PERP/PERP ABSTRACTS Bio-Routes to para-xylene PERP 2011S3

Similar documents
PERP/PERP ABSTRACTS Polypropylene PERP

Developments in Linear Alpha Olefin (LAO) Comonomer Technologies for Polyethylene

PERP/PERP ABSTRACTS Ethanol

PERP/PERP ABSTRACTS Carbon Monoxide PERP 09/10S11

Direct Coal Liquefaction

Polyoxymethylene (POM; Polyacetal)

Nitrobenzene/ Aniline/ MDI

PERP/PERP ABSTRACTS Vinyl Acetate PERP

100% Biobased PET: A Sustainable Approach to Fiber, Film, and Bottles.

Vinyl Chloride Monomer (VCM)/ Ethylene Dichloride (EDC)

CHEMSYSTEMS. Report Abstract. Polybutylene Terephthalate (PBT) PERP07/08S1 PERP PROGRAM CSOL /MM/2008

CHEMSYSTEMS. Polybutylene Terephthalate (PBT)

PERP/PERP ABSTRACTS Green Glycols and Polyols PERP 09/10S8

Phenol, Acetone, Cumene

Air Separation Technology

Styrene Block Copolymers

Monoethylene glycol: Analysing global markets

NON-SEQUESTRATION UTILIZATION OPTIONS FOR CARBON DIOXIDE (CO2)

NexantThinking PERP PROGRAM Ethylene PERP

PERP/PERP ABSTRACTS Styrene/Ethylbenzene

Report Abstract Urea PERP06/07S3 October 17, 2007

PERP/PERP ABSTRACTS Green Propylene

Process Economics Program

PERP Program Ethylene Oxide/Ethylene Glycol New Report Alert

PERP Program - Ethanol New Report Alert

Biorenewable Insights. Alpha Olefins and LAO

Coal to Olefins Processes

Anellotech and Suntory Enter Next Phase of Strategic Partnership to Develop 100 Percent Bio-Based Plastics for Sustainable Beverage Bottles

NexantThinking TM. Low Density Polyethylene (LDPE) Process Evaluation/Research Planning. PERP December 2013

PERP Program Hydrogen Peroxide-Based Propylene Oxide New Report Alert

Thermoplastic Fabrication Processes

PERP/PERP ABSTRACTS Coal Bed Methane PERP 09/10S3

Copyright Anellotech, Inc. Low Cost Green Aromatics. December 2014

Assessing Regional Demand for Ethylene Glycol and Related Products. Antulio Borneo Head of Supply Chain Americas

Process Economics Program

Report Abstract Bisphenol A PERP06/07-7 August 2008

Phosphoric Acid. Table of Contents

Report Abstract Biomass Gasification PERP06/07S5 April 2009

PERP Program New Report Alert

PERP Program Thermoplastic Wood Composites New Report Alert

Cost Competitive Bio-Aromatics Anatoly Garelik Director, Alliance Management & Planning M :

Hydrocarbon Drop-In Biofuels Engine Research Center University of Wisconsin-Madison June 8, 2011

PERP Program Styrene from Ethane and Benzene New Report Alert

Sustainable Plastic Packaging: Renew and Recycle

Repurposing the Energy Infrastructure

CHEMSYSTEMS PERP PROGRAM

Backgrounder. Raw material change at BASF. Natural gas, biomass and carbon dioxide can supplement crude oil as a raw material for chemical production

Economy > Energy > Feedstocks & Polymer Markets

PERP Program Polyolefin Elastomers New Report Alert

Pilot Scale Biorefinery for Sustainable Fuels from Biomass via Integrated Pyrolysis and Catalytic Hydroconversion

Renewables White Paper Seminar

PERP Program New Report Alert

Bioeconomy Forum Finland 2012

"BIOPLASTICS for food packaging: better biobased or biodegradable?

PERP Program New Report Alert January 2004

Lignin conversion into bio-based chemicals

PERP Program New Report Alert

The Outlook and Challenges facing the Chemical Industry Implications for the Industry in UAE?

THE INTERNATIONAL OVERVIEW OF BIO-BASED CHEMICAL BUILDING BLOCKS Ten years evolution decrypted

Fast Pyrolysis: Pathway to Unlocking Value from Forest Product Residuals. Randal Goodfellow March 15 th, 2011

PERP Program LNG Receiving Terminals New Report Alert

Topics PROESA TECHNOLOGY. Commercial Scale Production of Fermentable Sugars from cellulosic biomass. Kota Kinabalu September 7 th, 2015

Trash into Gas: Powering Sustainable Transportation by Plants

Beta Renewables PROESA Technology

Moving from Irrational Exuberance to a New Normal in the Polyester & PET Value Chain

An update on polyethylene furanoate: Projects and aims PET Value Chain: Transitioning from Linear to Circular Amsterdam, March 13 th 2018 Francesco

Avantium Renewable Chemistries Update for IFBC2017. Alan Smith 9-May-2017

Introducing MEKONG making a greener PET an economic reality

ABENGOA. Hugoton project

Global PET: Supply, Demand and Trade Dynamics ICIS PET Value Chain Conference

PERP Program Formaldehyde and Derivatives New Report Alert

Biomass and Biofuels. Biomass

Global Lubricants Market Study ( )

Press Kit. About DAWN Technology*

THE CHEMICALS INDUSTRY OPPORTUNITIES TO INCREASE ENERGY EFFICIENCY, TO REDUCE GREENHOUSE GAS EMISSIONS AND TO LIMIT MERCURY DISCHARGES CONCEPT NOTE

Bio-feedstocks, Chemicals and Polymers. Trends, Success Stories and Challenges.

ABENGOA BIOENERGY NEW TECHNOLOGIES

Industrial Biosciences. Jim Collins - President

Introduction to Biopolymers and Bioplastics

Biological Conversion of Cellulosic Biomass to Ethanol at UCR

NexantThinking TM. Plastics Recycling: What is the Impact on Virgin Plastics Market in China and India? Special Reports. Brochure January 2016

GHG savings with 2G Ethanol Industrial Plant. Pierluigi Picciotti BD Director North America & APAC July 26 th, 2017 Montreal

An NSF Perspective on. Next Generation Hydrocarbon Biofuels:

Abstract Process Economics Program Report 34B PHTHALIC ANHYDRIDE (October 1998)

Technologies For Conversion Of Unconventional and Renewable Feedstocks From BP. Philip M J Hill, BP International

Methanol - One Product - Many Possibilities

Carbon To X. Processes

Biomass conversion into low-cost and sustainable chemicals*

Sulfur speciation and partitioning during thermochemical conversion of cellulosic biomass to biofuel

Hot Molecules Looking at new opportunities in biobased chemicals

Biorefineries. International status quo and future directions. Ed de Jong / Rene van Ree

Introduction. Influence of Global Petchem Market on Asia

Outlook for Petrochemical

Biofuels Research Opportunities in Thermochemical Conversion of Biomass

Global Bioenergy Market Developments

Pyrolysis Oil: Heat, Electricity, Green. and Chemicals Too. September 13 th, 2010

Biorefineries Workshop

BIOENERGY TECHNOLOGIES OFFICE. Jonathan L. Male Director, Bioenergy Technologies Office. NASEO February 6, Bioenergy Technologies Office

VOL. 39, Introduction

Challenge 2: Fargione et al; Land Use Change Penalty. CO 2 debt is created when land is cleared

Transcription:

PERP/PERP ABSTRACTS 2010 Bio-Routes to para-xylene PERP 2011S3 Report Abstract March 2012

March 2012 Alan J. Nizamoff CHEMSYSTEMS PERP PROGRAM The ChemSystems Process Evaluation/Research Planning (PERP) program is recognized globally as the industry standard source for information relevant to the chemical process and refining industries. PERP reports are available as a subscription program or on a report by report basis. Nexant, Inc. (www.nexant.com) is a leading management consultancy to the global energy, chemical, and related industries. For over 38 years, ChemSystems has helped clients increase business value through assistance in all aspects of business strategy, including business intelligence, project feasibility and implementation, operational improvement, portfolio planning, and growth through M&A activities. Nexant has its main offices in San Francisco (California), White Plains (New York), and London (UK), and satellite offices worldwide. For further information about these reports, please contact the following: Dr. Alexander Coker, Global Manager, PERP Program: Ms. Heidi Junker Coleman, Global Support Manager, Multi-Client Programs Dr. Y. Larry Song, General Manager, Nexant China phone: + 44-207-950-1570, e-mail: acoker@nexant.com phone: + 1-914-609-0381, e-mail: hcoleman@nexant.com phone: +86 21 6182 6791, e-mail: ylsong@nexant.com Copyright by Nexant Inc. 2012. All Rights Reserved.

INTRODUCTION The possibility of a renewable source of para-xylene (the feedstock for terephthalic acid (PTA)), which is in turn a monomer, along with monoethylene glycol (MEG), for bottle resin polyethylene terephthalate (PET)) is important to the entire global sectors concerned with food packaging and textiles (for PET fiber). High resin prices have increased the need to create totally green PET bottles as replacements for petroleum-derived ones. This has led to recent announcements by H.J. Heinz Company for plans to use Coca-Cola s 30 percent plant-based PET PlantBottle for packaging its ketchup; PepsiCo which announced a 100 percent plantbased PET bottle in the laboratory; and renewable chemical technology firms Gevo, Virent and Avantium to help Coca-Cola develop a 100 percent plant-based polyethylene terephthalate (PET) resin for its PlantBottle packaging. Although PET is recycled already (but at an average of only 28.0 percent in 2009), by producing a green PET from renewable para-xylene and MEG, one can claim a better environmental impact and simultaneously reduce our dependence on oil. The technology for making green or bio-based ethylene glycol from bioethanol has long been commercialized and is discussed in PERP report 09/10S8 Green Glycols and Polyols. How to Make 100 Percent Renewable PET* BIO-BASED FEEDSTOCK BIO PX BIO ETHANOL BIO-BASED FEEDSTOCK BIO PTA 69% BIO MEG 31% BIO PET RESIN BLOW MOLDING s1_00101.0011.4111 graphics.vsd * adapted from Coca Cola web site graphic http://www.thecoca-colacompany.com/citizenship/plantbottle_basics.html Within the last year, three bio-options have appeared on the horizon, Virent Energy Systems, Inc.; Gevo, Inc.; and Anellotech, Inc. These three options are very different from one another. The processes operated by Virent and Gevo, are liquid phase, work at relatively low temperatures, and feed on sugar solutions or hydrolysate (at least in the near term), while the 1

Anellotech s process is a higher-temperature pyrolysis that feeds on wood chips, saw dust, or other ground up biomass. Virent and Anellotech s processes rely on mineral catalysis for their primary and unique conversion step, while the Gevo process is fermentation-based. Anellotech and Virent produce their hydrocarbon products in essentially one step, while Gevo requires three subsequent stages of catalytic conversion to go from its primary product, bio-isobutylene, to para-xylene. Virent has been salient for several years, Gevo for slightly less time, and Anellotech has only appeared in 2009. The degree of corporate and technical development roughly parallels this chronology: Anellotech is still at the demonstration plant stage Gevo has its isobutanol process operating but still needs to demonstrate the ring closure process step commercially Virent has a pilot plant operating in Texas and has an advantage in being able to convert both C 5 and C 6 sugars to aromatics BIOTECHNOLOGY Anellotech s Biomass to Aromatics is based on science research by Prof. George Huber's research lab at the University of Massachusetts-Amherst. The biomass (i.e., wood waste, corn stover, sugar cane bagasse, etc.) is first dried and ground before being injected into a fluid-bed reactor in the presence of a zeolite catalyst. In this one brief step, biomass is rapidly heated without oxygen and the resulting gases are immediately catalytically converted into aromatic hydrocarbons. Other than the reactor, regenerator and the catalyst, the process equipment is conventional equipment found in many chemical facilities. Gevo is focused on the development of advanced biofuels and renewable chemicals based on isobutanol and its derivatives. Gevo s technology enables the cost effective, practical production of renewable hydrocarbons such as isooctene and isooctane for the gasoline market, renewable jet fuel and renewable diesel blendstocks. In addition, Gevo s technology enables the production of a wide variety of chemicals such as isobutylene and para-xylene from renewable resources. Virent claims that their BioForming process can convert a wide range of biomass-derived feedstocks to fuels and chemicals. The BioForming process is based on the Aqueous Phase Reforming (APR) pathway combining catalyst and reactor systems similar to those found in refineries. BioForming is optimized for the conversion of an individual feedstock to a defined end product among many possible combinations. Sponsors of Virent s development include Shell, Honda Motor, Cargill, Venture Investors, Stark Investments, and Advantage Capital. Its collaborator is the University of Wisconsin-Madison. Although the report focuses on the research of Anellotech, Gevo, and Virent, other companies doing research in this area include Global Bioenergies, UOP, Pacific Northwest National Laboratory (PNNL) and Washington State University (WSU). Their work is discussed briefly in the report. 2

COMMERCIAL TECHNOLOGY The xylene isomers, meta-xylene, ortho-xylene and in particular para-xylene, are important chemical intermediates. ortho-xylene is oxidized to make phthalic anhydride which is used to make phthalate plasticizers among other things. meta-xylene is oxidized to make isophthalic acid, which is used in unsaturated polyester resins (UPR). However, para-xylene has by far the largest market of the three isomers. The largest use of para-xylene is in its oxidation to make terephthalic acid. Terephthalic acid is used in turn to make polymers such as polyethylene terephthalate (PET) and polybutylene terephthalate (PBT). PET is one of the largest volume polymers in the world. As such, the demand for para-xylene is several times that for meta- and ortho-xylene. Xylenes are normally obtained from various sources within a refinery or steam cracker including reformate, pyrolysis gasoline, toluene disproportionation, and transalkylation. Globally, reformate accounts for over 75 percent of the mixed xylenes. These sources usually produce a mixture of isomers from which the individual isomer is recovered. Xylene Technology Pygas Extraction 2% Integrated Aromatics Complex 8% Other 1% Reformate Extraction 76% TDP 5% Transalkylation 4% STDP 4% A00101.0011.4111-CHARTS.XLSX\F3.1 Commercial technology routes to produce para-xylene are briefly summarized in this section of the report. 3

PROCESS ECONOMICS Cost estimates for para-xylene production via the following processes have been evaluated: Commercial integrated naphtha to para-xylene route for plant capacity of 1 000 kta on a USGC basis. Anellotech s speculative (non-commercial) para-xylene route for plant capacity of 250 kta plant on a USGC basis. Gevo s speculative (non-commercial) para-xylene route for plant capacity of 250 kta plant on a USGC basis. Virent s speculative (non-commercial) para-xylene route for plant capacity of 250 kta plant on a USGC basis The above cost estimates highlight the different process performances of the speculative routes as they are all compared on a same capacity and location basis. However, other regions reflect to a greater extent the developing industry based on planned new projects. Therefore, Nexant has also developed and compared the economics of production for the Anellotech route to para-xylene for Brazil and Western Europe. In addition, the sensitivity of the economics for producing bio para-xylene has been developed for feed price, capital investment, and economy of scale. All cost tables given in this report include a breakdown of the cost of production in terms of raw materials, utilities direct and allocated fixed costs, by unit consumption and per metric ton and annually, as well as contribution of depreciation to arrive at a cost estimate (a simple nominal return on capital is also included). COMMERCIAL ANALYSIS The global para-xylene market can be categorized to three main regional profiles. The mature markets in North America and Western Europe have a low growth outlook for para-xylene. Smaller consuming regions such as South America, Eastern Europe and the Middle East have a higher growth outlook, but this is limited in scale due to their reliance on the PET container resin market. Lastly Asia Pacific, which is by far the largest consuming region, and will drive global growth. This is due primarily to the labor cost advantage of producers in the region, which has allowed them to dominate the global PET fiber market, which accounts for around two-thirds of the total global PET demand. China alone now accounts for around two-thirds of the global PET fiber production. The huge populations in Asia are also driving high long term growth rates for PET container resins. Asia Pacific is therefore the real driver of para-xylene demand, accounting for roughly 80 percent of the global total. 4

Global para-xylene End-Use Pattern, 2010 Others 1% DMT 3% PTA 96% A00101.0011.4111-CHARTS.XLSX\F5.1 Global supply, demand and trade data are given and discussed. In addition, supply, demand and trade data is given and discussed according to key regions (i.e., United States, Western European, and Asia Pacific) A list of plants in each of the key regions above is given showing specific plant capacities, owning company, location and annual tonnage produced 5

Nexant, Inc. San Francisco London Tokyo Bangkok Bahrain New York Washington Houston Phoenix Madison Boulder Dusseldorf Beijing Shanghai Paris