Showing posts with label flexible-packaging. Show all posts
Showing posts with label flexible-packaging. Show all posts

Thursday, December 3, 2020

Extrusion Coating Lamination

BY: MATTHEW TABASSI

Extrusion coating is the coating of a synthetic resin molten strip and extruding it through a flat die on a substrate. Combining two inexpensive materials to make a higher performance product adds value and utility. It is a flexible coating technique used for applying various economic plastics, including polyethylene, on cardboard , corrugated cardboard , paper, aluminum foil, cellulose, nonwoven fabrics, or plastic films.



The objective of extrusion coating is to combine the best properties of each material into a third product that can perform a function neither of the individual products can do on their own.

 Potential value-added functionality might be;

• Heat sealability for packaging applications

• Improved tear or crease resistance

• Better barrier properties to water or oxygen and other gases

• Improved appearance

• Additional chemical resistance

• Improved printing or decorating ability

In extrusion coating operations often use high melt temperatures to lower the melt viscosity. This improves coating thickness uniformity and adhesion to substrate. Adhesion depends on;

• Resin melt temperature

• Resin viscosity (the reason high temperatures are used)

• Film/substrate compatibility

• Coating speed

• Coating thickness

Typically an adhesive is a material that will chemically bond to both surfaces. The adhesive could be the top layer in coextruded film that is compatible with the substrate, producing good adhesion. A water or solvent based adhesive can be applied to the substrate prior to the preheat drum. The substrate can pass through a corona or plasma treatment to allow improved wettability and adhesion of inks, coatings and adhesives.

As a result, the materials treated will demonstrate improved printing and coating quality, and stronger lamination strength.

Defects in the coating that can render the coated product useless are;

• Voids

• Pinholes

• Thick or thin coating in the machine direction

• Orange peel

• Contamination due to gels or foreign material

Voids are caused by poor adhesion between the coating and substrate, where the two materials are not properly bound together.

Pinholes are tiny holes in the coating. Pinholes may be caused by excessively high coating speeds that are drawing the polymer melt too much.

The other defects such as gels, oxidized or burnt particles and orange peel are the result of poor extrusion conditions or raw material supply.

Lamination is similar to extrusion coating with the exception that two substrates are added to each side of the extruded film.

This can be considered a three-ply process, with two substrates and a molten film. If the film is produced on a coextrusion line, it can have multiple layers.

It is essential to consider maximum winding tension for laminated structures. For that simply add the tensions for the different webs that have been laminated together and usually disregarding any coating or adhesives between the webs and apply the sum of these tensions as the winding tension for the laminate.

The individual webs need to be tensioned before they are laminated so that the elongation of the web due to web tension will be approximately equal for each web. If one web is strained significantly more than the other web, then, when they are laminated, curl problems or delamination wrinkling known as "tunneling" can occur in the laminated webs. The amount of tension should be a ratio of the modulus and the web thickness to prevent curl and/or tunneling after lamination process.

The futures of laminates applications are virtually limitless. The combination of different materials and their positive features will meet almost every specific requirement.

Applications for extrusion coating and lamination include the following:

• Film lamination

• Heat seal layer used in general packaging

• Dairy packaging

• Juice and folding cartons

• Cups

• Paper

• Foil

• Carpet coating and backing

• Food pouches

• Cheese bags

• Can linings

• Photographic paper

• Potting soil bags

• Release paper

• Frozen food containers

• Paperboard trays

• Oven-safe paperboard trays

 

Solid food packaging 

There are many quality requirement to prevent migration of oil, grease and flavor/aroma when the coating is applied to an aluminum foil substrate. On aluminum substrates the coating also provides a heat sealable surface. When applied to reverse printed films the coating protects the printed surface.

Coating can be on one or both sides of the substrate though aluminum foils require 2 side coating. Two side coatings can be applied either by passing the web through the coating line twice or by one pass through a line fitted with twin coating systems.

Extrusion lamination involves casting the extrudate between two substrates. The extrudate then bonds the substrates together. Such laminates are often then coated on one surface either in-line or via a second pass through the line.



Aluminum based structures normally use monolayer coatings to give heat sealability. Coextrusion is reserved for barrier structures based on EVOH with no aluminum layer or combined bulk/tie layers or bulk/heat seal layers.

The major resin used is LDPE. Ionomers are used to give improved heat seal through contamination and higher bond strengths to aluminum. PP coatings give improved heat stability over LDPE. In recent years we have seen increase in use of structures based on barrier layers of EVOH or PA rather aluminum foil in order to reduce recycling problems.

*  Coffee sachets

High gloss lacquer/Paper/LDPE/Al/LDPE/Ionomer 

Aluminum foil gives aroma barrier. Ionomer gives good heat seal

 

*  Butter Wrap

Al/LDPE/Parchment

Aluminum gives fold retention.

 

Nut Pouch

Coated paper/LDPE/metallized PET/LDPE

Print layer on paper. Barrier from metallized PET.

Sealability from LDPE

 

*  Powdered soup

PET/EAA/LDPE/Al/LDPE

Print layer on PET. EAA layers give good bond to PET and Al. LDPE gives sealability.

 

Aseptic Packaging

Aseptic packaging is defined as the filling of a commercially sterile product into a sterile container under aseptic conditions and hermetically sealing the containers so that reinfection is prevented.



Similar to any other process, final product should meet few quality criteria, such as acts as barrier to moisture and oxygen and prevents contamination with micro-organisms. Also prevents loss of flavor compounds from juices.

 

*  Juice, Milk Cartons

LDPE/Al/LDPE/Waxed Board

LDPE gives sealability. Aluminum gives barrier to oxygen and in fruit juices prevents loss of flavor compounds.

 

*  Juice, Milk Pouches

Oriented PA/LDPE

PA/EVOH/PA/LDPE

Polyamide gives toughness and puncture resistance with moderate oxygen barrier. EVOH gives high oxygen barrier. LDPE gives sealability.


Liquid/Paste Packaging

Acts as barrier to moisture and prevents loss of flavor compounds. Also needs to be tough and puncture resistant.

 

*  Juice, Milk Cartons

LDPE/Al/LDPE/Waxed Board

LDPE gives sealability. Aluminum gives barrier to oxygen and in fruit juices prevents loss of flavor compounds.

*  Juice, Milk Pouches

Oriented PA/LDPE

PA/EVOH/PA/LDPE

Polyamide gives toughness and puncture resistance with moderate oxygen barrier. EVOH gives high oxygen barrier. LDPE gives sealability.

In current era, the film industry continues to expand its frontier by facing challenges requiring further development and innovation in both resin and machinery design advances. This includes improvements in both monolayer and co-extrusion blown and cast film, as well as downstream conversion operations. Finally, increasingly complex structures combining lamination and co-extrusion are possibilities further extending the possibilities of plastics of packaging.

Only companies with strong commitment to research and development can provide developers with the tools to innovate new solutions in Extrusion Coating & Laminating process to keep up with today's markets demand. 

 

References

1-      Film Extrusion Manual - Second Edition, PROCESS, MATERIALS, PROPERTIES, TAPPI PRESS,

2-      Future direction of lamination in retort packaging, Packaging Films issue 4-2013, By Matt Tabassi

  


Wednesday, November 18, 2020

Loss Prevention



 

On the surface

This article originally published on Plastics in Packaging Magazine, June 2013

On the surface

As plastics material science continues to advance retorted packaging technology, Matthew Tabassi* reviews the future role of laminated films


Today’s consumers are seeking flexible packaging formats that protect the flavor at the same time as the quality of the contents.

As a result, retortable and microwaveable flexible packs are top of the list of solutions and these are often produced by bonding two or more flexible materials. Usually each laminate film will have its own specific properties. To achieve the best result, there are some aspects that need to be considered before deciding what type of lamination will suit a particular application.

In conventional laminating processes, aluminum is considered a major component, usually bonded to a coextruded layer of polyamide (PA), PET or polystyrene film. Since aluminum is a perfect barrier but does not seal and has low puncture resistance, it will often be used in combination with another layer that makes up for its weaknesses.

For example, a structure with good sealing might include a PET film laminated to an aluminum foil and polypropylene. PP will provide the heat sealing capability along with strong puncture resistance.

But today’s fast-moving food packaging industry is not looking for a conventional lamination structure. When industries are looking for better barrier properties and, at the same time, cost saving of the final product, innovation of new structures is necessary.

There are no universal packaging solutions on the market, but new laminated structures offer desirable properties for specific types of food packaging.

Retorting is a process that uses heat and pressure to sterilize and cook food in a strong, sealed package. Retort pouches are made of laminated materials such as PET/aluminum foil/mHDPE (sealing medium), or PP/ink/metallized PP/PE (sealing medium). The latter is suitable for snack food or soft drink pouches.

However, by increasing the number of lamination layers, product shelf-life can be increased. A perfect retorted pouch needs to be a barrier to oxygen and moisture, and to protect the food from light, while the outer layer should be tough and printable.

In recent years, metal cans have been augmented by retort pouches because they are lighter and use less storage space. Retort pouches are also easy to open because of their tear notch and can be reheated by placing in boiling water for just a few minutes.

Since only retort pouches not containing aluminum foil could be placed in the microwave for reheating, new retort structure developments were essential.

There are basically two forms of microwaveable package. The first involves transparent materials such as paper, glass and a multitude of plastics materials - polyethylene, polypropylene, polyester, nylon, polystyrene, and polyvinyl chloride.

These transparent materials allow microwaves to pass through the contents of the package and heat the product without interfering with the packaging materials. These packaging materials need to be compatible with elevated temperature and pressure demands.

The second type is called an active microwave package, which involves the use of materials that directly affect the product in the container. Here, susceptors are included into the materials, which absorb microwaves that in turn penetrate the packaging. This process raises the susceptor patch temperature to levels where it may then heat the food by conduction or by infra-red radiation.

The future of laminate applications is almost limitless, as the combination of different materials will meet almost every specific requirement. It does, of course, require state-of-the-art technology and know-how on the implementation, development and production of such packaging formats.

Shelf stability in food packaging and the emergence of newer packaging methods such as flexible pouches and paperboard cartons are key factors currently driving the retort packaging market.

The development and utilisation of retort packaging in North America and Europe has slowed due to competition from well-established frozen and canned product industries. In Japan, however, where these industries were small, the development of retort pouches has been stronger.

One of the materials that researchers have used as a retort substitute for aluminium foil is polyvinylidene chloride (PVdC), which enables the use of thinner films with improved barrier properties.

PVdC offers exceptional barrier resistance to oxygen and carbon dioxide and, unlike PA and EVOH, is not compromised by moisture.

For example, instead of a traditional lamination structure of ink/paper/LDPE/aluminum foil/primer/LDPE, we could use ink/paper/PVdC coating/primer/LDPE.

Further innovation has seen the use of laminating coating technology and done this process at on step as: PP/Tie/PVdC/Tie/PP//PET (or PS or BOPP).


The specific demands of a retort pouch remain consistent - high impact and shelf presence, resistance to high processing temperatures, and strong distribution challenges - but consumer goods companies continue to push the envelope by demanding increasingly convenient ways to build the packaging material.

And resin and machinery companies have risen to this challenge, developing clear packaging with the ability to be microwaved, along with added consumer benefits.

 

 

Thursday, September 24, 2020

Extrusion Coating - Lamination

Extrusion coating is the coating of a synthetic resin molten strip and extruding it through a flat die on a substrate. Combining two inexpensive materials to make a higher performance product adds value and utility. It is a flexible coating technique used for applying various economic plastics, including polyethylene, on cardboard , corrugated cardboard , paper, aluminum foil, cellulose, nonwoven fabrics, or plastic films.

The objective of extrusion coating is to combine the best properties of each material into a third product that can perform a function neither of the individual products can do on their own.

Potential value-added functionality might be;

• Heat sealability for packaging applications

• Improved tear or crease resistance

• Better barrier properties to water or oxygen and other gases

• Improved appearance

• Additional chemical resistance

• Improved printing or decorating ability

In extrusion coating operations often use high melt temperatures to lower the melt viscosity. This improves coating thickness uniformity and adhesion to substrate. Adhesion depends on;

• Resin melt temperature

• Resin viscosity (the reason high temperatures are used)

• Film/substrate compatibility

• Coating speed

• Coating thickness


Typically an adhesive is a material that will chemically bond to both surfaces. The adhesive could be the top layer in coextruded film that is compatible with the substrate, producing good adhesion. A water or solvent based adhesive can be applied to the substrate prior to the preheat drum. The substrate can pass through a corona or plasma treatment to allow improved wettability and adhesion of inks, coatings and adhesives.

As a result, the materials treated will demonstrate improved printing and coating quality, and stronger lamination strength.

Defects in the coating that can render the coated product useless are;

• Voids

• Pinholes

• Thick or thin coating in the machine direction

• Orange peel

• Contamination due to gels or foreign material

Voids are caused by poor adhesion between the coating and substrate, where the two materials are not properly bound together.

Pinholes are tiny holes in the coating. Pinholes may be caused by excessively high coating speeds that are drawing the polymer melt too much.

The other defects such as gels, oxidized or burnt particles and orange peel are the result of poor extrusion conditions or raw material supply.

Lamination is similar to extrusion coating with the exception that two substrates are added to each side of the extruded film.

This can be considered a three-ply process, with two substrates and a molten film. If the film is produced on a coextrusion line, it can have multiple layers.

It is essential to consider maximum winding tension for laminated structures. For that simply add the tensions for the different webs that have been laminated together and usually disregarding any coating or adhesives between the webs and apply the sum of these tensions as the winding tension for the laminate.

The individual webs need to be tensioned before they are laminated so that the elongation of the web due to web tension will be approximately equal for each web. If one web is strained significantly more than the other web, then, when they are laminated, curl problems or delamination wrinkling known as "tunneling" can occur in the laminated webs. The amount of tension should be a ratio of the modulus and the web thickness to prevent curl and/or tunneling after lamination process.


The futures of laminates applications are virtually limitless. The combination of different materials and their positive features will meet almost every specific requirement.

Applications for extrusion coating and lamination include the following:

• Film lamination

• Heat seal layer used in general packaging

• Dairy packaging

• Juice and folding cartons

• Cups

• Paper

• Foil

• Carpet coating and backing

• Food pouches

• Cheese bags

• Can linings

• Photographic paper

• Potting soil bags

• Release paper

• Frozen food containers

• Paperboard trays

• Oven-safe paperboard trays


Solid food packaging

There are many quality requirement to prevent migration of oil, grease and flavor/aroma when the coating is applied to an aluminum foil substrate. On aluminum substrates the coating also provides a heat sealable surface. When applied to reverse printed films the coating protects the printed surface.

Coating can be on one or both sides of the substrate though aluminum foils require 2 side coating. Two side coatings can be applied either by passing the web through the coating line twice or by one pass through a line fitted with twin coating systems.

Extrusion lamination involves casting the extrudate between two substrates. The extrudate then bonds the substrates together. Such laminates are often then coated on one surface either in-line or via a second pass through the line.

Aluminum based structures normally use monolayer coatings to give heat sealability. Coextrusion is reserved for barrier structures based on EVOH with no aluminum layer or combined bulk/tie layers or bulk/heat seal layers.

The major resin used is LDPE. Ionomers are used to give improved heat seal through contamination and higher bond strengths to aluminum. PP coatings give improved heat stability over LDPE. In recent years we have seen increase in use of structures based on barrier layers of EVOH or PA rather aluminum foil in order to reduce recycling problems.

v  Coffee sachets

High gloss lacquer/Paper/LDPE/Al/LDPE/Ionomer 

Aluminum foil gives aroma barrier. Ionomer gives good heat seal

 

v  Butter Wrap

Al/LDPE/Parchment

Aluminum gives fold retention.

 

v  Nut Pouch

Coated paper/LDPE/metallized PET/LDPE

Print layer on paper. Barrier from metallized PET.

Sealability from LDPE

 

v  Powdered soup

PET/EAA/LDPE/Al/LDPE

Print layer on PET. EAA layers give good bond to PET and Al. LDPE gives sealability.


Aseptic Packaging

Aseptic packaging is defined as the filling of a commercially sterile product into a sterile container under aseptic conditions and hermetically sealing the containers so that reinfection is prevented.

Similar to any other process, final product should meet few quality criteria, such as acts as barrier to moisture and oxygen and prevents contamination with micro-organisms. Also prevents loss of flavor compounds from juices.


v  Juice, Milk Cartons

LDPE/Al/LDPE/Waxed Board

LDPE gives sealability. Aluminum gives barrier to oxygen and in fruit juices prevents loss of flavor compounds.

 

v  Juice, Milk Pouches

Oriented PA/LDPE

PA/EVOH/PA/LDPE

Polyamide gives toughness and puncture resistance with moderate oxygen barrier. EVOH gives high oxygen barrier. LDPE gives sealability.


Liquid/Paste Packaging

Acts as barrier to moisture and prevents loss of flavor compounds. Also needs to be tough and puncture resistant.


v  Juice, Milk Cartons

LDPE/Al/LDPE/Waxed Board

LDPE gives sealability. Aluminum gives barrier to oxygen and in fruit juices prevents loss of flavor compounds.


v  Juice, Milk Pouches

Oriented PA/LDPE

PA/EVOH/PA/LDPE

Polyamide gives toughness and puncture resistance with moderate oxygen barrier. EVOH gives high oxygen barrier. LDPE gives sealability.

In current era, the film industry continues to expand its frontier by facing challenges requiring further development and innovation in both resin and machinery design advances. This includes improvements in both monolayer and co-extrusion blown and cast film, as well as downstream conversion operations. Finally, increasingly complex structures combining lamination and co-extrusion are possibilities further extending the possibilities of plastics of packaging.

Flextrusion’ strong commitment to research and development has provided us the tools to develop new solutions in Extrusion Coating & Laminating process to keep up with today's markets demand. In Flextrusion Sdn. Bhd., we are partner with our customer through development to innovation.

References

1-      Film Extrusion Manual - Second Edition, PROCESS, MATERIALS, PROPERTIES, TAPPI PRESS,

2-      Future direction of lamination in retort packaging, Packaging Films issue 4-2013, By Matt Tabassi

 


Sunday, September 20, 2020

Polypropylene Films Processing

 Some practical processing data explained 

Polypropylene films are one of the most pre-potent barrier films, versatile and economic than ever used in various packaging applications. Due to its excellent moisture barrier, clarity, gloss, durability, the ability to print, emboss-ability, aroma strength, dimensional stability, process-ability and other; markets of PP films are quickly changed and a number of new applications take market share of other plastic films. PP films compete with various other materials such as PVDC films, polyester films, nylon films, polyethylene films, cellulose films, wax paper, aluminium foil, and others on the basis of performance and cost.


Product developers soon have found these qualities and come to think about one of the most versatile thermoplastic resins for a wide variety of applications. Polypropylene is a unique material which can be steam-sterilized or autoclaved without damage and resists environmental stress cracking when subjected to most chemical tests and of course, PP offers higher heat resistance and is therefore more suitable for retort packaging or hot filling. It also offers an opportunity for better grease resistance compare to LLDPE/LDPE.

Years ago, Polypropylene (PP) was generally quite difficult to produce on the conventional upward blown film line, mainly due to its poor melt strength, long cooling time and somewhat inferior optical properties, although some of the raw material manufacturer had developed some specific polypropylene grades that can be processed on conventional upward blown film extrusion but in recent years, due to economic and quality reasons, the majority of produced films for packaging applications are made using flat die process.

The polypropylene film produced with Cast Polypropylene is offers magnificent transparency and external glossy qualities. It is extraordinary for packaging snacks as well as being used as a sealant film for retorting purpose due to its excellent heat sealing characteristic and stabilizing dimensions of packaged contents.

Films produced using the chill-roll process, where the die lip are at an optimum setting with auto profile control (APC), have a much more uniform thickness than conventional blown film lines.

In the later film process, the molten polymer emerging from the flat die lip will drop on either highly-polished chrome plated or matte finish cooling roll. With the later, the most important factor is the rough surface.

In addition to the flat die process, the process of blown film is also used for some applications where the size of the bubble plays an influential role in the further processing.

In such situation, to achieve better process-ability, conventional blown film extrusion requires some modifications such as higher L/D ratio, different die gap, more efficient cooling system with higher air volume to achieve desire quality.

Interestingly, PP can be produce by water quench system for the production of IV bags, in such a process in fact melts emerges from a circular die and is led by a touch of refreshing water calibration ring, which quenches immediately; this process is called the water quenching.

High quality PP film only could be processed using the special designed screws that are suitable for PP with the right shearing and mixing part and may have a length of from 25 to 33 L/D.

The temperature of the melt, with normal residence times should be between 220 ° C and 260 ° C to produce film structures as perfect as possible. For best quality films, filter packs recommended by the manufacturer.

To produce very high quality CPP film, it is necessary to use screen packages. For example, a typical package might consist of: 20/80/200/200/80 (end 80 is used to keep the 200s in place) this sensitivity to the gels made ​​it imperative that the plates breaking and the slide plate region are completely cleaned when the screens are changed.

In general, higher melt temperatures improve the optical properties of the film, yet the rising temperatures are melting too high could cause damage and reduce the thermal material properties and also bring problems with the increased smoke from the melt curtain, increased chill roll plate out and increased die lip buildup.

Major processing Factors

Factor

Direction

Tensile

Elongation

Impact

Haze

Polymer Temp.

MD

TD

Decrease

Negligible

Increase

Decrease

Negligible

Negligible

Decrease

Decrease

Cooling Temp.

MD

TD

Increase

Increase

Negligible

Increase

Decrease

Decrease

Increase

Increase

Die gap

MD

TD

Decrease

Negligible

Decrease

Increase

Increase

Increase

Decrease

Decrease

Air gap

MD

TD

Increase

Increase

Increase

Negligible

Decrease

Decrease

Increase

Increase

Line speed

MD

TD

Decrease

Decrease

Decrease

Decrease

Decrease

Decrease

Increase

Increase


Influence of processing on film properties

Selection of the correct raw materials together with the processing parameters has a strong influence on film properties.

Increasing of the die temperature will result in marginal improvements to the gloss and transparency.

In general, by increasing the chill-roll temperature we can increase the degree of crystallinity. As we lower the chill-roll temperature, the spherulitic structure becomes finer. This results in films with higher transparency, gloss and tenacity, but with reduced stiffness.

On the other hand, with higher chill-roll temperatures; frictional properties as a function of time are improved. The temperature of the second cooling roll and the winding angle impact not only the slip properties, but also the winding behaviour and flatness of the finish roll.

Surface treatment

Generally, plastics have chemically inert and nonporous surfaces with low surface tensions causing them to be non-receptive to bonding with substrates, printing inks, coatings, and adhesives. Polyethylene and polypropylene are the lowest in surface energy of the various plastics and are the two materials most often subjected to surface treatment to improve their bonding characteristics.

To ensure sufficient adhesion of printing inks, lamination adhesive or metal from metallization, the surface energy of CPP must be increased so that it achieves a minimum surface tension of 38 mN/m (dyne/cm).

Corona treatment is the preferred method on cast film lines to achieve an increased surface energy.

Back treatment is moderately usual occurrence with cast film which stands up from wrinkles and flexure on the reverse face. This phenomenon can be avoided by the prevention of air between the film and the surface of the dielectric roll. Back treatment may hinder with subsequent heat sealing and cause blocking, especially over print which results in unpleasant stripes.

Surface tension can be measured using a treatment pen or test solution immediately after Winding. Surface tension will reduce by roll aging about two points or more depending on the polymer additive levels. Excessive treatment may give rise to blocking, unacceptable odors or coloration. The treatment will usually cause some heating of the web. Steps must be undertaken to prevent this from causing creasing.

Coextrusion

When using the coextrusion procedure it is possible to combine different materials/properties in a sandwich construction. Coextrusion in general, and polyolefin coextrusion in particular, have gained a dominant position over the last few years.

In particular the 3-layer coextrusion in a layer combination ABA or ABC is a preferred version of PP for manufacturing multilayer constructions. 

Additives

The ideal formulation would probably change from winter to summer, since the ambient temperature will affect how quickly slip agent migrates to the surface of the film under different ambient conditions.

The usual practice is to set up feed-block combination to have the structure with the seal layer next to the chill roll, with the treated surface being extruded into free air.  While it might seem strange at first, the seal layer normally has 500-700 PPM of slip to provide a (thin) release layer between the film and the chill roll.  This release layer helps to prevent localized sticking of the melt curtain to the chill roll, which in turn allows wider latitude of vacuum levels to be run in the vacuum box.  In addition, slip in the skin layers makes it easier to wind a “tight” roll without localized “bruise marks”. 

It is also common practice to include from 200 to 1500 PPM of antiblock (AB) in the treat layer to improve the film winding and also how the film performs in subsequent converting operations.  AB does not migrate and increases the film’s haze, so there is no reason to include it in the core layer.  AB is not usually included in the heat seal layer, since AB makes it more difficult to obtain a good heat seal.

Real example of CPP in some applications 

PP – Twist films

This is a substitution of cellophane, PVC or wax paper

Typically produce on a Cast coex film, often 3-layers with PP Homo and PP Raco

 

FFS packaging films (BOPP substitution)

This is a substitution of laminates with BOPP structures or BOPP films

Typically produce on PP cast or PE blown film/BOPP with PP homo and Terpolymer or Raco sealing layer

 

Metallizable PP cast films

An alternative to BOPP and new applications

Typically it is a Cast PP with Racos and Homo PP

Used for Tobacco films, twist films, food packaging (bread, etc.)

 

Medical PP pouches - the pouch with the liquid

An alternative to PVC bags

Typically a 3 layer cast Coextrusion with following structure;

A Layer - PP Homo PP random with low CO2 content ‘heat resistant layer’

B Layer - Blends of PP Raheco or PP random with EPR, TPO, SEBS

C Layer - PP sealing layer; blend or random copo or terpolymer

 

Label/display films

This is a substitution of existing materials (PVC, PE) or new applications

Typically a Cast PP with Homo PP and blend of PE

 

Stand up pouch lamination film

This is a substitution of aluminium, white tin and glass bottles, trays, cans and boxes by a polymeric stand up pouch concept.

Typical structure often is SiOx coated PET/PA/PP laminates. PP has mainly the function of a sealing layer. It provides the tenacity and body of the film.

Used for packaging of soups, sauces, solid food, pet food, Detergent and cosmetics packaging.

 

Peelable films

Peelable structures/films based on PP sterilisable and non sterilisable.

Typical structure is a Coex film, consisting of PP core (homo, raco or block) and thin peelable layer (10 μm)

Used for all kinds of films for ready to eat meals, ice cream boxes, desserts, soft cheese, dairy products. Peelable flexible structures for food and detergents - peelable against itself. Sterilisable, peelable secondary packaging for medical pouches.

Above article has written by Matthew Tabassi and published by Packaging Films 1-2014

References:

 K IN0070/GB FF 2007 10 BB – Polypropylene Cast line by Borouge

Corona treatment: An overview by David A. Markgraf