Showing posts with label PP. Show all posts
Showing posts with label PP. Show all posts

Wednesday, 11 March 2026

Plastic Part Failure Analysis - Example Recycled PP Pallet Corner Cracking in Cold Warehouse

Hello and welcome to this plastic failure analysis post. Apart from polymer material selection, and preventing plastic part failure, I focus in my role as certified plastics expert witness to support the polymer engineering community in solving failed plastic part cases. 

Example recycled PP pallet corner cracking in cold warehouse

Overview on the situation

  • Part / material: Pallet (EUR/EPAL-Palett; 800 mm × 1.200 mm × 144 mm) made out of mechanically recycled polypropylene (rPP). 
  • What happened and which failure was observed (Figure 1): Corner cracks and brittle fracture of corner area after it was dropped at low temperature (below 10°C).

Figure 1: Example plastic failure analysis - broken corner of a palett made out of recycled PP. 

Plastic part failure analysis

Figure 2 shows the steps of a general plastic part failure analysis protocol [1] which can be followed to obtain a solid root cause and take corrective actions to prevent failure in the future. In this post I focus on the steps "material analysis, determination of failure mode and cause, and corrective actions". 

Figure 2: Overview of the steps for performing a plastic part failure analysis. 

Root cause analysis and results:

  • Identification of material by using Differential Scanning Calorimetry (DSC): DSC is a thermal analysis technique used to observe thermal transitions in polymers. This includes identifying key characteristics such as:
    • Glass Transition Temperature (Tg): The temperature at which an amorphous polymer transitions from a rigid, glassy state to a more flexible, rubbery state.
    • Melting Points (Tm): The temperature at which crystalline regions of a semi-crystalline polymer melt.
    • Crystallization and Crystallization Rate: For semi-crystalline polymers, DSC can also reveal information about how they crystallize upon cooling.

Pellets and pallet sections were both analyzed with DSC and in both, pellets and pallet sections Polypropylene could be identified via the melt peak at 170°C (Figure 3). Apart from PP, Polyethylene (LDPE and HDPE) melting peaks could be identified and it is not unusual for recycled PP to contain LDPE and HDPE too. They are referred to as mixed polyolefins and use packaging and industrial waste as primary recycling source. Packaging waste contains often PS and PET too, which could not be found in our material samples. Also, three other polymers could be identified, which may come from the industrial waste stream: Polyoxymethylene (POM), Polyamide 6 (PA 6), and Polytetrafluorethylene (PTFE with the two transitions at 23°C and 340°C). Having altogether five polymers in a PP base polymer system has impact on the material and final part properties. 

Figure 3: DSC result of pellets and pallet - apart from PP, five other polymers were found. 

  • Property variability: Contamination with LDPE/HDPE/POM/PA 6/PTFE, and unknown additives lead to a variability in mechanical and thermal properties. Also, differences in melt viscosity (via MFR) could be shown. 
  • Degradation: Oxidative degradation from multiple heat histories due to processing resulted in a lower molecular weight and reduced toughness.
  • Impact modification: Insufficient impact modification for low-temperature use.
  • Part design and processing: Poor weld line strength due to contamination and poor flow during filling phase in injection molding.

Corrective action proposals

To address and prevent plastic part failure in the future, the following corrective measures should be considered:

  • Improve feedstock control: Implementation of tighter incoming quality checks, including MFR, DSC, ash content, and FTIR screening to detect contamination.
  • Add stabilization: Usage of a combination of hindered phenolic and phosphite antioxidants, keeping in mind any odor constraints.
  • Enhance impact resistance: Incorporation of impact modifiers (such as EPR/EPDM) and/or blend with virgin PP to maintain stable performance.
  • Optimize processing: Lower shear rates, reduce residence time, and improve venting and filtration (e.g., use of melt filters) during processing.

Prevention tips for part failure:

To enhance part reliability and prevent failures, the following best practices should be considered:

  • Design considerations: Account for the variability of recycled materials by incorporating optimized corners and radii, and by avoiding thin snap features in your designs.
  • Quality assurance: Implement lot-based mechanical testing, such as notched Izod or Charpy impact tests at the intended service temperature, to ensure consistent performance.

Applying these measures will help improve the durability and quality of our products.

If the application is cold-impact critical, rPP should only for non-critical components considered or require certified PCR grades.

Other examples from my case directory:

When Childhood Crumbles: Understanding Plastic Part Failure in LEGO® Bricks

Curious how I can best support you with your plastics challenges? 

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or contact me here directly. 

Thanks for reading & #findoutaboutplastics

Greetings, 

Herwig



Literature: 

[1] Jeffrey A. Jansen: Characterization of Plastics in Failure Analysis, Stork Technimet Inc / The Madison Group

[2] http://www.justerexpertwitness.com

[3] https://youtu.be/7P5AG5hkJao

[4] https://www.justerexpertwitness.com/case-directory

[5] Ehrenstein G, Riedel G, Trawiel P, Thermal Analysis of Plastics, Carl Hanser Verlag, Munich, 2004


Wednesday, 20 July 2022

Highly Filled PP Compounds - Materials for Improved Flame Retardancy, Cost, and Functionality

Highly Filled Polypropylene Compounds 

Hello and welcome to a new blog post. Today we discuss highly filled PP compounds as enabler materials for improved flame retardancy, cost, and functionality.

Some time an industry colleague said to me that if the application does not have a high temperature and precision demand, most of them will end up made out of Polyolefins (PP, PE): “PP can do the job”.

And we see more and more engineering polymer replacements (PA, PC, PBT) by PP with fillers (functional or non-functional). Therefore, let us have a look at highly filled PP compounds. 

Which types of highly filled Polypropylene are there and what are some major application fields for highly filled Polypropylene?

As a first overview we can cluster them in three groups: 

-Calcium carbonate filled PP: main drive is cost out and improved dimensional stability; calcium carbonate belongs to one of the most used inorganic fillers which increases the modulus of elasticity. Loading levels of 30 parts per hundred result in 11 % by volume. 

-Mineral filled flame retardant PP: main driver  is to comply with more stringent flame retardant requirements; Magnesium Hydroxide (MDH) can be used as flame retardant. 

-Graphite filled PP: main driver are Electrostatic discharge (ESD) applications such as fuel connectors, and fuel cell applications.

What filler levels can be realized?

For reaching certain stringent flame retardancy ratings with PP compounds, filler levels of flame retardant filler MDH can be 60-65% by weight. This would result in a composite density of 1.45 g/cm3. However, the balance need to be found between property reduction and processing capability. 

How to increase filler amounts to improve performance?

New technologies such as the patented PlastFormance technology (Guest interview here) allows loading a base polymer up to 80% weight and keeping still good flow capabilities for injection moulding. 

Examples of PP replacing engineering polymers

Also, we see talcum filled PP (min. 20% by weight) replacing ABS and long-glass fiber filled PP replacing short glass fiber PA.

Key for highly filled compounds is the understanding of filler shape, their size and how their surface is treated to be able to make a proper bonding with the base polymer. Using such compounds helps to enlarge your repertoire for polymer material selection

Thank you for reading and #findoutaboutplastics

Greetings,

Herwig 



Literature:

[1] https://phantomplastics.com/highly-filled-plastic-for-reduced-cost/

[2] Introduction to Polymer Compounding  Raw Materials, Volume 1 by Natamai Subramanian 


Saturday, 31 March 2018

Polymeric Material Selection: A Critical Factor In Making Successful Plastics Parts


Holding a high quality plastic part in your hands is a result of several product development steps. Having your product development and production process strategy properly aligned is half the success. The other half comes by considering five factors which influence your outcome in having best in class injection moulded parts (Figure 1) [1]:

  1. Part design: there are design rules for plastics part, especially for injection moulded parts which need to be followed. Polymers have anisotropic behavior compared to isotropic metal parts.
  2. Material selection: once application requirements are established and the base design of the part is done, selecting the material can start.
  3. Mould design and construction: designed in a way that the mould can withstand the moulding process and the polymer.
  4. Moulding machine selection: when the mould design is completed, the injection moulding machine selection should be done or it can be done in parallel to the mould design, depending on the data available.
  5. Moulding process: optimization of the process is the last step and often done incorrectly or not at all.

Figure 1: “From Art to Part”: Material Selection as one critical factor in successful plastic part production [1].
In this post, I keep the focus on the “material selection” factor, since it is a vital one. After the basic part design is done, it is time to review the part performance requirements. In general, a separation of material selection based on performance, processing, and costs can be done. Following questions you need to answer for your part:

- Which areas of performance do I need to consider for this application?
- Are mechanical performance criteria (strength, stiffness, toughness) dominating?
- Are electrical performance criteria (insulating polymers vs. conductive polymers) dominating?
- Are environmental effects (temperature, chemicals, radiation, time) dominating?

Furthermore, tolerance criteria on the part itself need to be taken into account. In case you have a tight tolerance part, low shrinkage materials are the preferred choice. Having thick sections in your part, filled polymers can help obtaining a good filled part.

After gathering all the data which is needed to answer the questions from above, you can start your material selection procedure and make your material shortlist for decision making. Usually, a typical material selection procedure covers three steps [3]:

  1. Application screening
  2. Generic family and specific grade identification
  3. Process selection and cost analysis
These three steps reconcile with the five critical factors for the making successful plastics parts.
Here are 9 more tips what can be considered in the phase of material selection [2]:
  1. Stress/strain curve: for plastics the stress/strain behavior is usually not linear up to yield. There are cases where the yield may be very slight or does not exist at all.
  2. Modulus of elasticity in tension vs. compression: the E-modulus in tension is not necessarily the same as that in compression.
  3. Young’s modulus (E-modulus): the plastic modulus of elasticity is low compared to that of metals.
  4. Plastics show anisotropic behavior: injection moulded parts made out of fiber reinforced plastics demonstrate anisotropic behavior.
  5. Mechanical behavior: in plastics parts mechanical behavior is influenced by the rate of straining of the material. It is a function of temperature and time as well.
  6. Creeping: in comparison to metals, plastic parts creep under load with time.
  7. Reduction in strength: plastic parts show a decrease in the strength with time. This is the case with static loads too.
  8. Environmental conditions: material properties of polymer-based products may change in certain environmental conditions.
  9. Additive package: most plastics have an additive package consisting out of heat stabilizers, fillers and glass reinforcements and this must be considered when specifying the material.
Once the material is chosen, the mould design (factor 3), injection moulding machine selection (factor 4) and processing (factor 5) can kick off.
Since there is not always a full engineering of the material properties needed, time saving material selection tips can help. Here are some rules of thumb for making an educated guess on plastics material selection [4]:
  • Trying out acrylonitrile butadiene styrene (ABS): it works for many applications and is in a reasonable price range. It is strong and relatively though, combined with a low melting point and good processing properties.
  • For a cheap solution and when surface aesthetics are not critical, polypropylene (PP) will do the job.
  • For having increased temperature resistance as well as higher impact resistance, polycarbonate (PC) is the next best candidate going from ABS.
  • For having a good overall aesthetics and transparency, polymethylmethacrylate (PMMA) is your material of choice. The downside is that it can be too brittle for certain applications. Considering a transparent PC, it will be tougher than PMMA, however the surface aesthetics might not fulfill your set of needs.
  • For higher engineering demands, aliphatic nylons are the best way to go. Particularly, the polyamide 6.6-GF30 is well established in lots of engineering applications, especially in Automotive. When higher temperatures are needed (120-140°C), aromatic polyamides (e.g. polyphthalamide (PPA)) will do the job.
Apart of the aforementioned guides, I developed a systematic way of selecting polymers which uses a funnel method. Here you can read an introduction and my book on this topic is available here . 
Success with your next material selection!
Thank you for reading!

Herwig Juster


Interested to talk with me about your polymer material selection, sustainability, and part design needs - here you can contact me 

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Literature:

[1] Distinctive Plastics Inc.:  The 5 critical factors to produce a succesfull injection moulded product, 2011
[2] B. S. Benjamin, "Structural Design with Plastics," Van Nostrand-Reinhold, 1961.
[3] Paul F. Kusy: Plastics Material Selection Guide, 1976

[4] Proto Labs: Materials Matter – The Material Selection Process