《新整理施工方案大全》翻 译 原 文.doc
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1、翻 译 原 文Low-temperature failure behavior of bituminous binders and mixesABSTRACTA research including a large experimental campaign on the thermo-mechanical behavior of different bituminous materials in the large strain amplitude domain is proposed. The primary goal of this paper is to identify and de
2、termine the links between the failure properties of bituminous binders and those of mixes at low temperatures.The thermo-mechanical behavior of bituminous binders was evaluated with the tensile strength at a constant strain rate and constant temperatures. The thermo-mechanical behavior of bituminous
3、 mixes has been studied byperforming measurements of the coefficient of thermal dilatation and contraction, tensile tests at constant temperatures and strain rates, and Thermal Stress Restrained Specimen Tests. Some pertinent links between fundamental properties of binders and mixes are established.
4、 Some characteristics which appear as pertinent and discriminating enough with regard to the low-temperature failure properties of bituminous mixes are presented.Keywords : bitumens, bituminous mixes, rheological behavior, thermo-mechanical properties, failure properties, tensile strength, TSRST, lo
5、w temperature, brittle, ductile, brittle/ductile transition temperature.INTRODUCTIONThe different domains of bitumen behavior can be illustrated according to the strain amplitude (_) and the temperature (T), at a given strain rate. FIGURE 1 (drawn from (1) and (2) points out : the brittle and ductil
6、e domains, where the tensile strength p can be measured, the brittle failure, which could be characterized by the fracture toughness Kc (Linear Elastic FractureMechanics), the linear elastic behavior, characterized by the moduli E and G, the linear viscoelastic domain, characterized by the complex m
7、oduli E* and G*, the purely viscous (Newtonian) behavior, characterized by the viscosity , for strains of a few percent, the domain where the behavior is highly non-linear.A bituminous mix has also a complex temperature-sensitive behavior. Its response to a given loading is strongly dependent on tem
8、perature and loading path. In addition, at a given temperature and a given strain rate, four main typical behaviors can be identified according to the strain amplitude () and the number of applied cyclic loadings (N) (see FIGURE 2, from (3).This paper is aimed at providing an assessment of the work
9、conducted to date within the framework of a partnership between the “Dpartement Gnie Civil et Btiment” of the Ecole Nationale des TPE, Appia and Eurovia. This study focused on the thermo-mechanical behavior of different bituminous materials in both the small strain domain and the large strain domain
10、, at low and mid temperatures, when considering only a small number of loadings This paper only deals with the characterization of the failure properties (i.e. in the large strain amplitude domain) of bituminous materials, at low and mid temperatures. It may be underlined that this paper completes t
11、wo previous papers which focused on the linear viscoelastic behavior of bituminous materials (i.e. in the small strain domain) at low and intermediate temperatures (2) and (4).MATERIALSFour very different bitumens have been tested : two pure bitumens (10/20 and 50/70 penetration grade), and two poly
12、mer modified bitumens with a high content of polymer, one with plastomer and one with elastomer. The polymer modified binders are named hereafter PMB1 and PMB2. TABLE 1 presents the results of the conventional tests (the Fraass brittle point, the Penetration at 25C and the Softening Point Ring and B
13、all) initially performed on the different binders.Four different bituminous mixes, made from the 10/20, 50/70, PMB1 and PMB2 bitumens with one type of aggregate and grading, have been tested. The mixture samples had a continuous 0/10mm diorite grading, a 31% void content and a binder content of 6% b
14、y dry weight of aggregate.TESTS ON BINDERSSHRP Direct Tensile Tests (DTT)As described in AASHTO TP3 and (5), the SHRP Direct Tensile Test consists in elongating 27mm high bitumen samples at 1mm/min and at constant temperatures. The corresponding strain rate () equals 2.22m/m/h. At least six repeats
15、at each temperature were realized on unaged samples. Apart from the determination of the conventional temperature leading to failure at 1% strain, T=1%, our analysis also consists in characterizing a threshold temperature separating the brittle behavior and the ductile one. Moreover, the tensile str
16、ength (maximum tensile stress) and thecorresponding strain for each temperature are considered and represented in FIGURE 3.In our opinion, the ranking of binders in function of their strain tolerance using the parameter T=1% does not seem to be really pertinent in the sense that this approach is rat
17、her empirical. This parameter will be hereafter compared with a new concept of brittle/ductile transition temperature of binders, which is introduced at the studied strain rate. The determination of this brittle/ductile transition temperature of binders is explained in the next paragraphs.Any isothe
18、rmal direct tensile test yields much more data than just failure strain or stress values. In particular, the brittle-like or the ductile-like shape of the stress-strain curve can be examined at each temperature. Athigh temperatures, binders have a purely ductile behavior, whereas at very low tempera
19、tures their behavior is purely fragile. Following the considered temperature, the bitumen behavior sweeps from ductile (high temperature) to brittle (low temperature). Nevertheless, at intermediate temperatures, there is a slow evolution of the behavior from a ductile one to a brittle one when decre
20、asing the temperature. Thus, practically, there is no determining an accuratetransition temperature directly from the examination of the shape of the stress-strain curve. In the best case, it is just possible to determine a more or less wide temperature range which corresponds to this slow transitio
21、n of thephysical properties of binders.From our results, we introduce a brittle/ductile transition temperature of binders at the studied strain rate,Tbdb, which is the temperature at which the tensile strength peaks in the axes tensile strength-temperature (FIGURE3). This makes the determination of
22、Tbdb easier and more accurate since the maximum of the tensile strength may be clearly identified. King et al. (5) have already noticed that when the temperature drops below about -15C, the tensile strength of bituminous mixtures decreases and the tensile specimen fractures at low strain as a brittl
23、e failure.The brittle/ductile transition temperature, hereafter named Tbdb (for a strain rate of 2.22m/m/h), can be considered as a pertinent, handy and alternative low-temperature parameter. Its physical meaning is directly linked to the type of fracture process of specimens, which influences the s
24、hape of the stress-strain curves.The values of Tbdb are presented in TABLE 1 along with the temperature corresponding to a strain of 1% at failure, T=1%. Tbdb and T=1% are highly correlated with each other (r2=0.977). Nevertheless, further investigations onother bituminous binders are still needed b
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