Document RangqVy4VGboV8VYOVD7eb0Zv
PFAS Study in Chemical Plants and Refineries Equipment
France
Final Report
July 2023
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Table of Contents
01 Executive Summary 02 Scope and methodology 03 Overview of PFAS 04 Impact analysis of PFAS partial or total ban 05 PFAS usage in Chemical and Refining plants 06 PFAS alternatives 07 Conclusion
Executive Summary (1/4)
PFAS are a large group of substances, both polymeric and non-polymeric, containing carbon-fluorine bonds (C-F) which is considered to be the strongest in organic chemistry, resisting heavily to degradation
OECD lists around 5000* PFAS which are scientifically referenced by their chemical structure category name (e.g., polytetrafluoroethylene), but better known by industrials by their abbreviations (e.g., PTFE) or brand name (e.g., Teflon)
While encompassing a very diverse portfolio of products, PFAS are predominantly used as raw material in chemical synthesis and are mainly found in solid form in equipment. Solid PFAS (mainly fluoropolymers) represent a small portion of the total PFAS substances (~5%)
The future European project to restrict PFAS (Perfluoroalkyl and Polyfluoroalkyl Substance) in chemical plants equipment will have implications on the operations of existing assets and decision to invest in new ones
The chemical and refining industries are highly CAPEX intensive and need to operate with high HSE standards, therefore there is a priority to operate with equipment fit for security, that can be used over a long period of time and maximize the return on capital employed
The impact of a PFAS ban on the chemical and refining industries would be massive as few PFAS-based materials are used extensively in core equipment of chemical plants and refineries:
- Technical substitutes for several PFAS based equipment are not available (e.g. membranes, ...), or do not ensure the same level of safety performance (e.g. joints, ...), hence several plants could no longer operate
- For existing plants, impact of one-off cost represents up to 6 months to 1 year of revenue, and a reduction of 20-30% of EBITDA impact. This combines the required investments to replace core equipment of plants as well as the revenue losses linked to the interruption of production over a period of 6 months to 2 years
- For new plants, higher CAPEX and increased running cost could deter new investments in France
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Source: *OECD Towards a new comprehensive global database of PFASs,
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Executive Summary (2/4)
In addition, where technical substitutes for materials used in chemical plants exists, the supply industry is not structured to supply required volumes over a short period of time and the timing to validate the feasibility at industrial scale would take several years
Identifying PFAS in industrial equipment is a task that has been proven to be difficult to conduct, even for big chemical companies, mainly due to (i) the multiplicity & diversity of equipment that composes a chemical plant, (ii) the limited familiarity with the bill of material as equipment are predominantly specified by their functional performance, and (iii) the limited focus of the industry on the topic
The chemical and refining industries have a limited set of PFAS used in plants, ~30 molecules. The main ones are fluoropolymers (plastics and elastomers), lubricants, foams, refrigerant gas. The use of theses materials is omnipresent in chemical and refining plants
Many equipment containing PFAS are similar for the whole industry (piping, pumps, seals, refrigerant gas, etc.), while some are specific to certain chemical processes (membrane, mixer, etc.). Most of the uses are in core assets of the plants, close to the process
Several properties are sought in fluoropolymers, the predominant category of PFAS found in chemical equipment:
- Chemical resistance to a very corrosive environment - Strong mechanical properties - Thermal resistance at high temperature PFAS in joints, pipes, valves and refrigerant gases in chemical plants are chosen for one or more of these properties
During the factory operation phase, the risks of accidental release in the environment varies by type of PFAS (e.g solid vs gaseous or liquid state, in contact with products or water,...)
Some chemical companies that serve specific industries (e.g., semiconductors for microelectronics) requiring high level of purity in the final product are integrating into their operations the control of the presence of any undesirable substances at the end of their process
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Executive Summary (3/4)
Regarding the end-of-life of PFAS products/equipment, some measures exist for gases, while the disposal of solid PFAS is not subject to specific control
The chemical industry and its suppliers have started investigating alternative to PFAS materials used in plant, providing similar properties (durability, resistance, ...)
For some equipment, there currently are no identified viable alternatives (e.g., membrane, diaphragm) For some use cases only, technical alternatives to PFAS exist for some materials in the form of:
- Replacement of Fluoropolymers: other polymers, Specialty metals, other materials (e.g., glass, ceramics, ...) - Non-fluorinated gases for refrigerants In particular, the industry has identified some potential substitutes for the following PFAS equipment working only for a limited number of use cases: - Joints: metallic (nickel), graphite, organic/mineral fibers - Piping: thermoplastics, Hastelloy, glass lining, nickel, titanium - Valves: polyethylene, Hastelloy, EPDM, Vespel - Refrigerant gas: Ammonia, CO2, propane/methane - Coating: PPV, Epoxy, Polyester, melamine However, they often do not match all the properties of the original substance, making them less desirable. In particular, they do not offer the same level of safety and environmental protection
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Executive Summary (4/4)
Beyond the material performance, the alternatives have other drawbacks: - Safety of the future installations to be demonstrated - Long alternative development process (R&D, testing, approval from client, confidence from supplier to provide same level of guarantees) - Production tools and supply chain adaptation to cope with sharply increased volumes - Possible same persistence characteristic of alternative materials with similar properties to PFAS - Some identified alternatives containing traces of PFAS (voluntarily or involuntarily)
Many challenges are identified with a ban of PFAS in industrial equipment: - No known alternatives to date for some equipment and unfavorable performance of alternatives identified - Insufficient supply chain maturity for manufacturing of PFAS free equipment with little to no capacity for alternative identified - Substantial impact on direct costs (maintenance) and impact on utilization (more frequent failure/maintenance activities) - High CAPEX required to transform plants linked to the use of PFAS and severe commercial impact linked to interruption of production
Workshops with chemical and refining companies allowed to identify potential improvement of PFAS management in plants: - Better traceability of PFAS in equipment like type, quantity, origin etc. (e.g in a material passport) - More stringent control of PFAS degradation and end-of-life management - Stronger collaboration between equipment suppliers and chemical companies to develop and test new alternatives to PFAS materials
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Table of Contents
01 Executive Summary 02 Scope and methodology 03 Overview of PFAS 04 Impact analysis of PFAS partial or total ban 05 PFAS usage in Chemical and Refining plants 06 PFAS alternatives 07 Conclusion
Accenture assessed PFAS use in French chemical and refining plants, alternatives and potential impacts of a ban
Report based on workshops, interviews, and Accenture analysis
Scope of the study
The French Chemical and Refining sectors are covered, in particular: Chlorine chemistry, Petrochemicals / Refinery, Specialized (incl. Fine) chemistry
PFAS inventory and alternative analysis:
- Identification of the equipment containing PFAS in chemical and refining plants
- Identification of the different type of PFAS and their properties
- Exploration of the potential substitution solutions for affected equipment
Expected impact of the regulation:
- Operational
- Economic
- Social & Environmental
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Methodology
Workshops with 10 companies part of the diverse French chemical industry landscape
- 1st workshop: focus on the inventory of industrial equipment containing PFAS on selected industrial plants
- 2nd workshop: analysis of the impact of a PFAS ban on the selected industrial plants
+25 interviews conducted with chemical equipment manufacturers & associations (joints/gaskets, piping, valves, refrigerant gas, painting/coating, electronics)
Accenture's research and analysis
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Table of Contents
01 Executive Summary 02 Scope and methodology 03 Overview of PFAS 04 Impact analysis of PFAS partial or total ban 05 PFAS usage in Chemical and Refining plants 06 PFAS alternatives 07 Conclusion
PFAS are a large group of substances, both polymeric and non polymeric, containing the strongest Carbon-Fluorine bond
Key elements
Carbonfluorine
One of the strongest chemical bonds in organic chemistry resisting heavily degradation
5000
~5000 PFAS substance in use (estimated), with various chain lengths (non-polymeric/polymeric)
Raw materials
Derivatives of fluorinated
compounds:
- F2 - HF
- ClF2C-C-F2Cl - CH3CF2Cl - CHClF2
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Sources: 1 SFEI, OECD, Accenture research
PFAS product tree (simplified)
Per and Polyfluoroalkyl Substances (PFAS)
Nonpolymers
Polymers
Polyfluoroalkyl Substances
Perfluoroalkyl Substances
Side-chain fluorinated polymers
Fluoropolymers
Polyfluoroalkyl Ether Acids
Fluorotelomer Substances
Perfluoroalkyl Acids (PFAAs)
Perfluoroalkane Sulphonamides
(FASAs)
Perfluroalkane Sulfonamido Substances
Perfluoroalkyl Carboxylic Acids
(PFCASs)
Perfluoroalkyl Sulfonic Acids
(PFSAs)
______________
Perfluoroalkyl Ether Sulfonic Acids (PFESAs)
L----------------------------------------~
Perfluoroalkyl Ether Carboxylic Acids (PFECAs)
i _______________
1 1 1 1
_
! -------------~ Precursor Transformation Pathway Key
Potential Precursor
Transformation to Terminal PFAS
PFCAs
11
-------------~
PFSAs 1
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Predominantly used as raw material in chemical synthesis, PFAS are mainly found in solid form in industrial equipment, primarily as fluoropolymers
Intermediaries
PFAS distribution by main category
4 683 267
1 833
314 365 625
21 512
746
Fluoropolymers
Fluorotelomer-related compounds Other PFAA precursors and related compounds - perfluoroalkyl ones Per- and polyfluoroalkyl ether-based compounds Perfluoroalkane sulfonyl compounds Perfluoroalkyl phosphate compounds Perfluoroalkyl carbonyl compounds Other PFAA precursors or related compounds - semifluorinated
PFAS distribution by state
4 683 333
2 612
1 738
Primarily fluoropolymers
Solid state Liquid state Gaz state
Solid PFAS mainly fluoropolymers represent a small portion of the total substances (~5%) More than 90% of the PFAS are used in gaseous or liquid state *
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Source: Analysis based on OECD Database, under the following hypotheses: Chain length <5 = Gaseous state ; >20 = Solid state ; 5< & <20 = Liquid state
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Table of Contents
01 Executive Summary 02 Scope and methodology 03 Overview of PFAS 04 Impact analysis of PFAS partial or total ban 05 PFAS usage in Chemical and Refining plants 06 PFAS alternatives 07 Conclusion
The chemical and refining industries are generally highly CAPEX intensive and needs to operate with high standard HSE
Characteristics of chemical industry: strong difference across segments
Chemical industry asset intensity
10%
180%
lHigh pressure and high temperature processes
30%
5%
15%
50%
Formulation business
Capex / Revenue
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Gross asset value / Revenue
Source: Accenture research
Capex / EBITDA
Priorities for Chemical Plants Design
Safety management High pressure High temperatures Potential hazardous materials Durability management Resistance to corrosion Mechanical stress and fatigue Return on Capital Employed Process optimization Maintenance requirements Maximize production efficiency Minimize energy consumption
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The impact of potential PFAS ban will depend on extent and duration of potential derogations - long lead time to adapt
No alternative for core
equipment
Business case
Closure
-........ ------------------------------------------------------------------------------------------------------------
Mothballing
R&D to identify alternative technologies (10 yrs. +)
Plant transformation
Existing Plants
New Investments
Identified alternatives
No alternative for core
equipment
Identified alternatives
Business case
(ROCE)
C.lo.s.u.r.e...
Engineering (6 months - 1 yr.)
..,_<.!)Pla--n--t-S--h..u--t+down
Plant
transformation (6 months - 2 yrs.)
Procurement of alternative materials and ramp up of new supply chains
(1 - 10 yrs. depending on equipment)
Investment in alternative location
--
- Client qualifications
' ' ' '
(where relevant) ""'
1
-
-
-
-
-
-
-
-
-
-
-
-
-
"
.,"
Business case /
feasibility
Investment in alternative location
Engineering
Procurement
Construction
> FlRtA:NnC~En~'=(:0)(0)etnmeorglJieilsits Sources: Survey of Chemical players, Accenture analysis
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The impact of a PFAS ban on the chemical industry would be massive both for existing plants and new investments
Expected impact from PFAS ban on chemical and refining plants in France
Existing plants (when alternative exists)
New investments
Increased maintenance expenditure: x [2-3] vs baseline
Potential temporary shutdown of plant to adapt installation with PFAS free alternatives when available: 6 months - 2 years
CAPEX requirements to modify plants: 20 to 50% of plant to be rebuild
Client requalification of process (lost revenue): 6 months to 2 years
Higher CAPEX than existing plants: + [15-60]% increase Higher running cost: increased maintenance cost x [2-3] Impact on plant availability
Decision: Transformation of plant or shutdown Timing: Depending on potential derogations and timeline
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Sources: Survey of Chemical players, Accenture analysis
Decision: Go / No go for new plant in Europe Timing: Immediate
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For existing plants, impact of one-off cost could represent up to 6 months to 1 year of revenue and 20-30% of EBITDA impact
Expected impact from PFAS ban on chemical and refining plants in France
Dimension
Increased maintenance expenditure: [2-3] x baseline
Impact x[2-3] higher maintenance cost
Potential shutdown of plant to adapt installation with PFAS free alternatives when available
6 months - 2 years shutdown
CAPEX requirements to modify plants
20-50% of plant to be rebuild with higher cost materials
Baseline
Maintenance cost index: maintenance cost / gross asset value = 1.5-3%
Asset intensity: Gross asset / revenue = x [0.5-2]
Loss of revenue and gross margin = 50-100%
Gross margin = 30-50% of revenue
Financial estimate 3-5% of revenues every year
(approximatively 20-30% of EBITDA)
One off impact: 25-50% of revenue over 6 months to 2 years
Potential longer-term loss of clients due to supply interruption
Asset intensity in chemical: gross asset value / revenue = x [0.5-2]
15-60% CAPEX increase for PFAS free alternative (when existing)
One off impact: 30-50% of revenue for medium asset intensity business
Client requalification of process (loss of revenue): 6 months to 2 years
Loss of revenue or reduction in gross margin due to the sale of products to alternative channels
Highly variable depending on the customer segment (commodity vs specialties in highly demanding sector e.g., semi conductor)
To be confirmed
Potential decision to shut down plant or part of the plant due to unfavorable ROI
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Sources: Survey of Chemical players, Accenture analysis
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For new plants, higher CAPEX and increased running cost could deter new investments
Expected impact from PFAS ban on chemical and refining plants in France
Dimension CAPEX requirements to modify plants
Increased maintenance expenditure: x 2-3** vs baseline
Impact 15-60% CAPEX increase for PFAS free alternative (where existing) *
x [2-3] higher maintenance cost
Baseline Asset intensity in chemical (gross
asset / revenue) = [0.5-2]
Maintenance cost index: maintenance cost / gross asset value = 1.5-3%
Asset intensity: Gross asset / revenue = [0.5-2]
Financial estimate
One off impact: 15-60% of revenue for medium asset intensity business
Potential decision to build plant in alternative location, especially for export business
3-5% of revenue every year (~20% of EBITDA)
Potential decision to relocate the investments abroad
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*Procurement cost of chemical plant EPC project: ~30% of total CAPEX . Procurement is estimated to increase by 1.5 to 3x for PFAS-free alternatives based on data collected from
chemical companies. **According to chemical companies' maintenance cost assessment Sources: Survey of Chemical players, Accenture analysis
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The chemical industry highlights the potential need to close sites in order to comply with an eventual PFAS-ban regulation
Operational impact
[50-60]% of the lined piped and accessories of the site need to be replaced. It will be very difficult for us in terms of cost and time if we face an immediate ban
If there is an immediate ban on all electrolysis membranes, we will have to shut down all the facilities on the platform
On some occasions, replacements of equipment with substitutes are possible
Customer qualification will last between 6 to 18 months to confirm that product quality is not affected by the change
If alternatives exist, it will take up to [1-2] years to replace all equipment and get the regulatory validations
The difference in weight with PFAS-free equipment could compel us to undertake reinforcement work on the structures of our installations
Depending on the substitute, maintenance will have to be more frequent (from 1 every three years to 1 every year), and therefore more costly
Since all the facilities are interdependent, we will have to shut down
the whole plant
Economic impact
If we obtain a time derogation, we will be able to smooth the
Decrease in turnover caused by relocated investments and loss of clients
CAPEX over years. Otherwise, the cost will be unbearable
Substitutes for gaskets are 2 times more expensive than PTFE,
The activities to discontinue represent a turnover of 50-100M in 2022
substitutes for equipment made or coated in PVDF are 5 times more expensive and substitutes for equipment with small parts in PFAS are
3.5 times more expensive
It might be more convincing to rebuild "PFAS free" plant out of scratch then replacing an existing site with PFAS
1 year of shutdown will cost us 1 year of turnover
Social and Environmental
impact
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The totality of jobs on the site will be affected by a shortterm PFAS ban
Review of all waste treatment processes and introduction of emission controls with analytical monitoring of water and air
An immediate ban will impact our employees: up to 240 direct jobs and 1000 indirect jobs could be lost
Hazard study will need to be revised Reinforced medical monitoring of personnel
Source: Survey from a sample of 10 chemical companies' representative of the industry
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Table of Contents
01 Executive Summary 02 Scope and methodology 03 Overview of PFAS 04 Impact analysis of PFAS partial or total ban 05 PFAS usage in Chemical and Refining plants 06 PFAS alternatives 07 Conclusion
Identifying PFAS in chemical and refining plants is a challenge for many players
Limited focus from Engineering and Regulatory Teams on PFAS used in industrial equipment
Engineering responsibilities often lie within external parties
Equipment and material selection prioritize functional specification such as temperature, pressure and chemical compatibility requirements over PFAS presence
Regulatory teams primarily concentrate on assessing the compliance and safety of raw materials and additives used in final products
Widespread presence of various PFAS in many equipment
Multiple and different equipment exist in a chemical plant PFAS are used in a wide range of equipment such as:
- Pipes - Valves (Body, Washers & Gaskets) - Pumps (Coating & Gaskets) - Columns - Sensors ...
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Source: Survey of Chemical players and suppliers
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Many equipment containing PFAS are similar for the whole industry while some are specific to certain chemical processes
Core equipment containing PFAS identified during the workshops and through report analysis*
Equipment containing PFAS common to all companies**
Category of equipment
Process units
Other Products
Power, Utilities & Electronics
Safety and Protection
Joints/ Gaskets
Valves Piping
Vessels Pumps
Refrigerant gas Paint***
Grease Lubricants
Electric
cables/
wires
Semi-
conductor
Measuring
instrument
Batteries
Circuit Breakers
PPE
Firefighting Foams
Equipment containing PFAS specific per company
Company groups
Chlorine
#1
chemistry
#2
Petrochem/ #3
Refinery
#4
#5
Specialized #6
chemistry
#7
(incl. fine
#8
chemicals) #9
#10
Aneaqluyitpic.al Membrane
Filter
Balloon
Ejector
Reactor
ExcHheaantger LabEqouraipto. ry Decanter Hydrolyser Separator
Agitator
Mixer Exppaontsion Emulsifier Micronizer
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*This table is not exhaustive. **The 10 companies have the following equipment containing PFAS in their plants. ***Paint for buildings & external structures. : equipment
containing PFAS Source: Survey of Chemical players and suppliers
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2023 Accenture. Ali rights reserved.
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Companies identify 3 groups of PFAS, representing ~30 types of PFAS - a small subset of the overall PFAS landscape
Identified PFAS substances
Solid State
Fluoropolymers
FKM (Viton, Tecnoflon, Dyneon,...)
FFKM (Kalrez, Tecnoflon,...)
PTFE (Teflon, Gylon) FEP PFA PVDF (Kynar, Hylar,
Solef) ETFE PCTFE ECTFE
PFAS compounds
PFSA** PFCA**
Liquid State
Lubricants
PFAE PFPE PFPAE PCTFE (Voltalef)
Firefighting foams
C6 Foams (SFPM***)
Gaseous State
Refrigerant gases
R22 R134 a R404 a R407 a R407 c R410 R427 a R507
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*PFAS lists are not exhaustive, the brand names identified are presented in (italic), **PFSA and PFCA are not fluoropolymers, ***Film-forming alcohol-resistant fluor synthetic
emulsifier Source: Survey of Chemical players and suppliers
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2023 Accenture. Ali rights reserved.
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Different types of PFAS can be found in various equipment, depending on their use (1/2)
Identified PFAS in process units' equipment during the workshops and through report analysis
Equipment
Process unit equipment
Gaskets Valves Vessels Piping Pumps Reactors Membranes Ejectors Laboratory Equipment Filters Agitators Balloons Decanter Hydrolyser Micronizer Separator Heat Exchanger Analytical Equipment Expansion Pot Mixer
PTFE
PVDF
PFA
FFKM
FKM
PCTFE
FEP
ECTFE
PFSA
PFCA
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Source: Survey of Chemical players and suppliers
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Different types of PFAS can be found in various equipment, depending on their use (2/2)
Identified PFAS in three other categories of equipment during the workshops and through report analysis
Equipment
Other Products
Lubricant Grease
PTFE PVDF PFA FFKM FKM PCTFE FEP ECTFE ETFE PFPE PFAE PFPAE SFPM*
Pexatinetrnfoalr sbturuilcdtiunrges &
Power,
Utilities and Electric wires
Electronics
Circuit Breakers
Semi-conductors
Batteries
Minestarsuumrienngts
Safety and Protection PPE
Firefighting foams
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*C6 Foams Source: Survey of Chemical players and suppliers
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Different types of PFAS can be found in various equipment
Identified PFAS during the workshops and through report analysis*
Type of industrial
Cchhelomriisntery #1
#2
Petrochem/
Refinery
#3
Fluoropolymers
Lubricants/ R-gas
PTFE PVDF PFA FFKM FKM PCTFE FEP ECTFE PFSA PFCA Grease
#4
SCpheecmiaislitzreyd #5
(incl. fine
chemicals)
#6
#7
#8
#9
#10
Firefighting Foams
Main equipment
Gaskets, Piping, Valves, Vessels, PPE
Gaskets, Piping, Valves, Vessels, PPE
Pumps, Analytical equip., Membranes,
Filters
Gaskets, Piping, Valves, Vessels, PPE
Balloons, Ejectors, Reactors, Heat
Exchanger
GPuamskpests, Piping, Valves, Vessels, PPE
GPuamskpest,s,MPeipminbgra,nVeaslv, eLsa,bVoerastsoerlsy,ePqPuEip.
GPuamskpest,s,MPeipminbgra,nVeaslv, eRse,aVcetossrsels, PPE
GMaesmkebtrsa,nPeisp,inHge,aVt aElxvcehsa, nVgeessr,eRlse,PaPcEtors
Gaskets, Piping, Valves, Vessels, PPE
Decanter, Heat Exchanger, Hydrolyser,
Reactors, Filters, Separator
Gaskets, Piping, Valves, Vessels, PPE
Pumps, Agitator, Ejectors, Mixer,
Filters, Expansion Pot
GEmasuklesitfsie, rPsip, Minigc,roVnailzveers, Vessels, PPE
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*Note that this table is not exhaustive Source: Survey of Chemical players and suppliers
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Several properties are sought in Fluoropolymers, making them the predominant category of PFAS found in chemical equipment
Properties of PFAS
Chemical Properties
High resistance to corrosion: Resistance to aggressive products (pH<1) such as nitric acid and chloride acid
Chemical inertia: Material that degrades little over time, limited product contamination (i.e., no impurities)
Resistance to permeation and capacity to prevent migration of gases, liquids, and chemicals through material
Thermal Properties
Wide operating temperature range: As example, PTFE has a temperature range of [-240-260] C and can withstand high temperatures without degradation
Mechanical Properties
Resistance to pressure: Some chemical processes require high pressure
High tensile strength: Can withstand mechanical stress and deformation
Low friction coefficient: Non-stick and lubricants properties
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Sources: Survey of Chemical players and suppliers, Desktop research, Accenture analysis
Copyright 2023 Accenture. Ali rights reserved.
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PFAS joints, pipes, valves and refrigerant gases in chemical plants are chosen for one or more of these properties (1/4)
Focus on joints
Type of joints
Static joints
Dynamic joints
Common functions
Static sealing: Sealing between two parts with no (or very low) relative movement
Dynamic sealing: Sealing between two parts with relative rotational and/or translational movement
Types of PFAS present
e.g., PTFE, PVDF, PFA, FFKM, FKM, PCTFE, FEP, ECTFE
Desired properties
Mechanical resistance: tensile strength and limited swelling
Chemical resistance: resistant to chemical attacks
Mechanical resistance: high pressure (0 to 750 bar), low fatigue, high tensile strength
Thermal resistance: very low and high temperatures (-260 to +300 C)
Used when the application goes beyond the limits of traditional lip seals
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Sources: Eriks, Survey of Chemical players and suppliers
Copyright 2023 Accenture. Ali rights reserved.
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PFAS joints, pipes, valves and refrigerant gases in chemical plants are chosen for one or more of these properties (2/4)
Focus on piping
Type of piping
Internal coating
Solid piping
Common functions
Transport of highly acid or basic fluids under extreme temperatures
Transport of highly acid or basic fluids
Types of PFAS present
e.g., PTFE, PVDF, PFA, FFKM, FKM, PCTFE, ECTFE
Desired properties
Chemical resistance: corrosion resistance
Thermal resistance: operating temperatures from -200 to +260C
Chemical resistance: highly resistant to chemicals, rot-proof and mildew-proof
Thermal resistance: operating temperatures from -20C to +150C
Other properties: insensitive to ultraviolet rays, Highly waterproof, Non-flammable (UL V0)
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Sources: Mersen, Tecalemit, Survey of Chemical players and suppliers
Copyright 2023 Accenture. Ali rights reserved.
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PFAS joints, pipes, valves and refrigerant gases in chemical plants are chosen for one or more of these properties (3/4)
Focus on valves
Type of valves
Valves with some PFAS components
Common functions
Control flow of highly acid or basic fluids under extreme temperatures
Types of PFAS present e.g., PTFE (sleeve)
Desired properties
Chemical resistance: chemical resistant lining Thermal resistance: -30 < T < 210C Mechanical resistance: vacuum-proof lining
PFAS-only valves
Control flow of highly acid or basic fluids under extreme temperatures and high purity standards
e.g., PVDF (body), FPM (gaskets), PTFE (membrane)
Chemical resistance: resistant to acid and basic liquids
Thermal resistance: -30 < T < 120C
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Sources: Az-Armaturen, Sectoriel, Survey of Chemical players and suppliers
Copyright 2023 Accenture. Ali rights reserved.
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PFAS joints, pipes, valves and refrigerant gases in chemical plants are chosen for one or more of these properties (4/4)
Focus refrigerant gas
Types of F-gases
Common functions
Act as cooling agent in industrial applications by having a low boiling temperature
Types of PFAS present e.g., R-134a, R-410a, R22, R323, R404a, R407 a, R407c, R427a, R507
Desired properties
Heat transfer capacity Pressure-drop performance Chemical resistance: non-corrosive, non-flammable Boiling temperatures match required levels
>
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Sources: VISIOTECH, Survey of Chemical players and suppliers
Copyright 2023 Accenture. Ali rights reserved.
30
Risks of accidental release of PFAS in the environment varies by type of PFAS
Focus on factory operation phase
PFAS State
PFAS
Solid
Fluoropolymers: Fluoroelastomers Fluoroplastics
Liquid
Lubricant Grease Firefighting Foams
Gaseous Refrigerant gas
PFAS in contact with product
X X
Release risk 1. Environmental factors - Degradation over
time: a. Heat b. Erosion c. Chemical reaction or mechanical stress
1. Accidental spills or leaks during storage, transportation or handling
2. Evaporation due to over-heating
1. Leaks
Comments
Release of microplastics Leaching
Lubricant/grease mainly in contact with chemical equipment if released accidently during the process
Firefighting foam is released in the air after usage
Decomposition of gas in environment
>
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Sources: Survey of Chemical players and suppliers, Desktop research, Accenture analysis
Copyright 2023 Accenture. Ali rights reserved.
31
Few companies measure the presence of PFAS in their products
Company Groups
Chlorine chemistry
Company #1
Company #2
Petrochemicals /Refinery
Company #3
Company #4
Company #5
Company #6
Specialized chemistry (incl. fine chemicals)
Company #7
Company #8
Company #9
Company #10
Measurement in final product
X X X X X X Particle presence in the final product X X X
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Source: Survey of Chemical players
Measurement in waste water
Planned with evolution of regulation
One company interviewed serving specific industry (semiconductor) mentioned that they measure the presence of particles in the final product at ppb levels and that no PFAS traces are found
For a typical equipment (piping), the degradation of the PFAS is assessed by visual check of the damage to the pipe (perforation of the pipe due to permeation of chemical product through PFAS potentially creating leakage)
Copyright 2023 Accenture. Ali rights reserved.
32
For end-of-life, some measures exist for gases and liquids, while solid PFAS elimination is not controlled specifically
Focus on PFAS disposal phase
PFAS State Solid
Liquid
Disposal method in chemical plant
1. Ordinary Industrial Waste (OIW) i. Metallic Metal-specific waste bucket ii. Common Ordinary waste bucket
2. Hazardous Industrial Waste (HIW) i. Equipment-Specific/PFAS-Specific
End of Life Incineration Recycling Specific treatment
1. Stocked in special drums
For lubricants/grease:
Incineration
Recycling: regeneration to obtain a new lubricant
Gaseous 1. Gas capture with specific treatment
Mandatory Maintenance Periodic recycling Organized recovery
Measure specific in place
X
Comments
Release of pollutants and ash residues into the atmosphere if incinerated
Regulation for the recycling of lubricants
Release of pollutants
and ash residues into
the atmosphere if
incinerated
EU F-gas regulation in place
Gas treatment is
subcontracted to
specific companies
>
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nergies etmolJilits
Sources: World Health Organization, Survey of Chemical players, Desktop research, Accenture analysis
Copyright 2023 Accenture. Ali rights reserved.
33
Table of Contents
01 Executive Summary 02 Scope and methodology 03 Overview of PFAS 04 Impact analysis of PFAS partial or total ban 05 PFAS usage in Chemical and Refining plants 06 PFAS alternatives 07 Conclusion
PFAS have technical alternatives for some applications, coming from different material classes
Focus on identified PFAS alternatives by categories
In chemical plants, most PFAS exist in solid state
Solid State
Materials in Chemical Equipment
Liquid State
Gaseous State
Polymers
Plastics PVC (PVC is x15 less
expensive than PVDF)*
PEEK (PEEK is x10 more
expensive than PTFE )**
PPS PSU Elastomers NBR EPDM
Metals
Other Materials
Stainless Steel
Glass
Nickel Alloys
Ceramics
Hastelloy (An Hastelloy
Graphite
valve is 7-12 more expensive than
one in PTFE)***
Exotic material (Tantalum, Zirconium, Titanium)
Lubricants / Grease
Graphite
Molybdenum
Foams Hydrocarbons Detergents Siloxanes Proteins
R-gas
Ammonia CO2 Hydrocarbons (e.g.,
Propane/Methane)
For some applications, such as electrolysers membranes, there are no substitutes identified to this date
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Sources: *Valve supplier interview (however chemical / thermal resistance of PVC not suitable for all applications . **Performance plastics supplier. ***French ChemCicoapl yprliagyhetr 2023 Accenture. Ali rights reserved.
interview | Desktop research, Accenture analysis
35
However they often do not match all the properties of the original substance, making them less desirable (1/3)
Other polymers: focus on Thermoplastics
Thermal Resistance
Symbol Material name
Fluoropolymer PTFE
PFA
Alternatives
PVDF
PEEK PPS PSU PEI
Polytetrafluoroethylene
Perfluoroalkoxy polymer
Polyvinylidene fluoride
Polyetherketone
Polyphenylene sulfide
Polysulfone
Polyetherimide
Table 1: List of selected heat-resistant plastics
Max. working T. [C] 260
150
150 250 240 150 170
Hydrochloric acid
Sulfuric acid
Nitric acid
Tetrahydrofuran (THF) Dimethyl sulfoxide (DMSO) Chloroform
PEEK Fair Poor Poor Poor Poor Poor
Table 2: Chemical resistance PEEK | PTFE
PTFE Good Good Good Good Good Fair
In terms of working temperatures alone, there are alternative plastics available for certain PFAS.
For instance, PEEK is a possible alternative for PTFE in a very large domain of chemicals but with limitations in some applications (e. g. in strong or oxidizing acid and in some solvents)
(ASTM 2000, SAEJ20)
Heat Resistance*
325 300 275
250 225 200 175
150
125 100
75 50
FFKM
VQM
AEM
Fluoroelastomers FVQM FKM/TFE-P
EPDM
+
+
CSM CPE
+ CR +
+
- ACM-
HNBR ECO + NBR
IIR SBR
NR
Not required
140 120
100
80
60
40
30
20
10
Oil Resistance, [%] Volume Swell in ASTM No. 3 Oil, 70 hours exposure
Figure 1: Elastomer families plastics rated against heat and oil resistance3
The ASTM swelling test for elastomers show that in the domain of high temperature (>200C), there is no alternative for fluor elastomers
> te:o~o= * Maximum time at which vulcanizates can be aged for 70 hours with changes in tensile strength 30%, elongation -50% and hardness 15points
FRANCE~ ~
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Sources: 1.Design and Manufacturing of Micro-Turbomachinery Components with Application of Heat Resistant Plastics, June 2018.
2.https://www.glsciences.com/technique/technique_data/lc/usage_of_hplc_1/column12.html. 3.Choosing the right elastomer for the right application Stahl W, WorldCopyright 2023 Accenture. Ali rights reserved.
36
Pumps, 2006, 481, 2006 Oct, pp 30-33
However they often do not match all the properties of the original substance, making them less desirable (2/3)
Other polymers: focus on Thermoplastics
Overview of Chemical Resistance of Resins to Chemicals at 20C
30 Days of constant exposure causes no damage. Plastic may E tolerate for years
Little or no damage after 30 days of constant exposure to the reagent G
Some effect after 7 days to reagent. The effect may be crazing, F cdrisaccoklionrga,tlioosns of strength or
Not recommended. Immediate damage may occur. Depending on the plastic, the effect may be N severe crazing, cracking, loss of strength, discoloration deformation, dissolution or permeation loss
PFAS
ETFE
FEP/TFE/ PFA
FLPE
Awceiadks, dilute or E E E
Acids, *
strong/concen
E
E
G
trated
Alcohols, aliphatic
E
E
E
Aldehydes
E
E
G
Bases/Alkali
E
E
F
Esters
G
E
G
Halyipdhroatcicarbons, E E E
Haryodmroactiacrbons, G E E
Hhayldorgoecnaartbeodns, G E G
Ketones, aromatic
G
E
G
OAgxeidnitzsin, gstrong E E F
FLPP E
G
E G E G G N F G F
Alternatives
HDPE
LDPE
PC
E
E
E
G
G
G
E
E
G
G
G
G
E
E
N
G
G
N
G
F
G
N
N
N
N
N
N
N
N
N
F
F
F
PETG G
N
G G N G G N N N F
PP E
G
E G E G G N N N F
PVC E
G
G G E N G N N F G
TPE** G
F
E G F N E N F N N
For thermoplastics, PFAS alternatives cannot offer
the required broad chemical resistance combination for all industrial applications
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* Except for oxiding acids. ** TPE gaskets Sources:. Chemical Compatibility Chart - LDPE, HDPE, PP, Teflon Resistance
Copyright 2023 Accenture. Ali rights reserved.
37
However they often do not match all the properties of the original substance, making them less desirable (3/3)
Focus on Metals & Glass
Comparing the properties of metals and glass with fluoropolymers
Metals and glass offer lower levels of resistance in terms of chemical resistance and formability as fluoropolymers when compared
Potential alternatives to fluoropolymers
Thermal resistance
Mechanical resistance
Chemical resistance
Metals (eg. Rare Metals, Alloys, SST)
Equivalent or better
Equivalent or better
Worse or equivalent (eg. Ta)
Glass
Equivalent
Worse
Worse
Formability
Equivalent or worse (shape creation)
Worse
~------------------, Metals and glass rated against corrosion resistance and thermal conductivity
high
SiC
Thermal conductivity
Ta
Ni alloys / Ti /Zr
Graphite
low low
Stainless steel
Glass Corrosion resistance
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Sources: 1.SGL carbon, Desktop research, Accenture analysis
PTFE
1
L------------------
high
Graphite, SiC (Silicium Carbide) and Tantalum can offer alternatives to PTFE in terms of chemical resistance
The brittleness of SiC makes it not ideal for equipment as reactors, agitators or columns
Copyright 2023 Accenture. Ali rights reserved.
38
Chemical companies have started identification of some alternatives to PFAS-based equipment
Alternatives* identified by chemical companies in workshops
Type of industrial Equipment
PFAS
Alternative
Chlorine chemistry
#1 Common**
Piping Refrigerant gas
PTFE, PVA, PVDF No information
Enameled steel Propylene (R-1270)
#2 Considers that alternatives exist depending on the use case but did not identify specific alternatives
Petchems/Refinery
#3 Did not identify alternatives for the moment #4 Did not identify alternatives for the moment
Gaskets
PCTFE
Nickel gaskets
#5 Common
Valves - body
PCTFE
Vespel
Piping (tubes)
PFA
Natural PEHD
Gaskets
PTFE
EPDM, NBR
#6 Common
Refrigerant gas
R407, R410, R22
Ammonia
Vessels
PVDF
Polyethylene and polypropylene, Stainless steel
Gaskets
PTFE
Metallic gaskets, graphite gaskets
#7 Common
Piping Vessels
PTFE PVDF, ECTFE
Hastelloy, glass lining, Nickel, TPM, FRP, Stainless steel Graphite, SiC (silicium carbide)
Specialized chemistry (incl. fine chemicals)
Specific
Valves Heat Exchangers Piping
PTFE, PFA, PVDF PVDF, ECTFE PVDF
Exotic metallurgic, TPM or FRP (no return of experience) Graphite, SiC (silicium carbide) PVC/SVR, Steel
Common
Piping
PTFE
Enameled steel
#8
Vessels
PDF
Stainless steel, Nickel-based alloy
Specific
Filters Heat Exchangers
PTFE PTFE
Stainless steel Graphite
#9 Common
Piping Refrigerant gas
PVDF, PTFE R22, R134a,R404 a, R407, r427a,
Enameled steel, glass CO2 or Ammonia
Piping
PTFE
Hastelloy, glass lining
#10 Common
Valves
PTFE
Enameled steel, Hastelloy
Refrigerant gas
No information
Ammonia
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*Alternatives have been identified only for certain use cases and limits to alternatives are presented in slide 34 and 35. **Common as common equipment to all the
companies
Copyright
Sources: Survey of Chemical players and suppliers
2023 Accenture. Ali rights reserved.
39
The industry has identified some potential substitutes for the following PFAS equipment for certain use cases (1/2)
PFAS and alternatives identified in gaskets and piping equipment*
Equipment Gaskets
Illustration
Piping
PFAS PCTFE, PTFE PTFE
PTFE, PFA, PVDF
Alternative
Metallic (e.g., Nickel) gaskets
Graphite or Mica (silicate) gaskets
EPDM, NBR**
Organic/mineral fibre gaskets
TPM (Thermoplastics materials) (HD-PE, PP, U-PVC, C-PVC), SVR
FRP (Fiber Reinforced Plastic)
Hastelloy
Glass lining
Alternatives' limits Compatibility issues with some gases (e.g. CO), very high cost, requires the replacement of all affected fittings Possible contamination issues
Lower Chemical resistance (less safety in chemical plants, higher emissions) Sealing level reduced by x(100-1000), Shorter life span
Lower upper temperature limit and lower chemical resistance
Lower upper temperature limit and lower chemical resistance
Material heavy weight can induce changes in structural design changes of supports and civil construction Mechanical fragility
Enamelled Steel, Nickel, Mounting constraints, Lower resistance to chemical reaction Titanium
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*The list of PFAS and alternatives identified is not exhaustive. **EPDM and NBR have insufficient chemical resistance for chlorine, sulfuric acid and nitric acid. In addition,
NBR has insufficient chemical resistance for ammonia
Copyright
Sources: Unique Polymers; sgl carbon; Debrunner Acier, Survey of Chemical players and suppliers, Desktop research, Accenture analysis
2023 Accenture. Ali rights reserved.
40
The industry has identified some potential substitutes for the following PFAS equipment for certain use cases (2/2)
PFAS and alternatives identified in valves, refrigerant gas and coating*
Equipment
Valves Bodies (large components)
Illustration
Valves - Washers** (Intermediate components) Valves - Gaskets
Refrigerant gas
Coating
PFAS PCTFE PTFE
PTFE
Alternative
Vespel
Enamelled steel valves, Hastelloy Noble metal grade
Polyethylene
Alternatives' limits No specific limits identified except high cost Higher friction coefficient and lower sealing capacities, low availability
Lower upper temperature limit
FPM, FKM, Viton, PTFE
R-Gas
EPDM Ammonia
CO2
Hydrocarbons (e.g., Propane/Methane)
PTFE, PVDF
PPV, Epoxy, Polyester, Melamine
Lower chemical resistance (less safety in chemical plants, higher emissions), not suitable for all application
Higher risks due to toxicity, not suitable for chlorine processes, impact on refrigerant auxiliary system design and on energy consumption
Much higher-pressure requirements than r-gas for cooling, impact on refrigerant auxiliary system design and on energy consumption, narrower applicable temperature range, mainly applied in commercial refrigeration
Highly flammable gas, impact on refrigerant auxiliary system design and on energy consumption, high GHG impact, mainly applied in commercial refrigeration, temperature of use must not be too high***
Lower UV durability, corrosion resistance (e.g., for seaside applications) and resistance regarding high temperatures
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*The list of PFAS and alternatives identified is not exhaustive. **Parts ensuring friction and sliding. ***The temperature difference between the desired cooling temperature and
the outside temperature should not be too great, this is due to the specific properties of propane as a refrigerant. Sources: Fergusonindustrial, Alundong, BuyBestAc, Survey of Chemical players and suppliers, Desktop research, Accenture analysis
Copyright
2023 Accenture. Ali rights reserved.
41
Although for some equipment, it's very challenging to find an alternative
Equipment
Membranes & diaphragms for Electrolysis
Illustration
PFAS PFSA, PTFE (Nafion, Aquivion)
Why no alternatives
Some alternatives banned in Europe (mercury, asbestos)
There is no technical solution to date that can perform efficiently the filtration, the separation and the selectivity
>
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Sources: Denora, Survey of Chemical players and suppliers, Desktop research, Accenture analysis
Copyright 2023 Accenture. Ali rights reserved.
42
Aside the material performance, the alternatives have other drawbacks that would make substitution challenging
Safety of the future installations
As they are not widespread use material, need to demonstrate performance in the long term of existing alternatives. Some known reduced performances: sealing performance, emission
International design standards for PFAS based equipment well established in the industry
Alternatives development
Process potentially lasting many years, requiring:
- R&D
- Testing
- Approval from certifying bodies and clients
Long guarantee of new products required by clients (typically around 10 years)
Production asset and supply chain adaptation
Production asset debottlenecking:
- New sites to be build from scratch for some materials and equipment (e.g., high nickel alloy or ceramic piping used in niche applications)
- Important brownfield modifications on existing installations (e.g., gaskets)
Challenges in procuring potential alternative material (e.g., tantalum)
>
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Sources: Survey of Chemical players and suppliers, Accenture analysis
Properties of alternative materials
To satisfy the desired properties for equipment the alternative materials to PFAS will also be persistent materials, which will could bring similar challenges to PFAS long life
PFAS presence in alternative materials / equipment
PFAS potential used to improve performance of alternatives:
- Some alternatives coated with thin layer of PFAS
- PFAS surfactants used in the production of nonPFAS polymers identified as theoretical substitutes to PFAS polymers
Copyright 2023 Accenture. Ali rights reserved.
43
Table of Contents
01 Executive Summary 02 Scope and methodology 03 Overview of PFAS 04 Impact analysis of PFAS partial or total ban 05 PFAS usage in Chemical and Refining plants 06 PFAS alternatives 07 Conclusion
Chemical and refining companies identify 4 sets of challenges associated with a ban of PFAS use in industrial equipment
Summary of challenges identified by chemical companies
No known alternatives to date for some equipment and unfavorable performance of already identified materials
~o Insufficient supply chain maturity with little to no capacity for alternatives
J,
OD
identified
Substantial impact on indirect costs (maintenance) and impact on utilization (more frequent failure / maintenance activities)
IlJ1 t:J) High CAPEX required to transform plants linked to use of PFAS in core equipment and severe commercial impact linked to interruption of production
>
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Sources: Survey of Chemical players and suppliers, Desktop research, Accenture analysis
Copyright 2023 Accenture. Ali rights reserved.
45
Workshops with the chemical companies allowed to identify potential improvement of PFAS management in plants
Potential improvement of PFAS management
1 Traceability of PFAS in Equipment
Attributes like type, quantity, origin, ... of PFAS needs to be identified in each chemical equipment (e.g., material passport)
Manufacturers of PFAS containing equipment to be made accountable
2
More stringent control of PFAS degradation and end-of-life management
Chemical and refining companies to enforce more stringent control of PFAS degradations (e.g., monitoring of potential degradation of PFAS materials, measurement of traces in end products and waste waters, ...)
C)
IlJi
Potential more stringent segregation of PFAScontaining equipment at end-of-life by industrials
Communication with regulators and the public to be reinforced
3
Collaboration between suppliers and chemical companies
Chemical companies to jointly work with equipment and material suppliers to accelerate development of alternatives
Need to provide more specific requirement for chemical plant operations and to test new products from suppliers
>
ut:n~n: FRANCE'=00nergies ~()()etmolJilits
Sources: Survey of Chemical players and suppliers, Desktop research, Accenture analysis
Copyright 2023 Accenture. Ali rights reserved.
46