Tuesday, 30 April 2019

High Performance Polymers in Electrification: A Must-Have Or A Nice-To-Have (Part 1: Introduction and Battery Systems)

High Performance Polymers in Electrification: A Must-Have Or A Nice-To-Have (www.findoutaboutplastics.com)







In automotive industry, electrification gains traction and design engineers all over are working to increase the energy density of batteries, create higher voltage traction motors and increase allover system voltage. In this three part series, we will discuss the requirements of different system components, i.e. batteries, traction motor, power electronics and autonomous driving in terms of polymers. Let’s get started with batteries.

Introduction
- Plastic parts in electric vehicles (EV’s)

In 2019, we see all major OEMs and Tier-1 supplier continue their efforts toward electrification and new mobility solutions. Currently, development progress of internal combustion engines is at 1% per year [1], whereas electrification developments progress at a rate of 7 %. Industry experts predict that the connected mobility can grow according metcalfe's law with a rate of 70% (taking Facebook user rates as a baseline). The overall plastic weight per car will not change significantly with EV’s. However, there will be a slight increase in weight in total. There are currently 10 000 parts made out of plastic in an average car and these use ca. 39 different polymers. Out of the 39, 6 are used the most, i.e. polypropylene, polyurethane, polyamides, polyethylenes, acryle-butadien-sytrenes, and polyvinylchloride [2].

Check out here my infographic on “Plastics in Automotive”

Also in electrification, light weighting together with fuel economy will continue to be a megatrend. The rule of thumb says that for every 10% of weight reduction, fuel economy improves by ca. 6-8%. This additionally drives the consumption of plastics in automotive. The Chinese car market shows a lot of potential for light weighting since most cars run on old technology platforms. Furthermore, this is the largest car market today.

- What changes with EV’s?
EV’s have no longer the need for fuel tanks, AdBlue tanks, pumps and fuel connections. Here, we will see a drop in engineering polymers, together with elastomers since fuel lines and gaskets are not in demand. On the commodity side, high density polyethylene (HDPE) will also lose out since it is used for making tanks. Under the hood, combustion engine covers will not be needed either, however new engine covers for traction motor will rise.

- Which challenges are there concerning material selection?
In the past, material selection for internal combustion cars was easier since lots of experience as well as know-how were already built-up. This included the handling of specifications. For under-the-bonnet applications for example, aliphatic Nylons such as PA 6, PA 6.6., and aromatic Nylons such as polyphtalamide (PPA) are widely used. Furthermore, polyphenylene sulfide (PPS) is used where the highest heat and chemical requirements over the lifetime of the car are needed. PBT, PP, PU and POM/Acetals round up the polymers used in several exterior and interior applications.

Today, in hybrid and full EV’s, material selection tends to be much more differentiated, since applications need to fulfill specific requirements. The one-fits-all approach is no longer working in a similar sense. Standards from other industries such as electronics influence now material selection in automotive. As a result, a “wedding” between e.g. consumer electronics and automotive standards may take place.

Looking into the high performance material portfolio, semi-crystalline polymers fulfill stringent electronic requirements such as high CTI (>600), intrinsic flame retardancy, dielectric strength, creep, tracking resistance, EMI shielding, and high (140°C) Relative Temperature Index (RTI).

Lithium ion batteries – the heart of the EV
For coating the separator, fluoropolymers such as PVDF in aqueous dispersions can be used. Commodity polymers such as ultra-high-molecular-weight polyethylene (UHMWPE) can be used as separator substrate material. PVDF plays a role in making electrode binders (anode and cathode) too. In cell manufacturing, high adhesion between electrodes and separator is needed to obtain good laminates. Most common cell systems are pouch and jelly roll systems.

Battery pack and module – holding all together
Going outside the cell to the finished battery pack, several challenges need to be overcome. In general, a battery pack has between 10 to 16 modules and each module can have between 10 to 12 pouch cells.

For battery packs, three things need to be balanced:
• energy density (range),
• power (rapid charging),
• safety (non-flammable).

Every battery is connected over the pack’s housing with an electrical control unit, which protects the cells from overloading. The housing must ensure that all batteries stay in place and impact or vibration do not compromise performance. Figure 1 summarizes the potential plastic materials for cells, module, and pack.
Figure 1:  Overview of polymeric materials for battery technologies in the electrical powertrain.
.
Cells are connected to one another over busbars. Stability must be ensured. Busbars are usually long copper parts (up to 30 cm) overmoulded with PPS to obtain low dimensional changes. Flame-retardant plastics become increasingly important for packaging of the cells into modules. Modules have endplates and separator plates. Polymers such as PPS are a perfect candidate to be used as endplate and separator material in such environments since it ensures a best-in class thermal and chemical stability (RTI up to 220°C), inherently flame retardancy, and high dimensional stability. Selecting a linear PPS grade is beneficial since it has lower flashing during moulding. This minimizes post-processing steps after moulding and the investment of a de-flashing station. In addition, polycarbonate and their blends offer long-term capability and low-temperature impact strength which are needed for the battery modules as well.


Generally, all different assembles can benefit from thermal conductive materials which support the removal of the heat generated by the cells. Different polymer grades can be improved in this context by means of additives.


Thermal management – keep it cool
Next to the classic thermal management systems which use water-glycol, new ways of cooling are on the rise. This is driven by water-glycol reaching its performance borders with higher voltage system (>500 V). A new way is the so called “direct liquid cooling” which uses a dielectric cooling fluid and the cooling component is directly immersed in this fluid. This can be realized with fluorinated fluids such as perfluoropolyether (PFPE). These kinds of fluids have good thermal conductivity and combine a low electrical conductivity with low viscosity. Furthermore, excellent chemical resistance is given through the fluoro properties.


Heating systems for interior and battery
In contrast to traditional combustion cars, EV’S dissipate less heat to enable sufficient heating of the passenger cabin. Therefore, additional heaters need to be installed. Most of such heaters are based on the Positive Temperature Coefficient (PTC) effect. The ceramic based PTC elements can be lined up next to each other holding together via a support frame.


Here, a stringent requirement is not having ions in your polymer formulation. This is important to prevent corrosion of overmoulded metal parts and connectors. Galvanic corrosion can reduce the electric performance down to failure. Therefore, electrical friendly, halogen free stabilized semi-aromatic Nylons or PPS might be suitable here.


During operation, the battery pack temperature should be kept at 60°C. Heaters are used to keep temperatures on a certain temperature to ensure efficient charging. Heaters can operate in the high-voltage range (500V) with an output of 7 kW. High performance polymers will ensure their proper function over lifetime.


Charging Systems – high voltage with high safety
Charging the batteries of your electric vehicle in a reasonable time requires high voltage charging systems. Temperatures should be kept between 0°C to 45°C. Additionally, interconnection systems provide the power for the electric engine. Electrical properties such as dielectric strength, volume resistivity, creep, tracking resistance need to be carefully considered by design engineers.


Color coding helps safely handle parts in the event of an accident. Above 60 V, a system is considered to be high voltage and then orange color coding of connectors and cables is required.


For covering all these needs, polymeric materials need to fulfill Comparative Tracking Index (CTI) values of over 600, dielectric strength in the range of 30 kV to 35 kV, and Relative Temperature Index (RTI) of 140°C.


Aliphatic Nylons such as PA6, PA66, PA 46 fulfill this stringent criteria. Exception are certain temperature levels. Semi-aromatic Nylons such as PPA (6T/6I; 6T/6.6; 6T/6I/6.6) fulfill the temperature and electrical requirements. High mechanical strength combined with reflow soldering durability and laser welding properties make them a good choice. Important is to select types which are halogen free and free of red phosphorous which in turn allows Nylons to reach high CTI values. Electric corrosion of assembly bins is prevented by not using ionic heat stabilizers. Most Nylons have an HB flame rating and V0 rating is possible, however it might involve inorganic heat stabilizers.



With this I will close the first part of this high performance polymers series for EV.

In the second part we will look into the traction motor.


Thank you for reading!

Till next time!

Herwig Juster


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Literature:
[1] http://www.professoren.tum.de/lienkamp-markus/ and https://www.youtube.com/watch?v=5moHQFbEsDU&t=2238s
[2] A. Patil: An overview of Polymeric Materials for Automotive Applications, Materials Today: Proceedings 4 (2017) 3807-3815

Sunday, 14 April 2019

Material Selection Guide Based On Mechanical Properties [Infographic]


Thanks for reading & till next time!
Greetings,
Herwig Juster


If you liked this post, share and like!
Interested in my monthly blog posts – then subscribe here.
New to my Find Out About Plastics Blog – check out the start here section
Check out also my personal webpage.

Thursday, 28 March 2019

Reviewing Key Engineering Plastics – Polyamide 6 and Polyamide 6.6 [incl. Video]

Hello and welcome to this post on reviewing key engineering plastics. Today, we have a closer look at polyamide 6 and polyamide 6.6.
Similarly to the last time with ABS, we review the chemistry including the simplified petrochemical flowchart, discuss the properties and applications of polyamides and look at their global demand and producers. I will provide you some price indications as well.

Here you can find the youtube video of the review:




Before we start with the chemistry I would like to spend some words on the history of polyamide. Wallace Carothers, working 1930 at DuPont Company, developed together with his assistants the two most widely used synthetic polymers of the 20th century: nylon or polyamide and neoprene (synthetic rubber). We will focus in this review on polyamide 6 (PA 6) and polyamide 6.6 (PA 6.6). Although they may seem quite alike they are different e.g. in terms of glass transition and melting temperature as well as water uptake. The latter is higher for PA 6.

Polyamide chemistry


PA chemistry and simplified flow chart: Where do PA 6 and PA 6.6 have their roots?
PA 6 is made by ring-opening polymerization of e-amino caprolactam which is obtained over the benzene route (from benzene over cyclohexane to caprolactam). Cyclohexane is first converted to its oxime. An oxime is a chemical compound with a carbon-nitrogen double bond. The word oxime is a combination of the words oxygen and imine. Treating the oxime with acid initiates the so-called Beckmann rearrangement to obtain caprolactam. The global demand on caprolactam are 5 milllion tons. PA 6.6 can be polymerized using hexamethylenediamine and adipidic acid. Both have 6 carbon atoms leading to the nomenclature of 6.6. HMDA can be obtained over three routes: from adipidic acid route, from hydrogenation of acrylonitrile, and from hydrocyanation of butadiene.
Polyamide - Simplified Flow Chart


Poylamide properties
PA 6 shows good toughness at relatively high (80°C) and low temperatures as well as resistance to repeated impacts. This is rounded up with good resistance to abrasion and wear. Chemically, PA 6 exhibits resistance to many organic solvents, oils and gasolines. In comparison, Polyamide 6.6 can be used at higher continuous service temperatures (100°C – 120°C) combined with a better retention of stiffness, tensile properties, and shape at high temperatures.
Polyamide - Properties

PA Capacity and Global demand
The total consumption of Polyamides in 2016 was around 7.5 Million Tons. PA 6.6 has a consumption of 2.4 million tons and PA 6 of 5.1 million tons. 70% of the global PA 6.6 consumption was used in the automotive market. Half of the consumption of PA 6 is used for producing fibers.
Polyamide - Capacity and Global Demand
 
Geographically you can state that Asia is the largest market for PA 6 and it is preferred when flexibility and barrier properties are important. North America is the largest market for PA 6.6 and is mainly selected for engineering thermoplastic applications due to a higher melting point. Important to note is that both Nylons are interchangeable for most applications.
Polyamide - Capacity and Global Demand

PA Price to performance
Polyamides are forming the base of engineering thermoplastics and have a price range of 2.5€/ kg for base grades and high heat Nylons can reach up to 6.5€/kg.
Polyamide - Price to Performance

PA End uses
As previously shown, PA 6 is more selected for fiber applications such as tire cords, and filaments for fishing lines. PA 6.6 with a glass fiber reinforcement of 30% is used in many automotive applications where the combination of elevated temperature, toughness and long life time is needed. However, there are many other industry fields, where the properties of Nylon 6.6 can play a key role. Important to note is the water uptake of PA 6.6 which can be 2.5% at 50% relative humidity. PA6 has with 2.8% a bit higher water uptake. The water uptake results in dimensional changes, reduces the yield stress 29% of its original value. Elongation will be increased with the factor of 5 and toughness will be doubled. Overall stiffness can decrease almost 60%.

Just to name a few of the typical applications: belts, guitar strings, car engine upper intake manifold and engine support mounts, and the famous Fischer wall plug, introduced in 1958 by inventor Arthur Fischer. 

This was a review on polyamide, an important engineering thermoplastic used in many applications.


Thanks for reading and #findoutaboutplastics

Greetings

Literature: 
1. https://www.nexant.com/
2. W. Kaiser: Kunststoffchemie für Ingenieure, Carl Hanser Verlag, München 2016
3. http://www.polymerdatabase.com/

Sunday, 10 March 2019

Plastics Part Design: The Continuous Use Temperature of 124 Most Used Plastics



Hello and welcome to this blog post on the topic of continuous use temperature (CUT) of thermoplastics.

The maximum acceptable temperature for thermoplastics is one of the most critical requirements to be handled during your material selection. Above the maximum use temperature, mechanical properties (mainly tensile strength and impact strength) or electrical properties (dielectric strength) will drop significantly. On the other hand, long term retention of mechanical and other required properties over the product lifetime is crucial. Therefore, you need to be able to estimate your continuous use temperature.
Don’t worry; there are already methods out there which can assist you. There is the UL 746 which is used to calculate the Relative Temperature Index (RTI; measured in °C).

What is RTI?
Citation UL: “RTI is the temperature in °C, at which properties have decreased to 50% of their initial value after a long-term exposure to this temperature (100,000 hours)”.


The Table 1 below shows the maximum use temperature of 124 most used plastics and can assist you in your daily material selection.And below you can try out my newly developed app called "PolyTherm Selector" which allows you to select a plastic and as an output you get the Continuous Use Temperature (CUT) according UL 746B.


Table 1: Continuous Use / Service Temperature of 124 most used Plastics.

Polymer Name
Max Value (°C)
 according
UL 746 (RTI)
ABS - Acrylonitrile Butadiene Styrene
89.0
ABS Flame Retardant
95.0
ABS High Heat
110.0
ABS High Impact
100.0
ABS/PC Blend –
Acrylonitrile Butadiene Styrene/Polycarbonate Blend
110.0
ABS/PC Blend 20% Glass Fiber
110.0
ABS/PC Flame Retardant
110.0
ASA - Acrylonitrile Styrene Acrylate
90.0
ASA/PC Blend –
Acrylonitrile Styrene Acrylate/Polycarbonate Blend
110.0
ASA/PC Flame Retardant
110.0
ASA/PVC Blend –
Acrylonitrile Styrene Acrylate/Polyvinyl Chloride Blend
90.0
CA - Cellulose Acetate
95.0
CAB - Cellulose Acetate Butyrate
105.0
CP - Cellulose Proprionate
105.0
CPVC - Chlorinated Polyvinyl Chloride
100.0
ECTFE - Ethylene Chlorotrifluoroethylene
150.0
ETFE - Ethylene Tetrafluoroethylene
155.0
EVA - Ethylene Vinyl Acetate
70.0
EVOH - Ethylene Vinyl Alcohol
100.0
FEP - Fluorinated Ethylene Propylene
205.0
HDPE - High Density Polyethylene
120.0
HIPS - High Impact Polystyrene
80.0
HIPS Flame Retardant V0
80.0
Ionomer (Ethylene-Methyl Acrylate Copolymer)
48.0
LCP - Liquid Crystal Polymer
240.0
LCP Carbon Fiber-reinforced
240.0
LCP Glass Fiber-reinforced
240.0
LCP Mineral-filled
240.0
LDPE - Low Density Polyethylene
100.0
LLDPE - Linear Low Density Polyethylene
110.0
MABS - Transparent Acrylonitrile Butadiene Styrene
80.0
PA 46 - Polyamide 46
150.0
PA 46, 30% Glass Fiber
160.0
PA 6 - Polyamide 6
120.0
PA 6-10 - Polyamide 6-10
150.0
PA 66 - Polyamide 6-6
140.0
PA 66, 30% Glass Fiber
150.0
PA 66, 30% Mineral filled
140.0
PA 66, Impact Modified, 15-30% Glass Fiber
140.0
PA 66, Impact Modified
130.0
Polyamide semi-aromatic
135.0
PAI - Polyamide-Imide
280.0
PAI, 30% Glass Fiber
220.0
PAI, Low Friction
220.0
PAR - Polyarylate
130.0
PBT - Polybutylene Terephthalate
140.0
PBT, 30% Glass Fiber
140.0
PC (Polycarbonate) 20-40% Glass Fiber
125.0
PC (Polycarbonate) 20-40% Glass Fiber Flame Retardant
125.0
PC - Polycarbonate, high heat
140.0
PC/PBT Blend –
Polycarbonate/Polybutylene Terephthalate Blend
121.0
PC/PBT blend, Glass Filled
193.0
PCL - Polycaprolactone
45.0
PCTFE - Polymonochlorotrifluoroethylene
175.0
PE - Polyethylene 30% Glass Fiber
130.0
PEEK - Polyetheretherketone
260.0
PEEK 30% Carbon Fiber-reinforced
240.0
PEEK 30% Glass Fiber-reinforced
240.0
PEI - Polyetherimide
170.0
PEI, 30% Glass Fiber-reinforced
170.0
PEI, Mineral Filled
170.0
PESU - Polyethersulfone
180.0
PESU 10-30% glass fiber
180.0
PET - Polyethylene Terephtalate
140.0
PET, 30% Glass Fiber-reinforced
140.0
PET, 30/35% Glass Fiber-reinforced, Impact Modified
140.0
PETG - Polyethylene Terephtalate Glycol
63.0
PFA - Perfluoroalkoxy
260.0
PHB-V(5% valerate)
95.0
PI - Polyimide
360.0
PMMA - Polymethylmethacrylate/Acrylic
90.0
PMMA (Acrylic) High Heat
150.0
PMMA (Acrylic) Impact Modified
90.0
PMP - Polymethylpentene
110.0
PMP 30% Glass Fiber-reinforced
110.0
PMP Mineral Filled
110.0
POM - Polyoxymethylene (Acetal)
105.0
POM (Acetal) Impact Modified
100.0
POM (Acetal) Low Friction
105.0
POM (Acetal) Mineral Filled
105.0
PP - Polypropylene 10-20% Glass Fiber
130.0
PP, 10-40% Mineral Filled
130.0
PP, 10-40% Talc Filled
130.0
PP, 30-40% Glass Fiber-reinforced
130.0
PP (Polypropylene) Copolymer
130.0
PP (Polypropylene) Homopolymer
130.0
PP, Impact Modified
115.0
PPA - Polyphthalamide
140.0
PPA, 30% Mineral-filled
156.0
PPA, 33% Glass Fiber-reinforced
186.0
PPA, 45% Glass Fiber-reinforced
186.0
PPE - Polyphenylene Ether
110.0
PPE, 30% Glass Fiber-reinforced
110.0
PPE, Flame Retardant
110.0
PPE, Impact Modified
110.0
PPE, Mineral Filled
110.0
PPS - Polyphenylene Sulfide
220.0
PPS, 20-30% Glass Fiber-reinforced
220.0
PPS, 40% Glass Fiber-reinforced
220.0
PPS, Conductive
220.0
PPS, Glass fiber & Mineral-filled
220.0
PPSU - Polyphenylene Sulfone
210.0
PS (Polystyrene) 30% glass fiber
122.0
PS (Polystyrene) Crystal
80.0
PS, High Heat
90.0
PSU - Polysulfone
180.0
PSU, 30% Glass finer-reinforced
180.0
PSU Mineral Filled
150.0
PTFE - Polytetrafluoroethylene
290.0
PTFE, 25% Glass Fiber-reinforced
260.0
PVC (Polyvinyl Chloride), 20% Glass Fiber-reinforced
80.0
PVC, Plasticized
80.0
PVC, Plasticized Filled
80.0
PVC Rigid
80.0
PVDC - Polyvinylidene Chloride
90.0
PVDF - Polyvinylidene Fluoride
150.0
SAN - Styrene Acrylonitrile
95.0
SAN, 20% Glass Fiber-reinforced
95.0
SMA - Styrene Maleic Anhydride
100.0
SMA, 20% Glass Fiber-reinforced
100.0
SMA, Flame Retardant V0
100.0
SMMA - Styrene Methyl Methacrylate
100.0
UHMWPE - Ultra High Molecular Weight Polyethylene
130.0
XLPE - Crosslinked Polyethylene
82.0


Thanks for reading and #findoutaboutplastics

Greetings

Literature:

1. https://omnexus.specialchem.com/
2. Saechtling Kunststoff Taschenbuch by Erwin Baur
3. UL 746B