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- 2021 (6) (entfernen)
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- Bitumen (2)
- Alkali-activated binders (1)
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- Asphaltstraße (Oberbau) (1)
- BBR (1)
- BOFS (1)
- Bitmuinöses Mischgut (1)
- Bituminous binders (1)
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Organisationseinheit der BAM
- 7 Bauwerkssicherheit (5)
- 7.1 Baustoffe (4)
- 7.4 Baustofftechnologie (2)
- 1 Analytische Chemie; Referenzmaterialien (1)
- 1.1 Anorganische Spurenanalytik (1)
- 4 Material und Umwelt (1)
- 4.4 Thermochemische Reststoffbehandlung und Wertstoffrückgewinnung (1)
- 7.0 Abteilungsleitung und andere (1)
- 8 Zerstörungsfreie Prüfung (1)
- 8.0 Abteilungsleitung und andere (1)
Development of a test system for identifying the bitumen type and the modifier used in a reclaimed asphalt Da Polymer-, Gummi-, wachs- und mehrfachmodifizierte Bitumen seit Jahren im Asphaltstraßenbau eigesetzt werden, kommen diese vermehrt im Ausbauasphalt vor. Zur Bewertung des Ausbauasphalts ist es daher notwendig, die Modifizierungen an der Mischanlage zu identifizieren. Die Ausbildung des Bindemittelsacks beim Erweichungspunkt Ring und Kugel ist charakteristisch für die Modifizierung. Hierdurch können wachsmodifizierte Bitumen (WmB) recht präzise und Polymermodifizierten Bitumen (PmB) teilweise identifiziert werden. Mittels Differential Scanning Calorimetry (DSC) werden die Schmelztemperaturen der Wachse erfasst. Hierdurch können WmB identifiziert und die Wachsarten unterschieden werden. Die Analytik mittels Dynamischem Scherrheometer (DSR) startet mit der Bestimmung der Äquisteifigkeitstemperatur EG*T. Bei EG*T werden Frequenz-, Amplituden- und MSCR-Tests durchgeführt. Die Grenze des LVE-Bereichs dient der Identifizierung von WmB. Anhand der Kennwerte bei 0,1 Hz können PmB erkannt werden. Die Rückformung (MSCRT) dient der Identifizierung von Mehrfachmodifizierungen. Da Gummimodifizierte Bitumen (GmB) bei der Extraktion erkannt werden, können alle Modifizierungsarten identifiziert werden. In den FTIR-Spektren (Fourier-Transformations-Infrarotspektroskopie) der modifizierten Bitumen verursachen einige Polymere und Wachse charakteristische Banden, wodurch diese erkannt werden. Die Identifizierung der übrigen Additive erfolgt mithilfe einer multivariaten Auswertung, wodurch mit Ausnahme der GmB (nicht erforderlich) alle Additive erkannt werden. An Stichproben konnte zudem eine Abgrenzung von Mehrfachmodifizierungen sowie eine Abschätzung der Zugabemenge erreicht werden. DSR und FTIR ermöglichen beide eine schnelle, einfache und zielsichere Identifizierung der Bitumenmodifizierungen. Durch die FTIR-Analytik können die Modifizierungen mit der größtmöglichen Präzision bestimmt werden. Die DSR-Analytik erlaubt dafür zusätzlich eine baupraktische Bewertung der Bindemittel.
As polymer, rubber, wax and multi-modified bitumen are used for asphalt road construction since many years, they increasingly occur in reclaimed asphalt. To assess the reclaimed asphalt, it is therefore necessary to identify the modifications in the mixing plants. The formation of the binder bag at softening point ring and ball is characteristic for modification. In this way, wax modified bitumen (WmB) can be identified rather precisely and to a less extent polymer modified bitumen (PmB) can also be identified. Differential scanning calorimetry (DSC) is used to record the melting temperatures of the waxes. In this way, WmB can be identified and a differentiation can be made between the wax types. The analysis by means of the dynamic shear rheometer (DSR) starts with the determination of the equi-stiffness temperature EG*T. Frequency-, amplitude- and MSCR-tests are performed at EG*T. The limit of the LVE range is used to identify WmB. PmB can be identified based on the characteristic values at 0.1 Hz. Creep recovery (MSCRT) is used to identify multi-modifications. As rubber modified bitumen (GmB) is identified on extraction, all types of modification can therefore be identified. Several polymers and waxes cause characteristic bands in the FTIR spectra (Fourier Transform Infrared spectroscopy) of modified bitumen, which enables the identification of these additives. The other additives except the GmB (not necessary) can be identified by means of multivariate model. Further, due to random evaluations, the differentiation between single- and multi-modification as well as the estimation of the content of some additives is possible. DSR and FTIR both enable fast, simple and accurate identification of the bitumen modification. The modification can be determined with the greatest possible precision by using FTIR analysis. On the other hand, DSR analysis allows additional practical assessment of the binder on site.
Bitumen is a crucial building material in road construction, which is exposed to continuously higher stresses due to higher traffic loads and changing climatic conditions. Therefore, various additives are increasingly being added to the bitumen complicating the characterisation of the bituminous binder, especially concerning the reuse of reclaimed asphalt.
Therefore, this work aimed to demonstrate that the combination of Fourier transform infrared (FTIR) spectroscopy with attenuated total reflexion (ATR) technique and multivariate evaluation is a very wellsuited method to reliable identify and quantify additives in bituminous binders. For this purpose, various unmodified and modified binders, directly and extracted from laboratory and reclaimed asphalts, were investigated with FTIR-ATR spectroscopy. The determined spectra, pre-processed by standard normal variate (SNV) transformation and the determination of the 1st derivation, were evaluated using factor Analysis (FA), linear discriminant analysis (LDA) and partial least square regression (PLSR). With this multivariate evaluation, first, a significant model with a very high hit rate of over 90% was developed allowing for the identification of styrene-butadiene copolymers (SBC), ethylene-copolymer bitumen (ECB) and different waxes (e.g. amide and Fischer-Tropsch wax) even if the additives do not show any additional peaks or the samples are multi-modified. Second, a quantification of the content is possible for SBC, ECB, and Amide wax with a mean error of RMSE B 0.4 wt% and a
coefficient of determination of R2[90%. Based on these results, FTIR identification and quantification of additives in bituminous binders is a very promising method with a great potential.
In Germany, the reuse of asphalt has a long tradition. Since the 1980s, the reclaimed asphalt has been recycled achieving a reuse rate of around 90% and thus a very high value in the last years. In the future, instead of the amount, the quality of the reclaimed asphalt will be more important because the recycled asphalt will be reused again and again. Thus, these asphalt mixes are in the second or even third cycle of reuse. Concerning this situation, the question arises if asphalt can be reused several times without any loss in quality. An important factor affecting the asphalt quality is the binder bitumen. During the production, construction and service life, the ageing of this binder occurs causing a hardening of the bitumen. To compensate this hardening, additives for the reclaimed asphalt in terms of rejuvenation agents (rejuvenators) gain in importance. With these rejuvenators, the physical properties of bitumen can be modified e.g. the hardness and the stiffness reduced. However, the mechanism of the rejuvenation agents and the effects of the bitumen chemistry are largely unknown because the composition of the products varies very strongly. But with growing knowledge about these mechanisms and effects of the rejuvenation agents, the chemical composition and thus the physical and ageing behavior of bitumen can be targeted modified by the use of suitable rejuvenators. In this work, the actual results of the project Postcarbone road should be presented including investigations about the chemical and physical mechanisms as well as the efficiency of different rejuvenators.
Further, a model for the cyclic reuse of bitumen should be developed. Based on this model, the choice of a suitable rejuvenation agent for the considered bitumen or rather asphalt should be possible. The project Postcarbone road (392670763) is funded by the German Research Foundation (DFG).
Basic oxygen furnace slags (BOFS) are by-products of the steelmaking process. Several researchers have studied the production of Portland cement clinker and metallic iron from BOFS via a reductive treatment.
In this study, we applied a carbothermal reduction of BOFS in a technical-scale electric arc furnace and characterised the clinker-like products. Those clinker-like non-metallic products (NMPs) had a chemical and mineralogical composition comparable to clinker for ordinary Portland cement (OPC) and contained large elongated alite crystals as major component. The pure NMPs reacted more slowly and achieved a lower degree of hydration compared with commercial OPC.
If the reactivity of the products can be further increased by employing specific adaptations, it can be used as a full clinker substitute for OPC. Nevertheless, it is also an option to use the material without further modifications as a cement component or concrete addition, which contributes to the strength development in both cases.
Alkali-activated binders (AAB) can provide a clean alternative to conventional cement in terms of CO2 emissions. However, as yet there are no sufficiently accurate material models to effectively predict the AAB properties, thus making optimal mix design highly costly and reducing the attractiveness of such binders. This work adopts sequential learning (SL) in high-dimensional material spaces (consisting of composition and processing data) to find AABs that exhibit desired properties. The SL approach combines machine learning models and feedback from real experiments. For this purpose, 131 data points were collected from different publications. The data sources are described in detail, and the differences between the binders are discussed. The sought-after target property is the compressive strength of the binders after 28 days. The success is benchmarked in terms of the number of experiments required to find materials with the desired strength. The influence of some constraints was systematically analyzed, e.g., the possibility to parallelize the experiments, the influence of the chosen algorithm and the size of the training data set. The results show the advantage of SL, i.e., the amount of data required can potentially be reduced by at least one order of magnitude compared to traditional machine learning models, while at the same time exploiting highly complex information. This brings applications in laboratory practice within reach.
With the aim of identifying the origin and the manufacturer of a cement, a reliable procedure that provides unambiguous results is needed. Such procedure could resolve practical issues in damage research, liability issues and forensic investigations. A substantial number of attempts for fingerprinting of building materials, including cement, has already been carried out during the last decades. Most of them were based on concentration analysis of the main elements/components. This review provides an overview of provenance studies of cement and the main approaches commonly used. Provenance studies of cement via isotope techniques are also presented and discussed as representatives of the state-of-the-art in the field. Due to the characteristic properties and the occurrence of carefully selected isotope ratios, unique fingerprints of different kinds of materials can be provided by these methods. This property has largely been explored in various scientific fields such as geo- and cosmochemistry, food forensics, archaeology, geochronology, biomedical studies, and climate change processes. However, the potential of isotope techniques in cement and concrete research for provenance studies has barely been investigated.
Therefore, the review outlines a suitable approach using isotope ratios, which could lead to reliable provenancing of cementitious materials in the future.