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The Journal of Surrealism and the Americas: Vol. 12 No. 1 (2021) - Table of Contents
"Introduction, Special Issue on Fashion" by Jennifer R. Cohen, Michael Stone-Richards, pp. 1-5
"Fashion in the Formative Years of Parisian Surrealism: The Dress of Time, the Dress of Space" by Krzysztof Fijalkowski, pp. 6-32
"Surrealist Shop Windows: Marketing Breton’s Surrealism in Wartime New York" by Jennifer R. Cohen, pp. 33-59
"Object Study: Binding Saint Glinglin" by Jenny Harris, pp. 60-77
"‘Always for Pleasure’: Chicago Surrealism and Fashion, An Interview with Penelope Rosemont" by Abigail Susik, pp. 78-92
"Sade for the Brave and Open-Minded: Review of Alyce Mahon, The Marquis de Sade and the Avant-Garde" by Joyce Cheng, pp. 93-99
"Review of Henri Behar, Potlatch, André Breton ou la cérémonie du don" by Pierre Taminiaux, pp. 100-103


A needs assessment based on students in recovery to build a Collegiate Recovery Program.

Qualitative research on student employees of a Collegiate Recovery Program.

PPT lecture and notes for Recovery 101 training.



This study addresses the problem of particle image segmentation by measuring the similarity between a sampled region and an adjacent region, based on Bhattacharyya distance and an image feature extraction technique that uses distribution of local binary patterns and pattern contrasts. A boundary smoothing process is developed to improve the accuracy of the segmentation. The novel particle image segmentation algorithm is tested using four different cases of particle image velocimetry (PIV) images. The obtained experimental results of segmentations provide partitioning of the objects within 10 percent error rate. Ground-truth segmentation data, which are manually segmented image from each case, are used to calculate the error rate of the segmentations.

Here, this research extends that exploratory work in an effort to determine if hfg of aqueous nanofluids can be manipulated, i.e., increased or decreased, by the addition of graphite or silver nanoparticles. Our results to date indicate that hfg can be substantially impacted, by up to ± 30% depending on the type of nanoparticle. Moreover, this dissertation reports further experiments with changing surface area based on volume fraction (0.005% to 2%) and various nanoparticle sizes to investigate the mechanisms for hfg modification in aqueous graphite and silver nanofluids. This research also investigates thermophysical properties, i.e., density and surface tension in aqueous nanofluids to support the experimental results of hfg based on the Clausius - Clapeyron equation. This theoretical investigation agrees well with the experimental results. Furthermore, this research investigates the hfg change of aqueous nanofluids with nanoscale studies in terms of melting of silver nanoparticles and hydrophobic interactions of graphite nanofluid. As a result, the entropy change due to those mechanisms could be a main cause of the changes of hfg in silver and graphite nanofluids.
Finally, applying the latent heat results of graphite and silver nanofluids to an actual solar thermal system to identify enhanced performance with a Rankine cycle is suggested to show that the tunable latent heat of vaporization in nanofluilds could be beneficial for real-world solar thermal applications with improved efficiency.
