https://www.avient.com/resource-center?document_type=59&page=18
Versaflex™ HC TPEs for Laryngeal Mask Airway
reSound™ BIO TPEs with bio-renewable content
reSound™ BIO TPEs
https://www.avient.com/resource-center?document_type=59&page=10
reSound™ REC Recycled Content TPEs - Sustainable TPEs for automotive interiors
reSound™ REC Recycled-Content TPEs
reSound™ Ultra-Low Carbon Footprint TPEs (Chinese)
https://www.avient.com/resource-center?document_type=59&document_subtype=0&industry=0&product_family=0&product_name=0&op=FILTER RESULTS&form_id=resource_filter_form&page=10
reSound™ REC Recycled Content TPEs - Sustainable TPEs for automotive interiors
reSound™ REC Recycled-Content TPEs
reSound™ Ultra-Low Carbon Footprint TPEs (Chinese)
https://www.avient.com/knowledge-base/article/protecting-polymers-microbe-growth?ind[]=6601
Examine the research behind TPEs with antimicrobial additives
TPEs were determined to be most susceptible to microbial attack under the appropriate environmental conditions.
Take a closer look at the research behind TPEs with antimicrobial additives
https://www.avient.com/knowledge-base/article/protecting-polymers-microbe-growth?ind[]=6596
Examine the research behind TPEs with antimicrobial additives
TPEs were determined to be most susceptible to microbial attack under the appropriate environmental conditions.
Take a closer look at the research behind TPEs with antimicrobial additives
https://www.avient.com/knowledge-base/article/protecting-polymers-microbe-growth?ind[]=6599
Examine the research behind TPEs with antimicrobial additives
TPEs were determined to be most susceptible to microbial attack under the appropriate environmental conditions.
Take a closer look at the research behind TPEs with antimicrobial additives
https://www.avient.com/resource-center?document_type=59&document_subtype=216
Understanding TPE Performance for Enabling 5G Technologies
TPE Overmolding Solutions for Engineering Thermoplastics - White Paper
TPEs with Improved Barrier Performance - White Paper
https://www.avient.com/sites/default/files/2023-08/Maxxam BIO Bio-Based Polyolefin Formulations Product Bulletin.pdf
KEY CHARACTERISTICS
Formulated with bio-based resin and/or
10–50% filler from renewable plant sources,
Maxxam BIO formulations:
• Reduce product carbon footprint
• Achieve equivalent performance to standard
polyolefin formulations
• Provide good stiffness, durability, impact
resistance and UV stability
• Deliver good surface finish and are easy to color
• Enable customized performance characteristics
depending on application need
• Offer food contact compliance
MARKETS AND APPLICATIONS
Maxxam BIO formulations are suitable for use across
many industries and applications where traditional
polyolefin materials are used, including:
• Transportation Interior Applications -
Decorative profiles, trunk side liners, pillars,
T-cup
• Industrial - Structural parts, furniture
• Consumer - Household goods, personal care
items, packaging, office supplies, food contact
applications
• Electrical and Electronic – Housings, buttons,
junction boxes
SUSTAINABILITY BENEFITS
• Formulated with bio-based resin and/or
10–50% natural filler
• Utilize natural filler from renewable plant
sources including olive seed based powder
and cellulose fiber
• Offer a lower product carbon footprint
compared to traditional petroleum-based
feedstock
• Can be recycled at end of life
PRODUCT BULLETIN
CHARACTERISTICS UNITS
Maxxam BIO
MX5200-5036
Natural FD
Maxxam BIO
MX5200-5030
Natural FD
Maxxam BIO
MX5200-5030
Natural FD X1
Maxxam BIO
MX5200-5001
Maxxam BIO
MX5200-5033
Maxxam BIO
MX5200-5034
Maxxam BIO
MX5200-5035
Filler/Reinforcement Unfilled Unfilled Unfilled 30%
Glass Fiber
10%
20%
30%
Density
(ISO 1183) g/cm 0.90 0.90 0.90 1.12 0.96 1.03 1.12
Tensile Modulus
(ISO 527-1) @ 23°C MPa 1500 1000 1000 6400 1350 1650 2100
Tensile Stress
(ISO 527-2) @ 23°C MPa 27.0 20.0 20.0 75.0 13.0 14.0 15.0
Tensile Strain
at Break
% 5 50 50 3.0 50 37 18
Charpy Notched
(ISO 179) kJ/m 5 20 25 10 12 10 10
CHARACTERISTICS UNITS
Maxxam BIO
MX5200-5023
RS HS HI
Natural 70
Maxxam BIO
MX5200-5025
RS HS
Natural 70
Maxxam BIO
MX5200-5004
RS HS
Maxxam BIO
MX5200-5003
RS
Maxxam BIO
MX5200-5009
RS HS Natural
70
Maxxam BIO
MX5200-5024
RS HS
Maxxam BIO
MX5200-5022
RS HS
Filler/Reinforcement
15%
Olive Seed
Based
25%
Olive Seed
Based
30%
Olive Seed
10%
35%
Olive Seed
5%
15%
Olive Seed
17%
Glass Fiber/
20%
Olive Seed
20% Glass/
10%
Olive Seed
20%
Density
(ISO 1183) g/ccm 1.00 1.15 1.10 1.07 1.09 1.25 1.10
Tensile Modulus
(ISO 527-1) @ 23°C MPa 1750 2000 2700 2500 3800 3500 4100
Tensile Stress
at Break
MPa 21.0 20.0 30.0 20.0 40.0 35.0 42.0
Tensile Strain
at Break
% 24 5 3 5 3 4 2
Notched Izod
(ISO 180) kJ/m 15 7 3 2 5 15 7
MAXXAM BIO POLYOLEFINS – BIO-BASED RESIN – TECHNICAL PERFORMANCE
MAXXAM BIO POLYOLEFINS – OLIVE SEED BASED FILLER – TECHNICAL PERFORMANCE
CHARACTERISTICS UNITS
Maxxam BIO
MX5200-5029 NF HI
UV Black X1
Maxxam BIO
MX5200-5032 NFS
UV Natural
Maxxam BIO
MX5200-5020 NF/NFS
UV Natural X1
Maxxam BIO
MX5200-5016 NF
Natural
Filler/Reinforcement 10% Cellulose Fiber 20% Cellulose Fiber 30% Cellulose Fiber 40% Cellulose Fiber
Density
(ISO 1183) g/ccm 0.95 1.00 1.02 1.07
Tensile Modulus
ISO 527-1) @ 23°C MPa 1550 1750 2640 3600
Tensile Stress at Break
(ISO 527-2) @ 23°C MPa 33 30 48 55
Tensile Strain at Break
(ISO 527-2) @ 23°C % 8 12 9 4
Charpy Notched Impact
Strength (ISO 179/1eA) kJ/m2 5 6 5 5
Charpy Unnotched Impact
Strength (ISO 179/1eU) kJ/m2 33 49 38 30
MAXXAM BIO POLYOLEFINS – CELLULOSE FIBER FILLER – TECHNICAL PERFORMANCE
Copyright © 2023, Avient Corporation.
https://www.avient.com/sites/default/files/2023-11/Cesa Clean Processing Usage Guide.pdf
GETTING STARTED
TIMING IS THE KEY TO A RUNNING
COLOR CHANGE
Hand Blend
• Have the purge blend ready to load
• If hopper contains a mixture of resin, color and/
or regrind, it should be run dry or drained before
beginning the color change, keeping the screw
full so press cycle continues
• Run the main resin hopper dry or shut off hopper
to hand feed at the throat
• Once press is clean, slide hopper in place
and proceed with next color-resin blend
• The next color can be added while Cesa Clean is
still in the barrel
• When splay is no longer visible in parts, reset shot
size, parts should be ready to pack
(Single) Volumetric/Gravimetric Metering Unit
at the Throat
• Empty and clean feeder while press continues
to run
• Add Cesa Clean to the feeder color hopper and
calibrate to a 3.0% use rate
• When press is clean, start next color
• When splay is no longer visible in parts, reset shot
• Note: If an open/unused secondary feeder is
installed, use it for the Cesa Clean concentrate
Central Blending Unit
• Thoroughly clean unit while continuing to mold
parts, keeping a resin feed to the press
• Using a clean open hopper or regrind hopper, add
the Cesa Clean concentrate
• Set blender for additive/color to 3.0%
• Once press is clean, drain hopper and/or central
blending unit while continuing to mold parts
• Begin new color and continue to mold parts
• When splay is no longer visible in parts, reset shot
Process Adjustments That Can Help
• Increase back pressure
• Increase screw speed
• Increase injection speed (in some tools maximum
injection speed can facilitate cleaning)
• Reduce mold close time (faster cycle)
• Always remember a stock temperature of 400°F
is essential
When press and tool are clean, return all settings to
standard production process profile.
https://www.avient.com/sites/default/files/2025-05/Advanced Composites Utility Poles Product Overview.pdf
Our diverse portfolio of purpose-engineered electrical components include Glasforms™ fiberglass reinforced
insulator rods, guy insulators, crossarms, and pole profiles that meet the specific and rigorous demands of the
electrical utility industry, and have been trusted by major utility product manufacturers for decades.