Showing posts with label high heat polymers. Show all posts
Showing posts with label high heat polymers. Show all posts

Wednesday, 17 February 2021

Design Properties for Engineers – Processing Temperatures of High Performance Polymers

In this blog post, I present to you the processing temperatures of high performance polymers for injection molding.

For processing of high performance polymers equipment is needed which is capable of dealing with temperatures up to 450°C for the plasticizing unit and 250°C for the moulding tool (oil heating).

The figure below shows the mould and processing temperatures of the most used high performance polymers, together with the processing shrinkage values.

Figure: processing temperatures of high performance polymers for injection molding

Important to note is that certain wall cross sections and flow length ratios need to be fulfilled. Polymers such as PAI have a high viscosity. Therefore, wall thicknesses below 1.5 mm should be avoided. A wall thickness of 1 mm is possible with unreinforced PEEK. In case the part has a wall thickness of 10 mm, additional ribs prevent sink marks.

Commodity and engineering plastics show high processing shrinkage values. However, with high performance polymers, shrinkage values are much lower compared to engineering and commodity plastics. PEEK shows shrinkage values below 2.5 %. In general, shrinkage is in flow direction lower than cross flow direction. Additionally, it is important to have sufficient draft angels (around 2°).

Furthermore, attention needs to be paid to the forming of weld lines in the cavity, since high performance polymers have a high viscosity and this may result in a lower strength at weld lines (less entanglements). 

Thank you for reading and #findoutaboutplastics

Herwig Juster

Interested in my monthly blog posts – then subscribe here and receive my high performance polymers knowledge matrix.
New to my Find Out About Plastics Blog – check out the start here section

Literature:

[1] Sachtling Kunststoff-Taschenbuch


Sunday, 27 December 2020

Find Out About Plastics Blog – The Top 10 Most Watched Posts in 2020

 


The eventful year 2020 is drawing to a close and in this post I present you the top 10 most watched blog posts of 2020.

Starting from highest to lowest rank:

1.  Design Properties for Engineers: Weldline Strength of High Performance Polymers

2.   The Secret of High Performance Polymers: Why They Can Handle High Heat and Harsh Chemicals?

3.     Design Properties for Engineers: Chemical Resistance of High Performance Polymers

4.   EMI Shielding for EVs: Thermoplastic Compounds vs. Coatings – What is Better?

5.  What is the Difference Between an Industrial Designer and a Design Engineer? incl.Polymer Part Design Checklist [Guest Post]

6.     Plastic Part Failure – Part 1: Reasons

7.  Microplastics: What Should We Know About Them and How Are They Impacting Our Life?

8.  Design Properties for Engineers: Coefficient of Linear Thermal Expansion (CLTE) of High Performance Polymers

9.     Plastic Part Failure – Part 2: The Antidote

10. Strategic Sales and Marketing in Plastics Industry: My 2x3 Matrix Approach


Outlook

In 2021, I will continue to present posts which evolve around 4 main categories:

- Polymer material selection

- High performance polymers

- Design properties for engineers

- Rule of Thumbs in polymer engineering

Furthermore, I invite you all to leave topics you would like to read about in 2021 in the comment box below or leave me a short message here.

Last but not least, I would like to thank all readers of my posts!!!

I hope to welcome you next year again.

Thank you and #findoutaboutplastics,

Greetings,

Herwig Juster

Interested in my monthly blog posts – then subscribe here and receive my high performance polymers knowledge matrix.
New to my Find Out About Plastics Blog – check out the start here section

Friday, 24 July 2020

Design Properties for Engineers: Dynamic Mechanical Analysis (DMA) of High Performance Polymers

In this blog post, we have a closer look at the dynamic mechanical analysis (DMA), a thermo-analytical method that estimates the viscoelastic properties of a given material over the course of different temperatures. It steps away from a single point view toward a multipoint data view which is beneficial for polymer material selection tasks. 

DMA can be measured according ASTM D4065-94. Here, a fixed frequency of oscillation of 1 Hz and heating rate of 2°C/minute are defined. When performing the DMA it is important to cover the glass transition area for amorphous polymers as well as the melting point for semi-crystalline polymers. Results of a DMA are the storage or elastic modulus (E’), the loss or viscous modulus (E’’) and the tangent of the phase angle delta (E’/E’’). 

In the figure below, the storage modulus vs. temperature behavior of different high performance amorphous polymers is shown. They all show a significant drop in modulus in the glass transition region. Among the amorphous high performance polymers, PAI has with 275 °C the highest glass transition temperature. A continuous use temperature of 260°C is feasible. 

Storage modulus vs. temperature behavior of different high performance amorphous polymers 

In the next figure, DMA curves of semi-crystalline high performance polymers are shown. We can see a decrease in the modulus at the glass transition temperature. However, mechanical properties can be retained until the crystalline melting temperature.

PPS shows a glass transition of 88 °C and is fully melted at 270°C. From 80°C to 200°C the retained mechanical strength is still sufficient.

 DMA curves of semi-crystalline high performance polymers

Fluoropolymers have an excellent low temperature performance. This allows e.g. their usage as sealing gaskets at cryogenic temperatures where flexibility is needed. Storage modulus performance is high enough to provide the necessary mechanical performance, at low temperatures (down to -200°C) as well as at high temperatures (up to 250°C).

DMA curves of fluoropolymers

Thank you for reading!
Best regards and #findoutaboutplastics

Herwig

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Monday, 13 July 2020

Metal replacement with High Performance Polymers: How to Design for Equivalent Part Stiffness?


In this blog post, I show you how to substitute a metal part by high performance polymers. In this case the replaced metal is magnesium.

There are two approaches on how to substitute metals with other materials such as Polyphthalamide (PPA), a high performance polymer. In the first approach, we increase the cross-sectional thickness to provide increased stiffness. In the second approach, increased stiffness is achieved by adding ribs. 

First approach: changing wall thickness

In general, deflection is proportional to the load and length of the part. Furthermore, deflection is inversely proportional to the modulus of elasticity and moment of inertia. For the first approach we need the deflection (Y) equation of a beam with a uniform distributed load F (Equation 1). Both ends of the beam are fixed. Then, we equate the deflections of metal and plastic (Equation 2). FL3 is a constant since load (F) and length (L) remain the same. This leads to Equation 3. Now, we can insert the modulus of elasticity E for magnesium, which is 44.8 GPa. As PPA, we have selected Amodel® AS-1145 HS (45% glass fiber; impact modified; 6T/6I/6.6). As a result, the magnesium part stiffness is 3.25 times higher in comparison to PPA.

Metal replacement: first approach - changing the wall thickness

To achieve the same stiffness with the plastic part we have to increase the moment of inertia (I). This can be done by inserting Equation 5 (moment of inertia for rectangular section) into Equation 4. “b” is the width which is kept constant and “d” is the thickness of the section. We resolve the equation for “d” (assumption: the magnesium part has d = 2.54 mm) and as a result we get the new thickness of the PPA part, which is 3.76 mm.

The PPA part will be 48% thicker than the magnesium part and will achieve the same stiffness.

Metal replacement: first approach - changing the wall thickness

Second approach: adding ribs 


Another way to increase the moment of inertia is by adding ribs to the plastic part. This will decrease the wall thickness and weight significantly.

We start with a 3.76 mm thick plate design made out of the same material, Amodel AS-1145. Therefore, the modulus of elasticity with 13.8 GPa remains for the plate and the ribbed design the same. If the moment of inertia of the ribbed design is the same as for the plate design, then the ribbed part will show equivalent deflection and/or stiffness.

We will assign 25.4 mm for the width “b”. Now, we can calculate the moment of inertia for the plate design (Equation 8). Based on the rib design (figure below) we can then calculate the moment of inertia for the rib structure (Equation 9).

Metal replacement: second approach - adding ribs

As a result, the ribbed design will be 9.5 times stiffer than the previous calculated PPA plate design and the original magnesium plate design which was 2.54 mm thick. Reducing the height of the rib by half would still result in a part which is twice as stiff as the magnesium part. 

Conclusions

When replacing metal by high performance plastics, adding ribs will reduce the thickness and weight of your new part. Furthermore, stiffness can be increased dramatically, which allows for new part applications or even thinner parts in total.

Furthermore, modern CAE software is able to add automatically a rib structure by applying topology optimization tools.

My other posts with metal replacement:
Metal-2-Plastic in Automotive - How to do it (incl. Youtube Training Video) 
Metal Replacement with Polyarylamide (PARA) for Single-Use Surgical Instruments

Thank you for reading!

Greetings,
Herwig Juster

If you liked this post, please share and like!

Check out my new online course "Polymer Material Selection incl. free preview"

New to my Find Out About Plastics Blog – check out the start here section

Thursday, 28 May 2020

The Secret of High Performance Polymers: Why They Can Handle High Heat and Harsh Chemicals?


In this blog post, we explore the reasons why high performance polymers can handle high heat and harsh environmental conditions over a long period of time. 

Definition of high performance polymers 
There are several definitions for high performance polymers. One good way to define high performance polymers is over the Underwriters Laboratory (UL) Relative Thermal Index (RTI). According to the UL 746B, high heat polymers need to withstand a continuous use temperature of 150°C for 100,000 hours (approx. 11 years), while retaining at least half of the initial properties afterwards. 

Polymers such as PPS and PEEK inherently fulfill this requirement. Conversely, PPA’s need to be mechanically reinforced and thermal stabilized so that their continuous use temperature can rise from 130°C to 150°C. Most PPA’s have a continuous use temperature of 130°C. 

Fundamental structure- property relationships 
For better understanding the high heat resistance, we go back to the basic structure of a polymer such as a Polyethylene (PE). The main backbone consists out of carbon-carbon bonds and on the carbons, hydrogens are also bonded. This linear macromolecule has a maximum temperature resistance of ca. 80°C and continuous use temperature of 50°C.

If we replace now the carbon in the main chain with a phenyl group, which is an aromatic cyclic group of atoms with the formula C6H5 we obtain the Polyparaphenylene (PPP).

PPP has a temperature resistance of 500°C and is a linear macromolecule made out of benzene building blocks. Aromatic structures result in high macromolecule stiffness. Aromatics in the backbone are a main driver to obtain high heat and chemical resistance. The detailed look at the structure of benzene reveals that the double bonds are not statically localized, i.e. electrons move along the carbon cyclic structure, which is expressed by the ring in the structural formula. This together with inherent molecular stiffness supports stability at high temperatures and in contact with chemicals. If we alternate benzene rings and amide groups, we will get a polymer called poly para-phenyleneterephthalamide (PPTA) or more common known as Aramid and has a heat resistance of 250°C (decomposition temperature between 430-480°C; peak temperature use up to 400°C). It can be processed to fibers and makes it a perfect material for personal protective equipment for firefighters and armed forces [2; 3].

7 basic building blocks of high performance polymers
The high thermal resistance of PPP has one major downside, i.e. it makes it unsuitable for all melt-based processing techniques such as injection moulding and extrusion.
However, the integration of heteroatoms such as Oxygen, Nitrogen, and Sulfur in a polymeric aromatic-based structure can change this. Following, common chemical groups which are used to make melt-processable high performance polymers are described.

1. Diphenyl ether group: In this case, oxygen is the linkage of two phenyls. Diphenyl ether groups are used for example in Polyaryletherketones (PAEK’s).

2. Diphenylsulfone group: Here, sulfur is double-bonded to oxygen as well as bonded to phenyls. Diphenylsulfone groups are the main building block for Polysulfone (PSU), Polyethersulfone (PESU) and Polyphenylsulfone (PPSU).

3. Diphenylketone group: Oxygen is bonded over a double bond to carbon resulting in a carbonyl group. Together with the diphenyl, it forms the ketone group. The ketone group is the second crucial element for obtaining Polyetheretherketones (PEEKs).

4. Diphenylsulfide group: Here, sulfur is linked to phenyls and forming the sulfide group. It forms the basis of Polyphenylensulfide (PPS).

5. Imide group: It consists out of two acyl groups (R-C=O) bounded to nitrogen. It is the base element of Polyimides (PIs), Polyamideimides (PAIs), and Polyetherimides (PEIs).

6. Terephthalic acid (TPA) and Isophthalic acid (IPA): It is used as precursor for making Polyethylene terephthalate (PET). It also forms the monomer for Polyphthalamides (PPAs). Two carboxyl groups are attached to a benzene in a 1,4 or 1,3 configuration.

7. Fluor-carbon group: the fluor-carbon bond is the most stable single bond with 485 kJ/mol bonding energy (in comparison, carbon-carbon bond has 350 kJ/mol). Additionally, the fluor atom is much larger compared to the carbon forming a protecting layer around the carbon-carbon main chain. This explains to the same extent the high chemical and thermal stability of fluoropolymers such as PTFE and PVDF.

Chemical resistance of high performance polymers 
As a rule of thumb, the chemical resistance of polymers decreases with increasing temperature, i.e. increasing molecular mobility. In this case, high performance polymers have inherent advantages compared to commodity or engineering polymers. I made a table comparing all major high performance polymers with chemical resistance.

Conclusions
A key element to achieving high temperature and chemical resistance is the inclusion of aromatic structures. The combination of the latter with various heteroatoms such as carbon, oxygen and sulfur impart flexibility to the resulting polymer macromolecule, which enables melt processing. The use of melt processing techniques enable high performance polymers to be economically used in several high-end applications such as airplanes, automotive, oil and gas, and chemical processing industries.

If you want to use high performance polymers for your application and you need support to choose the optimal grade, I am glad to help. Reach to out to me here.

A further blog post on high performance polymers on my blog you can read here.

Thank you for reading! 
Till next time! 
Greetings 

Herwig 

Interested in my monthly blog posts – then subscribe here and receive my high performance polymers knowledge matrix.

!NEW! Ultra and High Performance Polymer Selection - new online course coming soon - join the waiting list

Literature:

[1] Johannes Fink - High Performance Polymers, Plastics Design Library
[2] https://www.teijinaramid.com/en/expertise/what-is-aramid#:~:text=Aramids%20are%20man%2Dmade%20fibers,from%20long%2Dchain%20synthetic%20polyamides.
[3] https://www.dupont.com/content/dam/dupont/amer/us/en/safety/public/documents/en/Kevlar_Technical_Guide_0319.pdf

Sunday, 30 September 2018

High Heat Plastics (HHP) Demystified incl. Cheat Sheet




Introduction to high heat plastics
High heat plastics (HHP’s), as part of the specialty polymers group, found their ways in several industries from automotive to medical devices. As their name already suggests, these are able to continuously withstand high heat conditions. Generally, thermoplastic and/or thermoset polymers which maintain useful mechanical properties at temperatures in the range of 150°C and above [1, 2] can be defined as HHP’s. Furthermore, HHP’s exhibit high strength, toughness and long-lasting properties even when several doses of different types of radiation for sterilization are applied [4].
Due to their unique properties and added value, HHP’s experience low-volume sales at a relatively high selling price [2]. When you compare the ratio of sales price of aliphatic nylons to that of high heat polymers, this spread from 1:3 to 1:20. These ratios vary with the markets the polymers are sold for i.e., automotive, aerospace, electrical-electronic and chemical process industries. Although HHP’s main purpose is to be used at elevated temperatures, they possess many other exploitable useful properties as well. For instances, crystalline polymers such as poly(ether ether ketone) and poly(phenylene sulfide) can be found in several room temperature applications due to their superior environmental resistance, in particular to organic solvents and acid and alkaline media [2].
Nowadays, specialty polymers account for approximately 0.3% of the global polymer production volume. For examples, in 2016, the global production of plastics summed up to approximately 335 million metric tons of which one million metric tons were specialty polymers.


A bit of background on how it all started
A good example of how researchers learned and applied the aforementioned properties and principles was the replacement of natural silk by using nylon 6, 6 and nylon 6. Nylon was introduced by Wallace H. Carothers of DuPont and Paul Schlack of I.G. Farben in the late 1920’s. Silk is an expensive material which has superior quality and performance. The first synthetic fibers were expensive too, since polymer science and engineering was still in its children shoes. Nevertheless, challenges were progressively overcome which paved the way to produce synthetic fibers in high quality, quantity and at low cost. Several more high performance plastics were one after the other explored and commercialized over the following decades. An early representative was poly(phenylene sulfide), which was a byproduct of the chemical reaction of benzene and sulfur in the presence of aluminum chloride by Friedel and Crafts in 1888. In 1982 General Electric Plastics, respectively J. Wirth introduced the polyetherimide (PEI) resin under the trade name Ultem which was. Another example is the synthesis of poly(aryl ether ketones) (PAEK’s) by Johnson from Union Carbide in the late 1960’s.


High temperature plastics grew up – Classification of HHP’s
The classification into amorphous and semi-crystalline polymers which is also known from commodity and engineering thermoplastics can be done with HHP’s as well. Amorphous representatives are polysulfone (PSU), poly (ether sulfone) (PES), polyetherimide (PEI) and poly(amide imide) (PAI). Semi-crystalline representatives are semi-aromatic Nylons (PARA, PPA), poly (phenylene sulfide) (PPS), high performance poylesters (LCP, PCT), fluoropolymers (PTFE, PFA/MFA), poly(ether ether ketone) (PEEK), and poly(ether ketone) (PEK). The latter, especially when filled with glass, carbon, and minerals keep useful mechanical properties above their glass transition temperature (Tg). PEEK, for example, has a Tg of 148 °C but its continuous service temperature is 250 °C. An overview of classification by a plastics thermometer is shown in Figure 1.
Figure 1: High heat plastics thermometer.


Why can certain thermoplastics withstand high temperature loads?
The answer can be found in the chemical composition. Key building blocks are, for example, aromatic rings and carbon-oxygen double bonds. In this context, polymer performance can be tailored during synthesis by balancing the ratio of rigid, non-contorted units such as aromatic rings to flexible, easily-contorted units such as aliphatic bonds. HHP’s are usually produced by means of step-growth polymerization processes, i.e., polycondensation and polyaddition [3]. These allow greater design freedom and properties control than chain-growth polymerizations.
The replacement of aliphatic units with aromatic ones imparts increased resistance to chain degradation by heat and associated oxidation in the resulting polymers. While eventually formed free radicals cannot be stabilized by surrounding bonds in aliphatic polymers, these are easily stabilized by resonance in aromatic polymers. As a result, chain scission and degradation is prevented. Accordingly, a complete aromatic polymer such as polyparaphenylene should show an optimum in stability. Investigations have shown that it is thermally stable above 500°C [4]. The biggest downside is its inherent unprocessability, a result of the high stiffness of its chains. To keep up with processability demands, flexible linkages such as C-O, C-S, C-C are incorporated in HPP’s.
Figure 2 shows the continuous use temperature of commodity, engineering and high heat plastics [2].


Figure 2: Continous Use Temperature (CUT) of thermoplastics with 150°C borderline in red for high heat plastics.


“Ultra polymers” – hidden champions among HHP’s?
On the very upper end of our plastics thermometer you can find the thermoplastics polyimide (TPI) and poly(amide-imide) (PAI) as amorphous representatives and poly(benzimidazole) (PBI) as a semi-crystalline representative. These polymers are regarded as “Ultra polymers” due to their outstanding thermal and mechanical properties. For examples, unfilled PAI is the polymer with highest tensile strength up to 260°C continuous use. PBI is the polymer with the highest Tg, 427°C. In addition, it does not burn. Overall, it is used in applications where highest demand in temperatures, harsh chemicals, and plasma environments are necessary, e.g. fire protection clothing. It is possible to cast PBI into a coating, film or membrane [6, 7].


Who are the main suppliers of HHP?
In the table below, an overview of the major suppliers of HHP’s is given. It should be seen as a living document which can change over the years since chemical companies merge or sell certain portfolios.


My HHP cheat sheet – what you find in there
I tried to capture the most interesting and important material data and transformed it into a cheat sheet which allows you to have all in one infographic. It has three property sections (mechanical, thermal and processing) and represents the following polymer groups:
• Polysulfones
• Polyimides
• Polyphylensulfides
• Semi-aromatic Nylons
• Polyaryletherketones
• Liquid Crystal Polymers
• Fluoropolymers



This time it was a longer post and I hope you have enjoyed this blog post. The cheat sheet can be useful e.g. for a first comparison in the material selection phase.

What are your experiences with HPP’s? Leave a comment below!

Thank you for reading and till next time!
Greetings, Herwig Juster

P.S. New to my blog – check out the start here section


Literature:
[1] http://www.craftechind.com/13-high-performance-plastics-used-in-the-automotive-industry/
[2] Vinny Sastri: Plastics in medical devices
[3] D. Parker, J. Bussink, H. van de Grampel, et al., Polymers, High-Temperature, Ullmann’s Encyclopedia of Industrial Chemistry, DOI: 10.1002/14356007.a21_449.pub3
[4] Raymond B. Seymour and Gerald S. Kirshenbaum: High Performance Polymers: Their Origin and Development
[5] http://cen.acs.org/articles/94/i9/chemical-companies-investing-high-end.html?type=paidArticleContent
[6] Johannes Karl Fink High Performance Polymers, Second Edition (Plastics Design Library)Jul 1, 2014
[7] http://pbipolymer.com/about/celazole-pbi-advantage/