308,259 research outputs found
Metallographic evaluation of the weldability of high strength aluminium alloys using friction spot welding
Friction spot welding is a recent solid-state welding technique well suited for spot-joining lightweight materials in overlap condition. Aerospace and transport industries show great interest in this technique to join high-strength aluminium alloys, but published research is still limited. In this project, the link between process parameters and weld quality is investigated for EN AW-7075-T6 material. Techniques used are metallographic qualification, measurement of hardness reduction and lap shear strength. This paper focusses on the metallographic investigation of the weld region and its imperfections. Increasing joining time and heat input creates an easier material flow resulting in fewer imperfections. Limited plunge depths lead to typical interface imperfections. Variation in the rotational speed shows distinctive stir zone shapes as a consequence of severe stirring and frictional heat
Weld-brazing - a new joining process
A joining process designated weld brazing which combines resistance spot welding and brazing has been developed. Resistance spot welding is used to position and align the parts as well as to establish a suitable faying surface gap for brazing. Fabrication is then completed by capillary flow of the braze alloy into the joint. The process has been used successfully to fabricate Ti-6Al-4V titanium alloy joints using 3003 aluminum braze alloy. Test results obtained on single overlap and hat-stiffened structural specimens show that weld brazed joints are superior in tensile shear, stress rupture, fatigue, and buckling than joint fabricated by spotwelding or brazing. Another attractive feature of the process is that the brazed joints is hermetically sealed by the braze material
Influence of laser spot size at diffuser plane on the longitudinal spatial coherence function of optical coherence microscopy system
Coherence properties and wavelength of light sources are indispensable for
optical coherence microscopy/tomography as they greatly influence the signal to
noise ratio, axial resolution, and penetration depth of the system. In the
present letter, we investigated the longitudinal spatial coherence properties
of the pseudo-thermal light source (PTS) as a function of spot size at the
diffuser plane, which is controlled by translating microscope objective lens
towards or away from the diffuser plane. The axial resolution of PTS is found
to be maximum ~ 13 microns for the beam spot size of 3.5 mm at the diffuser
plane. The change in the axial resolution of the system as the spot size is
increased at the diffuser plane is further confirmed by performing experiments
on standard gauge blocks of height difference of 15 microns. Thus, by
appropriately choosing the beam spot size at the diffuser plane, any
monochromatic laser light source depending on the biological window can be
utilized to obtain high axial-resolution with large penetration depth and
speckle-free tomographic images of multilayered biological specimens
irrespective of the source temporal coherence length. In addition, PTS could be
an attractive alternative light source for achieving high axial-resolution
without needing chromatic aberration corrected optics and
dispersion-compensation mechanism, unlike conventional setups.Comment: 11 pages, 4 figures. arXiv admin note: text overlap with
arXiv:1810.0199
Proton acceleration by irradiation of isolated spheres with an intense laser pulse
We report on experiments irradiating isolated plastic spheres with a peak laser intensity of 2-3 x 10(20) W cm(-2). With a laser focal spot size of 10 mu m full width half maximum (FWHM) the sphere diameter was varied between 520 nm and 19.3 mu m. Maximum proton energies of similar to 25 MeV are achieved for targets matching the focal spot size of 10 mu m in diameter or being slightly smaller. For smaller spheres the kinetic energy distributions of protons become nonmonotonic, indicating a change in the accelerating mechanism from ambipolar expansion towards a regime dominated by effects caused by Coulomb repulsion of ions. The energy conversion efficiency from laser energy to proton kinetic energy is optimized when the target diameter matches the laser focal spot size with efficiencies reaching the percent level. The change of proton acceleration efficiency with target size can be attributed to the reduced cross-sectional overlap of subfocus targets with the laser. Reported experimental observations are in line with 3D3V particle in cell simulations. They make use of well-defined targets and point out pathways for future applications and experiments.DFG via the Cluster of Excellence Munich-Centre for Advanced Photonics (MAP) Transregio SFB TR18NNSA DE-NA0002008Super-MUC pr48meIvo CermakCGC Instruments in design and realization of the Paul trap systemIMPRS-APSLMUexcellent Junior Research FundDAAD|ToIFEEuropean Union's Horizon research and innovation programme 633053Physic
Magnetic effects and oversized M dwarfs in the young open cluster NGC 2516
By combining rotation periods with spectroscopic determinations of projected
rotation velocity, Jackson, Jeffries & Maxted (2009) have found that the mean
radii for low-mass M-dwarfs in the young, open cluster NGC 2516 are larger than
model predictions at a given absolute I magnitude or I - K color and also
larger than measured radii of magnetically inactive M-dwarfs. The relative
radius difference is correlated with magnitude, increasing from a few per cent
at MI = 7 to greater than 50 per cent for the lowest luminosity stars in their
sample at MI about 9.5. Jackson et al (2009) have suggested that a
two-temperature star spot model is capable of explaining the observations, but
their model requires spot coverage fractions of at least 50 per cent in rapidly
rotating M-dwarfs. Here we examine these results in terms of stellar models
that include the inhibiting effects of magnetic fields on convective energy
transport, with and without the effects of star spots. We find that a pure spot
model is inconsistent with the color - magnitude diagram. The observations of
radii versus color and radii versus absolute magnitude in NGC 2516 are
consistent with models which include only magnetic inhibition or a combination
of magnetic inhibition and spots. At a given mass we find a large dispersion in
the strength of the vertical component of the magnetic field in the stellar
photosphere but the general trend is that the vertical field increases with
decreasing mass from a few hundred Gauss at 0.65 Msun to 600 - 900 Gauss,
depending on spot coverage, in the lowest mass stars in the sample at 0.25
Msun.Comment: To appear in the Astrophysical Journal. arXiv admin note: text
overlap with arXiv:1006.1308 by other author
FDA Preemption of State Tort Law in Drug Regulation: Finding the Sweet Spot
The project of harmonizing tort law and regulatory law in the public interest-the sweet spot of my subtitle-is inherently fraught with difficulty. This, of course, is a very old problem for American law generally. Our administrative state began during the first decade of the Republic. Beacause energetic administration has always created risks of harm to persons and property, the potential for overlap and conflict with the hoary common law of torts. which likewise protects persons and property, has always been an inevitable consequence of regulatory statutes. Moreover, as Richard Nagareda explains, recent developments in both tort law and administrative regulation increasingly cast the two less as complementary regimes than as institutional rivals
Surface modification of HVOF thermal sprayed WC–CoCr coatings by laser treatment
In this work the affects of laser characteristics on microstructure and microhardness of high velocity oxygen fuel sprayed (HVOF) WC–CoCr coatings were investigated. The coating was deposited with a Sulzer Metco WokaJet™-400 kerosene fuel and the laser surface treatments were applied using CO2 laser with 10.6 μm wavelength. Large variations in surface properties were produced from variation in the laser processing parameters. In total, four levels of peak power (100, 200, 300 and 350 W), four levels of spot diameter (0.2, 0.4, 0.6 and 1 mm) and three levels of pulse repetition frequency (PRF) were investigated. An initial set of tests were followed by a more detailed 33 factorial design of experiments. Pulse repetition frequency and duty cycle were set in order to maintain the same overlap in the x and y directions for the raster scanned sample spot impact dimensions. Overlaps of 30% were used in the initial tests and 10% in the more detailed trials. The results have shown that care must be taken to keep the irradiance at a relatively low level compared to uncoated surfaces. High irradiance can in this case result in rough and porous surfaces. Lower levels of irradiance are shown to provide more uniform microstructures, reduced porosity and increased microhardness
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