TY - JOUR A1 - Hörold, Andreas A1 - Schartel, Bernhard A1 - Trappe, Volker A1 - Korzen, Manfred A1 - Bünker, J. T1 - Fire stability of glass-fibre sandwich panels: The influence of core materials and flame retardants N2 - Fire resistance has become a key property for structural lightweight sandwich components in aviation, shipping, railway vehicles, and construction. The development of future composite materials and components demands adequate test procedures for simultaneous application of compression and fully developed fire. Therefore an intermediate-scale approach (specimen size = 500 mm x 500 mm) is applied with compressive loads (up to 1 MN) and direct application of a burner to one side of the specimens, as established in aviation for severe burn-through tests. The influence of different core structures (polyvinylchloride foam, polyisocyanorate foam reinforced by stitched glass bridges, and balsa wood) was investigated for glass-fibre-reinforced sandwich specimens with and without flame retardants applied on the fabrics, in the matrix, and on surface for each specimen at the same time. Times to failure were increased up to a factor of 4. The intumescent coating prolongs the time to failure significantly. What is more, using the intrinsic potential of the front skin together with the core to protect a load bearing back skin in sandwich panels, the design of the core – here using the wood core – is the most promising approach. KW - Fire resistance KW - Fire stability KW - Glass-fibre-reinforced plastics KW - Composite KW - Core materials PY - 2017 DO - https://doi.org/10.1016/j.compstruct.2016.11.027 SN - 0263-8223 SN - 1879-1085 VL - 160 SP - 1310 EP - 1318 PB - Elsevier AN - OPUS4-38622 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schartel, Bernhard A1 - Wilkie, Charles A. A1 - Camino, Giovanni T1 - Recommendations on the scientific approach to polymer flame retardancy: Part 1—Scientific terms and methods N2 - The correct use of scientific terms, performing experiments accurately, and discussing data using unequivocal scientific concepts constitute the basis for good scientific practice. The significance and thus the quality of scientific communication rely on the proper use of terms and methods. It is the aim of this two-part article to support the community with recommendations for discussing the flame retardancy of polymers by addressing some of the most relevant points. The first article (part one of two) clarifies some scientific terms and, in some cases, such as for ‘‘pyrolysis,’’ ‘‘thermal decomposition,’’ and ‘‘fire resistance,’’ critically discusses their definitions in the field of fire science. Several comments are made on proper fire testing and thermal analysis, including some thoughts on uncertainty in fire testing. The proper use of distinct concepts in flame retardancy is discussed briefly in the subsequent second article (part two). This article tries to Balance imparting background on the subject with recommendations. It encourages to check scientific practice with respect to communication and applying methods. KW - Pyrolysis KW - Fire testing KW - Char KW - Flame retardant KW - Flammability KW - Fire property PY - 2016 DO - https://doi.org/10.1177/0734904116675881 SN - 0734-9041 SN - 1530-8049 VL - 34 IS - 6 SP - 447 EP - 467 PB - SAGE AN - OPUS4-38115 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard T1 - Born in fire to kill fire – graphene in flame retardant nanocomposites N2 - Carbon black, multiwall carbon nanotubes, expanded graphite, multilayer graphene and graphene are compared comprehensively as flame retardants in nanocomposites to each other. Different polymer matrices are investigated as well as changing the concentration of the carbon fillers. Distinct combinations of graphene with conventional flame retardants are investigated. Phenomena and mechanisms are identified controlling the pyrolysis and fire behavior. The viscosity of the nanocomposites and their thermal conductivity as well are dramatically changed compared to the polymers influencing the time to ignition and flammability. During pyrolysis graphene functioned as inert filler and formed a residual protective layer reducing the peak heat release rate. The influence of graphene on the effectivity of various conventional halogen-free flame retardants depends strongly on their modes of action. The addition of a small amount of graphene to an intumescent flame retardant poly(propylene) led to an improvement in the cone calorimeter. The further increase of graphene content gained deceleration of swelling and a decrease of the final height of the intumescent layer. In combination with metal hydroxide, 1 wt% graphene closed the macroscopic surface structure and densified the microscopic structure of the fire residues tremendously. Due to this improved residue structure, metal hydroxides and graphene showed synergistic cooperation in terms of oxygen index and UL 94 classification (HB/V-1 to V-0). T2 - Rudolstädter Kunststoff-Tag CY - Rudolstadt, Germany DA - 12.10.2016 KW - Graphene KW - Nanocomposite KW - Flame retardant KW - Flammability KW - Pyrolysis PY - 2016 AN - OPUS4-38116 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard T1 - Flame and fire retardancy of fibre reinforced polymer composites N2 - Carbon fibre (CF) and glass fibre (GF) reinforced polymers are used for diverse applications such as electronics/electrical engineering, transportation (railway vehicles, shipping, aviation) and construction. The fire behaviour of composites differs in comparison to polymers. Fibres behave often inert with respect to pyrolysis, but they change the melt flow and dripping behaviour, the heat absorption and transfer, the amount and properties of the fire residue and so on. Flame and fire retardancy concepts are needed not only suitable for the different fire protection goals typical for each application, but also tailored for composites. The field is illuminated by examples taken from different projects carried out in the group of the author in the recent years. The examples target on different applications through achieving V0 in UL 94 testing (reaction to small flame controlling the fire risks in the beginning of a fire), reducing heat release rate and fire load in the cone calorimeter (fire risks under forced flaming combusting controlling the contribution to developing fires) and investigating the fire stability when a severe flame is directly applied (key property in fully developed fires). Approaches to halogen-free flame retardancy in GF reinforced thermoplastics and CF reinforced thermosets are presented as well as building up a bench and intermediate scale testing of composites in fire applying mechanical load and direct flame exposure simultaneously. The understanding of fire behaviour and flame retardancy mode of actions in composites is a promising basis for target-oriented development. The role of flame inhibition, charring and protective layer formation is discussed in composites. Successful concepts are presented for flame retardancy tailored for different application as well as general guidelines for future development. Different phosphorus flame retardants are proposed to achieve halogen-free flame retardancy in applications demanding limited fire risks with respect to ignition and developing fires. Different protective approaches are sketched for addressing the fire resistance of composite that is the most important fire risk for structural applications. T2 - International Workshop on Nanostructured Materials and Their Use in Fire Retardancy Applications CY - Stockholm, Sweden DA - 23.11.2016 KW - Composites KW - Fire resistance KW - Flame retardancy KW - Composites in fire KW - Fire testing PY - 2016 AN - OPUS4-38565 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - BOOK A1 - Schubert, Martina A1 - Schartel, Bernhard A1 - Lang, M. A1 - Yin, Huajie A1 - Dittrich, Bettina A1 - Heidemeyer, P. A1 - Bastian, Martin T1 - Wirkungsweise von halogenfreien Flammschutzmitteln in WPC N2 - Das Ziel des Forschungsvorhabens war die Untersuchung der Wirkungsweise von halogenfreien Flammschutzmitteln in WPC. Eine große Anzahl verschiedener Flammschutzmittel wurde hinsichtlich ihrer Wirkmechanismen umfassend untersucht, um ein Verständnis für die ablaufenden Prozesse zu entwickeln. Hierbei wurden verschiedene Brandtests eingesetzt, um die Materialien bezüglich verschiedener Applikationen (E&E, Transportwesen, Bauwesen) zu beleuchten. Die verschiedenen Untersuchungen liefern aber auch ein umfassendes Bild vom Brandverhalten in den verschiedenen Eigenschaften, wie Entflammbarkeit und Brandausbreitung. Die prinzipiellen Ansätze wurden anhand von verschiedenen Flammschutzmitteln beleuchtet, ihre Pyrolyse und ihre Performance in verschiedenen Brandtests gegenübergestellt. Bei der angestrebten geringen Zusatzmenge ist durch den Zusatz eines einzigen Flammschutzmittels keine zufriedenstellende Reduktion der Brandeigenschaften zu erwarten. Multikomponentensysteme zur Steigerung der Effizienz sind angezeigt. Einige prinzipielle Kombinationsmöglichkeiten wurden für alle Hauptflammschutzmittel durchgespielt. Die teilweise deutlichen Verbesserungen zeigen Wege zur erfolgreichen Produktentwicklung auf. So konnten bei den Spritzgießcompounds Eigenschaften erzielt werden, die eine UL 94 V0 Klassifizierung ermöglichen. Ein Einsatz der im Forschungsvorhaben hergestellten Compounds als Baustoff ist aufgrund des Brandverhaltens in den baustoffspezifischen Prüfungen nicht möglich. Hier sind weitere Flammschutz-Konzepte zu erproben. Gleitmittel nehmen bei den untersuchten Extrusionscompounds keinen Einfluss auf das Brandverhalten. Haftvermittler nehmen ebenfalls keinen signifikanten Einfluss auf das untersuchte Brandverhalten, können aber zu einer veränderten Verteilung der Füllstoffe und damit zur Ausbildung einer effektiveren Schutzschicht führen. Feinere Holzpartikel schneiden bei den Brandprüfungen besser ab als grobe Holzpartikel. Bei Einsatz von grobem Holz wird eine schlechtere Rückstandsstruktur ausgebildet, was das Brandverhalten negativ beeinflusst. Der Einsatz von vorbehandeltem Holz brachte nicht die erwartete Verbesserung. Die neu konzipierte Aufbereitungsanlage auf Basis des Planetwalzenextruders konnte erfolgreich in Betrieb genommen werden. Vergleichende Versuche mit dem Doppelschneckenextruder zeigten, dass der PWE-Aufbau eine gute Alternative zur etablierten DSE-Aufbereitung darstellt. Zusätzlich wurden an Compounds vielversprechender Flammschutzansätze weitere Materialprüfungen (Biegeversuch, Schlagversuch, Wasseraufnahme) durchgeführt, um den Einfluss der FSM auf die spezifischen Eigenschaften der WPC zu beleuchten. N2 - The objective of the research project was to investigate the effect of halogen-free flame retardants in WPC. A large number of different flame retardants was thoroughly examined regarding their effect mechanisms to develop an understanding for the processes taking place. Different fire tests were used to examine the materials with respect to the different applications (E&E, transportation, construction). Additionally, the different investigations provide a comprehensive picture of the fire behavior regarding the different properties, such as flammability and fire spread. The fundamental approaches were examined by means of different flame retardants and their pyrolysis and performance were compared in different fire tests. A satisfactory reduction of the fire properties by adding only one flame retardant cannot be expected with the intended low added amount. Multi-component systems to increase the efficiency are indicated. Some basic combination options were tried out for all main flame retardants. The partially considerable improvements illustrate ways for successful product development. This way, properties could be achieved in injection molding compounds, which allow for a UL 94 V0 classification. It is not possible to use the compounds introduced in the research project as building material due to the fire behavior in the building material specific tests. Further flame protection concepts need to be tested in this area. Slip agents do not have an influence on the fire behavior of the examined extrusion compounds. Adhesion promoters also do not have a significant influence on the examined fire behavior but can lead to a change in the distribution of the fillers and thus to the formation of a more effective protective layer. Finer wood particles performed better in the fire tests than coarse wood particles. When using coarse wood, an inferior residual structure is formed, which has an adverse effect on the fire behavior. The use of pretreated wood fibers did not bring the expected improvement. The newly conceived processing technique based on a planetary roller extruder (PRE) was successfully put into operation. Comparative tests with twin-screw extruders (TSE) showed that the PRE configuration is a good alternative to the established TSE processing. Additionally, further material testing (bending test, impact test, water absorption) was performed on promising flame retarded compounds to examine the influence of the fire retardants on the specific properties of the WPC. KW - Wood plastic composite KW - Halogen free KW - Flame retardancy PY - 2016 SN - 978-3-8440-4645-8 SN - 2364-754X SP - 1 EP - 88 PB - Shaker Verlag CY - Aachen AN - OPUS4-37482 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard A1 - Timme, Sebastian A1 - Hörold, Andreas A1 - Trappe, Volker A1 - Korzen, Manfred T1 - Composites in fire: Intermediate-scale testing of sandwich panels and shells N2 - Intermediate-scale testing is indispensable when investigating the fire resistance under simultaneous compressive load of components made of glass- and carbon-fibre-reinforced composites (GFRP and CFRP). BAM is successfully operating an intermediate-scale test stand, developed for a specimen size of 500 mm x 500 mm (1000 mm). The fire resistance in terms of fire stability of CFRP and GFRP sandwiches are investigated, e.g. at 20 % of their compressive failure load at room temperature. Times to failure increase by up to a factor of 4 due to intumescent coatings. For GFRP sandwiches, different core structures with and without additional flame retardants show an astonishing impact on time to failure. CFRP shell structures are investigated on the intermediate scale with and without stringer reinforcements, resulting in completely different mechanical failure behaviour in the ultimate load test as opposed to the fire resistance test. The stringers become the only load-carrying part, while the shell acts as a protective layer. Thus the design exploiting this self-protection potential, i.e. the residue of the front skin protecting the load-bearing structure, is highlighted as a most promising route to enhance the fire resistance of lightweight materials. T2 - Interflam 2016 CY - Egham, Surrey, UK DA - 04.06.2016 KW - composite KW - fire stability KW - fire resistance KW - sandwich panels KW - shells KW - intermediate-scale testing PY - 2016 SN - 978-0-9933933-2-7 SN - 978-0-9933933-3-4 VL - 2 SP - 1465 EP - 1470 PB - Interscience communications AN - OPUS4-36892 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard T1 - Composites in fire: Intermediate-scale testing of sandwich panels and shells N2 - Intermediate-scale testing is indispensable when investigating the fire resistance under simultaneous compressive load of components made of glass- and carbon-fibre-reinforced composites (GFRP and CFRP). BAM is successfully operating an intermediate-scale test stand, developed for a specimen size of 500 mm x 500 mm (1000 mm). The fire resistance in terms of fire stability of CFRP and GFRP sandwiches are investigated, e.g. at 20 % of their compressive failure load at room temperature. Times to failure increase by up to a factor of 4 due to intumescent coatings. For GFRP sandwiches, different core structures with and without additional flame retardants show an astonishing impact on time to failure. CFRP shell structures are investigated on the intermediate scale with and without stringer reinforcements, resulting in completely different mechanical failure behaviour in the ultimate load test as opposed to the fire resistance test. The stringers become the only load-carrying part, while the shell acts as a protective layer. Thus the design exploiting this self-protection potential, i.e. the residue of the front skin protecting the load-bearing structure, is highlighted as a most promising route to enhance the fire resistance of lightweight materials. T2 - Interflam 2016, 14th International Interflam Conference CY - Egham, UK DA - 04.07.2016 KW - Composites KW - Carbon fibre KW - Shells KW - Sandwich panels KW - Fire resistance KW - Fire stabiliy KW - Stringer reinforced components PY - 2016 AN - OPUS4-36870 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Rabe, Sebastian A1 - Schartel, Bernhard T1 - The rapid mass calorimeter: Understanding reduced-scale fire test results N2 - The effects of reducing specimen size on the fire behavior of polymeric materials were investigated by means of the rapid mass calorimeter, a high-throughput Screening instrument. Results from the rapid mass calorimeter were compared with those from the cone calorimeter. Correlation coefficients between the different measures of each method and between the two methods are discussed to elucidate the differences and similarities in the two methods. Materials with characteristic heat release rate (HRR) curves in the cone calorimeter were evaluated in detail. The rapid mass calorimeter produces valuable and interpretable results with HRR curve characteristics similar to cone calorimeter results. Compared to cone calorimeter measurements, material savings of 96% are achieved, while maintaining the Advantages of a macroscopic fire test. KW - Rapid mass calorimeter KW - High throughput KW - Cone calorimeter KW - Flame retardancy PY - 2017 DO - https://doi.org/10.1016/j.polymertesting.2016.11.027 SN - 0142-9418 VL - 57 SP - 165 EP - 174 PB - Elsevier AN - OPUS4-38739 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Qiu, Y. A1 - Wachtendorf, Volker A1 - Klack, Patrick A1 - Qian, L. A1 - Liu, Z. A1 - Schartel, Bernhard T1 - Improved flame retardancy by synergy between cyclotetrasiloxane and phosphaphenanthrene/triazine compounds in epoxy thermoset N2 - A siloxane compound (MVC) and a bi-group phosphaphenanthrene/triazine compound (TGD) were employed in epoxy thermosets to explore high-efficiency flame retardant systems. With only 1wt% MVC and 3wt% TGD, an epoxy thermoset passed UL 94 V-0 rating test and achieved a limiting oxygen index value of 34.0%, exhibiting an excellent flame retardant effect. The MVC/TGD system not only decreased the peak value of heat release rate and effective heat of combustion but also imparted an improved charring ability to thermosets, thereby outstandingly reducing the flammability of 1%MVC/3%TGD/EP. Compared with the fire performance of 4%TGD/EP and 4%MVC/EP, the MVC/TGD system showed an obvious flame retardant synergistic effect, mainly depending on the general improvement of flame inhibition, charring and barrier effects of the thermoset during combustion. Evolved gas analysis combinedwith condensed-phase pyrolysis product Analysis jointly revealed the details of the changed pyrolysis mode. KW - Flame retardant KW - Epoxy resin KW - Synergy KW - Siloxane KW - DOPO KW - Triazine PY - 2017 DO - https://doi.org/10.1002/pi.5466 SN - 0959-8103 SN - 1097-0126 VL - 66 IS - 12 SP - 1883 EP - 1890 PB - Wiley AN - OPUS4-42950 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schwarzer, M. A1 - Korwitz, A. A1 - Komber, H. A1 - Häußler, L. A1 - Dittrich, Bettina A1 - Schartel, Bernhard A1 - Pospiech, D. T1 - Phosphorus-containing polymer flame retardants for aliphatic polyesters N2 - Polyesters with 9,10-dihydro-9-oxy-10-phosphaphenanthrene-10-oxide-containing comonomers are synthesized aiming to improve the flame retardancy of aliphatic polyesters such as poly(butylene succinate) and poly(butylene sebacate). The influence of the chemical structure on the thermal decomposition and pyrolysis is examined using a combination of thermogravimetric analysis (TGA), TGA-Fourier transform infrared (FTIR) spectroscopy, pyrolysis-gas chromatography/mass spectrometry, and microscale combustion flow calorimetry. Thermal decomposition pathways are derived and used to select suitable candidates as flame retardants for PBS. The fire behavior of the selected polymers is evaluated by forced-flaming combustion in a cone calorimeter. The materials show two modes of action for flame retardancy: strong flame inhibition due to the release of a variety of molecules combined with charring in the solid state. KW - Synthesis KW - Flame retardant KW - Aliphatic polyester KW - DOPO PY - 2018 DO - https://doi.org/10.1002/mame.201700512 SN - 1438-7492 SN - 1439-2054 VL - 303 IS - 2 SP - 1700512-1 EP - 1700512-16 PB - Wiley VCH Verlag AN - OPUS4-44334 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Gallo, Emanuela A1 - Stöcklein, Waldemar A1 - Klack, Patrick A1 - Schartel, Bernhard T1 - Assessing the reaction to fire of cables by a new bench-scale method N2 - The recently approved EU Construction Products Regulation (CPR) applies to cables as construction products. The difficulty of predicting the fire performance of cables with respect to propagation of flame and contribution to fire hazards is well known. The new standard EN 50399 describes a full-scale test method for the classification of vertically mounted bunched cables according to CPR. Consideration of the material, time, and thus cost requires an alternative bench-scale fire test, which finds strong demand for Screening and development purposes. The development of such a bench-scale fire test to assess the fire Performance of multiple vertically mounted cables is described. A practical module for the cone calorimeter is proposed, simulating the fire scenario of the EN 50399 on the bench scale. The efficacy of this module in predicting full-scale CPR test results is shown for a set of 20 different optical cables. Key properties such as peak heat release rate (PHRR), fire growth rate (FIGRA), and flame spread are linked to each other by factors of around 5. In a case study, the bench-scale test designed was used to investigate the influence of the main components on the fire behaviour of a complex optical cable. KW - Optical cables KW - Construction products regulation KW - Bench-scale fire testing KW - Reaction to fire KW - Cone calorimeter PY - 2017 DO - https://doi.org/10.1002/fam.2417 SN - 0308-0501 SN - 1099-1018 VL - 41 IS - 6 SP - 768 EP - 778 PB - Wiley AN - OPUS4-42092 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard T1 - Flame and fire retardancy of polymer composites used in aviation N2 - The fire behaviour of carbon fibre (CF) reinforced polymers differs in comparison to polymers. Fibres behave often inert with respect to pyrolysis, they change the melt flow and dripping behaviour, the heat absorption and transfer, the amount and properties of the fire residue and so on. Flame and fire retardancy concepts are needed not only suitable for the different fire protection goals typical for each application, but also tailored for composites. This field is illuminated by examples taken from different projects carried out in the group of the author in the recent years. The examples target on different applications through achieving reduction in reaction to fire controlling the fire risks (flammability, heat release) in the beginning and development of a fire and investigating the fire stability, when a severe flame is directly applied (key property in fully developed fires). Approaches to halogen-free flame retardancy in CF reinforced thermosets are presented as well as building up a bench and an intermediate scale testing of composites in fire applying mechanical load (up to 1 MN compression) and direct flame exposure (180 kW/m2) simultaneously. Indeed, e.g. we have investigated the fire stability of stringer reinforced shell components taken out from the fuselage of an aircraft. The understanding of fire behaviour, fire resistance, and fire retardant modes of action in composites is a promising basis for target-oriented development. The role of flame inhibition, charring, and protective layer formation is discussed. Successful concepts are presented for fire retardancy tailored for different application as well as general guidelines for future development. Different phosphorus flame retardants are proposed to achieve halogen-free flame retardancy with respect to ignition and developing fires. Different protective approaches are sketched for addressing the fire stability of composites that is the most important fire risk for the fire resistance in structural applications. T2 - 7th EASN International Conference on Innovation in European Aeronautics Research CY - Warsaw, Poland DA - 26.09.2017 KW - Composite in Fire KW - Carbon fibre reinforced composite KW - Epoxy resin KW - Stringer reinforced shells KW - Fire stability KW - Flammability KW - Sandwich panels KW - Intumescence KW - Pyrolysis KW - Flame retardant PY - 2017 AN - OPUS4-42433 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard T1 - Flammschutz in PUR: Eine alte, aktuelle und zukünftige Herausforderung N2 - Der Beitrag versucht sich an der Herausforderung, trotz beschränktem zeitlichen Rahmen einen ansprechenden Spagat zwischen umfangreichem Überblick und wissenschaftlichem Verständnis und so eine unabhängige und unparteiliche Einführung in Thematik flammgeschützte PUR-Schäume zu geben. Er kann sicherlich nicht individuelle Antworten oder konkrete Entwicklungsziele wie neue Rezepturvorschläge liefern, aber hofft zum Hintergrund und als Handwerkzeugs für das Aufstellen und Überdenken von Entwicklungsstrategien beizutragen. T2 - Internationale FSK-Fachtagung Schaumkunststoffe CY - Papenburg, Germany DA - 27.11.2018 KW - Polyurethan KW - Schaum KW - Flammschutz PY - 2018 AN - OPUS4-46911 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Sypaseuth, Fanni D. A1 - Gallo, Emanuela A1 - Çiftci, Serhat A1 - Schartel, Bernhard T1 - Polylactic acid biocomposites: approaches to a completely green flame retarded polymer N2 - Basic paths towards fully green flame retarded kenaf fiber reinforced polylactic acid (K-PLA) biocomposites are compared. Multicomponent flame retardant Systems are investigated using an amount of 20 wt% such as Mg(OH)2 (MH), ammonium polyphosphate (APP) and expandable graphite (EG), and combinations with Silicon dioxide or layered silicate (LS) nanofillers. Adding Kenaf fibers and flame retardants increases the E modulus up to a factor 2, although no compatibilizer was used at all. Thus, in particular adding EG and MH decreases the strength at maximum elongation, and kenaf fibers, MH, and EG are crucial for reducing the elongation to break. The Oxygen index is improved by up to 33 vol% compared to 17 vol% for K-PLA. The HB classification of K-PLA in the UL 94 test is outperformed. All flame retarded biocomposites show somewhat lower thermal stability and increased amounts of residue. MH decreases the fire load significantly, and the greatest reduction in peak heat release rate is obtained for K-PLA/15MH/5LS. Synergistic effects are observed between EG and APP (ratio 2:1) in flammability and fire properties. Synergistic multicomponent systems containing EG and APP, or MH with adjuvants offer a promising route to green flame retarded natural fiber reinforced PLA biocomposites. KW - Biopolymers KW - Composites KW - Flame retardance KW - Natural fibres KW - Thermal decomposition PY - 2017 DO - https://doi.org/10.1515/epoly-2017-0024 SN - 2197-4586 SN - 1618-7229 VL - 17 IS - 6 SP - 449 EP - 462 PB - De Gruyter AN - OPUS4-42872 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard T1 - Flame and Fire Retarded Fibre Reinforced Polymer Composites N2 - Carbon fibre (CF) and glass fibre (GF) reinforced polymers are used for diverse applications demaning flame and fire retardancy in the fire scenarios ignition, developing fire and fully developed fire. The fire behaviour of composites differs from polymers, since fibres behave often inert with respect to pyrolysis, change the melt flow / dripping behaviour, the heat absorption and transfer, the amount and properties of the fire residue. Concepts are needed suitable for the different fire protection goals, but also tailored for composites. The field is illuminated by examples carried out in the group of the author in the recent years. Approaches to halogen-free flame retardancy in GF reinforced thermoplastics and CF reinforced thermosets are presented as well as building up a bench and intermediate scale testing of composites in fire applying mechanical load and direct flame exposure simultaneously. The understanding of fire behaviour and flame retardancy modes of action in composites is a promising basis for target-oriented development. T2 - GDCh-Kolloquium Bremen CY - Bremen, Germany DA - 11.12.2017 KW - Composites KW - Fire stability KW - Flame retardancy KW - Halogen-free flame retardant KW - Composite in fire KW - Modes of action PY - 2017 AN - OPUS4-43487 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard T1 - Flame Retardancy of Polymers: Modes of Action N2 - The main flame retardant modes of action are well known, but in practise the detailed scientific understanding usually falls short, when it comes to modern multicomponent systems, the important tiny optimizations, or quantifying in terms of specific fire properties. This talk delivers thought-provoking impulses, picking up some overseen details as well as raising basic questions. A detailed scientific insight in flame retardant modes of action much more than an overview is presented. T2 - Kolloquium-Thermodynamik CY - Duisburg, Germany DA - 15.12.2017 KW - Flame retardant KW - Fire retardant KW - Mechanisms KW - Modes of action KW - Charring KW - Flame inhibition PY - 2017 AN - OPUS4-43488 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Sut, Aleksandra A1 - Metzsch-Zilligen, E. A1 - Großhauser, M. A1 - Pfaendner, R. A1 - Schartel, Bernhard T1 - Rapid mass calorimeter as a high-throughput screening method for the development of flame-retarded TPU N2 - The rapid mass calorimeter (RMC) was used as a screening tool based on accelerated fire testing to assess flame-retarded thermoplastic polyurethane (TPU). The reliability of RMC results was proven with the cone calorimeter as reference fire test. The influence of melamine cyanurate (MC) concentration on the fire performance of TPU was investigated, along with some flame-retardant combinations such as MC with aluminium diethylphosphinate (AlPi), aluminium trihydrate (ATH), and melamine polyphosphate (MPP). The two-stage burning behaviour of TPU was investigated in detail; the first stage corresponds mainly to the hard segments' decomposition and has a much lower effective heat of combustion (EHC) than the second stage, in which mainly the soft segments decompose and an intensive liquid pool fire is observed in the cone calorimeter set-up. In addition to fire testing with the cone calorimeter, RMC, and UL 94 flammability tests, the decomposition of the materials was investigated using thermogravimetric analysis coupled with infrared spectrometry (TGeFTIR). TPU/MC/AlPi shows the most promising results, achieving V-0 classification in UL 94 and reducing the extreme peak heat release rate (PHRR) of the liquid pool fire from 3154 kW/m2 to 635 kW/m2. Using MC/AlPi/MPP enhances the latter PHRR reduction further. The decomposition products identified in the gas phase via TGeFTIR reveal specific MCeAlPi eMPP interactions, as they differ from products seen in systems with MC/AlPi or MC/MPP. Correlations between RMC and cone calorimeter results were examined and presented in the final part of the paper. Several characteristics correlate strongly, pointing out that RMC is a reliable high-throughput fire testing method to screen multicomponent flame-retardant solutions in TPU. KW - Thermoplastic polyurethane KW - Flame retardancy KW - Rapid mass calorimeter KW - High throughput screening PY - 2018 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-456982 SN - 0141-3910 SN - 1873-2321 VL - 156 SP - 43 EP - 58 PB - Elsevier Ltd. AN - OPUS4-45698 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Velencoso, M. M. A1 - Battig, Alexander A1 - Markwart, J. C. A1 - Schartel, Bernhard A1 - Wurm, F. R. T1 - Molecular firefighting – How modern phosphorus chemistry can help solve the challenge of flame retardancy N2 - The ubiquity of polymeric materials in daily life Comes with an increased fire risk, and sustained research into efficient flame retardants is key to ensuring the safety of the populace and material goods from accidental fires. Phosphorus, a versatile and effective element for use in flame retardants, has the potential to supersede the halogenated variants that are still widely used today: current formulations employ a variety of modes of action and methods of implementation, as additives or as reactants, to solve the task of developing flameretarding polymeric materials. Phosphorus-based flame retardants can act in both the gas and condensed phase during a fire. This Review investigates how current phosphorus chemistry helps in reducing the flammability of polymers, and addresses the future of sustainable, efficient, and safe phosphorus-based flame-retardants from renewable sources. KW - Flame retardant KW - Phosphorus KW - Halogen-free PY - 2018 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-457009 DO - https://doi.org/10.1002/anie.201711735 SN - 1433-7851 SN - 1521-3773 VL - 57 IS - 33 SP - 10450 EP - 10467 PB - Wiley VHC AN - OPUS4-45700 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schartel, Bernhard T1 - The Role of Decomposition Temperature for Flame Redartancy Mode of Action in the Condensed Phase N2 - Condensed-phase mechanisms play a major role in fire-retardant polymers. Generations of development have followed the concept of charring to improve fire properties. Whereas the principal reactions are believed to be known, the specific description for multicomponent systems is lacking, as is the picture across different systems. One important aspect in achieving, adjusting and optimising flame retardancy in the condensed phase is exploiting chemical reactions between the pyrolysing polymer and flame retardant at the right place, time and temperature. It is the aim of this contribution to address the role of the decomposition temperature of both flame retardant and polymer by the means of two examples: First, aryl phosphates in Polycarbonate/ Acrylonitrile-Butadiene-Styrene (PC/ABS) blends, where the reaction with the early stage decomposition products of PC is controlling the flame retardancy mechanism in the condensed phase. Second, a comprehensive set of phosphorus flame retardants in thermosets and their corresponding carbon fibre reinforced composites based on two different epoxy systems. Both examples show that key reactions between intermediate decomposition products only occur when the decomposition temperature ranges correspond to each other. The systems can be shifted towards condensed phase activity such as charring or inorganic glass formation as well as towards phosphorus release and thus flame inhibition in the gas phase. Changing the role of flame retardancy mechanisms also influence the efficiency in the achieved flame retardancy. T2 - 10th International Conference on Modification, Degradation and Stabilization of Polymers, MoDeSt2018 CY - Tokyo, Japan DA - 02.09.2018 KW - Acrylphosphate KW - Flame retardant mode of action KW - Mechanism KW - Phosphorus PY - 2018 AN - OPUS4-45966 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Gómez-Fernández, S. A1 - Günther, Martin A1 - Schartel, Bernhard A1 - Corcuera, M. A. A1 - Eceiza, A. T1 - Impact of the combined use of layered double hydroxides, lignin and phosphorous polyol on the fire behavior of flexible polyurethane foams N2 - Flexible polyurethane foams with densities of 40 ± 2 kg m−3 were prepared by combining different ecofriendly fillers such as layered double hydroxides (LDH) and kraft lignin (a byproduct of the pulp and paper industry) with a phosphorous polyol (E560) in order to study their effect on the mechanical performance and fire behavior of the foams. Two series of foams were prepared, some containing lignin or LDH separately, and some with a combination of both: one of the series was prepared without E560 (0E foam series) and the other with 5 parts per hundred of E560 polyol (5E series). The use of fillers resulted in increased viscosity of the reactive mixture, requiring higher blowing agent content in order to hold the density of the foams constant. It was observed that urea phase segregation was favored in the series of 0E foams due to their lower viscosity than the 5E series. This had consequent effects on the resilience, compression force deflection and compression set of these foams. In terms of fire behavior it was observed that while the limiting oxygen index decreased, cone calorimeter results showed that the combination of lignin, LDH and E560 decreased the heat release of the foams. In addition, the combination of fillers and E560 contributed to increase the viscosity of the pyrolysis products, preventing the dripping of the molten polymer, which is a key factor in flame propagation towards adjacent objects in fire scenarios. KW - Ligning KW - Foam KW - Flexible polyurethane foam KW - Flame retardant PY - 2018 SN - 0926-6690 VL - 125 SP - 346 EP - 359 PB - Elsevier B.V. AN - OPUS4-45971 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -