTIONS FOR BATTERY RECYCLING RR 8703

Prius cuts CO2 throughout its life cycle for the good health of our planet

SILICONES GLOBAL SOLUTIONS

Austrian Energy Agency

Note: This rule is effective on July 1, 2018, through June 30, 2019.

A Feasibility Study on Production of Solid Fuel from Glycerol and Agricultural Wastes

Supply Base Report: Postavsky Furniture Center. Second Surveillance Audit.

CONVERSION OF GLYCEROL TO GREEN METHANOL IN SUPERCRITICAL WATER

Delivering Sustainable Biomass Solutions Solving the Commercial Feedstock Problem: Past, Present and Future Project Development

Focus Area Level Report Including Knowledge and Skills, and Performance Indicators

BRITISH COLUMBIA USED OIL MANAGEMENT ASSOCIATION

Protea Series. The green fuel oil additives for power generation

Southeast Biomass: Highest and Best Use

Using Pyrolysis Tar to meet Fuel Specifications in Coal-to-Liquids Plants

Transcription:

Feedstock Guidance on the issues which will affect the accessibility, security and suitability of waste materials as fuel for energy from waste processes 1.0 Introduction 2.0 Feedstock types 3.0 Fuel preparation 4.0 Feedstock security 5.0 Further information page 41

1.0 Introduction This guidance examines the variables and properties of waste derived fuel materials, how they can influence the type of processing technology chosen and the different outputs. The characteristics of the waste feedstock and its variability are key parameters when determining which technology will be the most suitable for the EfW proposal. Understanding the composition and variation in the potential feedstocks/fuels will help operators select the right EfW technology, plant design and determine the overall energy efficiency that is achievable. A consideration of the potential waste feedstocks which will be available and suitable for the proposed energy from waste (EfW) facility is a key aspect of the development of the business case for a proposal 1. A process designed to utilise waste biogenic content or a processed Refuse Derived Fuel (RDF) would suffer operational problems if suddenly faced with unsorted Commercial and Industrial (C&I) wastes or material heavily contaminated with food rich material. The overriding objective of the waste hierarchy is to drive material up the hierarchy as far as is possible, when it is possible, so as to maximise the potential to divert waste from landfill. The remaining waste, following recycling, re-use and composting, should then be managed in recovery facilities such as an EfW. These facilities have a key role to play within the hierarchy to divert residual waste from landfill. 2.0 Feedstock types The characteristics of the waste feedstock and its variability are key parameters to examine when determining which technology would be the most suitable for the proposed facility. The feasibility assessment will need to include a detailed analysis of the physical and chemical characteristics of the feedstock. Understanding the composition and variation in the feedstock will help select the right EfW technology at the plant design stage. This will need to be reviewed over the life of the contract as feedstock composition may change. The larger mass burn technologies are less sensitive to variations in feedstock, but the smaller-scale, more efficient processes such as gasification and pyrolysis, are much more sensitive to fuel change, generally requiring pre-treatment of feedstock. The physical and chemical properties of the waste can have an impact on the energy efficiency, operation and emissions of an EfW facility, as can factors such as moisture content, ash content and bulk density. Variety in these factors will define that fuel and its end usage, and lead to its determination as one of a number of pre-defined Waste Derived Fuels. Generally, they would be classed under one of the following headings, due to the factors listed beside them. Generic fuel type RDF Refuse Derived Fuel Biogenic content SRF Solid Recovered Fuel Typical calorific value 10-12 Mj/Kg 15-18 Mj/Kg 18-22 Mj/Kg Defining factor Residual material left over following the separation of recyclable materials in a MRF, Mechanical Biological Treatments (MBT) or transfer station General woody waste material, including forestry thinnings, joinery waste and clean or treated wood products A processed material specifically targeted for the higher CV fraction of the waste. Commonly used in cement kiln operations 10 See WRAP guidance on Feasibility and Good Practice page 42

3.0 Fuel preparation The feedstock may require further processing before it can be thermally treated in some of the technologies. For instance, some machinery which pyrolyses wood chip requires the chip to be of a certain and consistent size. The type of fuel preparation techniques used would depend on the input fuel and the EfW technology being used, but some commonly used fuel preparation techniques include: Sorting. Either manual sorting or mechanical sorting in order to identify and remove any metals, rigid plastics, other recyclable materials or unusable contaminated materials which aren t wanted within the fuel. Mechanical sorting techniques can include over-band magnets, density separators, infra-red optical scanners or wind blowing sifters. Crushing or shredding. This reduces the material to a standard, general, or given size or can be used to homogenise the physical characteristics. Screening. Screens (rotating drum screens, oscillating screens, star screens, etc.) can help remove aggregates or soil products from the feedstock, leaving a more usable, higher CV material to make up the fuel. Washing. Removes contaminants stuck to the material. Drying. Reduces moisture content. Homogenisation. Generally the final stage in fuel preparation, these are processes designed to bulk the material, assist in its transport and storage or to present the fuel in a certain manner e.g. mixing, blending, compacting, pelletising or baling. 4.0 Feedstock security The whole process in setting up an EfW facility from concept, feasibility, design, commissioning to operation represents a significant capital investment over a long period of time. A cost benefit analysis needs to demonstrate to funders that sufficient suitable waste feedstock is available over that period to ensure the facility can run at or near capacity and generate the revenues or savings expected. Developers will therefore need to demonstrate feedstock security and consider any changes to their business that might impact on the quantity or composition of the waste feedstock they use. In some circumstances, it may be found that numerous EfW facilities in a small, concentrated area would lead to those facilities competing for waste feedstocks. This could lead to higher values for the fuels as the plants are prepared to pay more for the material (or reduce their gate fees) in order to continue operation. The signing of long term contracts or other business relationships such as partnerships, joint ventures, vertical integration, etc., can go a long way to guaranteeing fuel security and feedstock availability. page 43

5.0 Further information The WRATE (Waste and Resources Assessment Tool for the Environment) can be used to provide feedstock information useful for determining information for electricity generation e.g. the moisture content, calorific value, carbon and biogenic carbon content. www.environment-agency.gov.uk/research/commercial/102927.aspx BS EN 15440:2011 Solid recovered fuels. Methods for the determination of biomass content lists methods to determine the carbonaceous element of the solid recovered fuel. The biogenic content is required if renewable energy incentive payments are to be claimed. ROCs or RHI can only be paid on the biogenic element of the fuel, so plastics for instance will not count toward those payment levels. The determination of the biogenic element is therefore vital for a number of reasons. This document must be purchased from the BSi website. http://shop.bsigroup.com/en/productdetail/?pid=000000000030255009 Phyllis is a European database able to provide analysis data and information on the composition of wastes. Available for individual wastes or for a combination of wastes, it can provide historic data on samples previously analysed and the results stored. It can provide ultimate analysis (carbon, nitrogen, fluorine, etc), proximate analysis (ash content, moisture content, etc) biological composition, metal content etc. for a range of waste materials, grouped into different types. http://www.ecn.nl/phyllis/info.asp page 44

For further information about Energy from Waste please visit: www.wrap.org.uk/efw While we have tried to make sure this guide is accurate, we cannot accept responsibility or be held legally responsible for any loss or damage arising out of or in connection with this information being inaccurate, incomplete or misleading. This material is copyrighted. You can copy it free of charge as long as the material is accurate and not used in a misleading context. You must identify the source of the material and acknowledge our copyright. You must not use material to endorse or suggest we have endorsed a commercial product or service. Please note that this information was correct at the time of writing, but the regime is liable to change with government policy. WRAP will endeavour to update this document when changes are made to the regime. For more details please see our terms and conditions on our website at www.wrap.org.uk www.wrap.org.uk Waste & Resources Action Programme Helpline freephone: 0808 100 2040 E-mail: info@wrap.org.uk page 45