Analysis of Nozzles of Rapid Prototyping System Oriented to Bio-Manufacture

2010 ◽  
Vol 33 ◽  
pp. 132-138
Author(s):  
Mei Hua Chen ◽  
T.C. Shi ◽  
X. Hu ◽  
J.H. Cai

Bio-manufacture is an interdisciplinary research area, which is based on the development of rapid prototyping technology, biomaterial and biomedicine technologies. It brings a new revolution in manufacturing science. Producing scaffolds of high performance is the purpose of bio-manufacture. For many rapid prototyping, which is suitable for bio-manufacture, the core difference lies in their enable technology. Extrusion-based rapid prototyping technology is an important branch of rapid prototyping, and each system has different nozzle device. In this paper, through in-depth research and analysis of structure, performance and materials used of spray head in the market for bio-manufacture, it can provide scientific basis for selecting more suitable spray head of rapid prototyping for bio-manufacture.

1988 ◽  
Vol 32 (2) ◽  
pp. 40-43 ◽  
Author(s):  
C. K. Shepherd

While the debate continues about the safety and applicability of heads-up displays (HUDs) and helmet-mounted displays (HMDs) in the aeronautical environment (as demonstrated in the July, October, and November 1987 issues of the Human Factors Society Bulletin), a voice-controlled HMD is being designed as the core of the information system for the new Space Station Extravehicular Mobility Unit (EMU). This paper describes the human factors issues that suggest the HMD will be a safe and desirable tool for Space Station extravehicular activity (EVA). Also, it briefly outlines a Macintosh-based voice-interactive rapid prototyping system that is being used at the NASA Johnson Space Center for simulating and evaluating the HMD's ability to enhance astronaut productivity in the EVA setting.


2019 ◽  
Author(s):  
Kevin Luo ◽  
Shuping Dang ◽  
Basem Shihada ◽  
Mohamed-Slim Alouini

<pre>Entering the 5G/6G era, the core concept of human-centric communications has intensified the search effort into analytical frameworks for integrating technological and non-technological domains. Among non-technological domains, human behavioral, psychological, and socio-economic contexts are widely considered as indispensable elements for characterizing user experience (UE). In this study, we introduce the prospect theory as a promising methodology for modeling UE and perceptual measurements for human-centric communications. As the founding pillar of behavioral economics, the prospect theory proposes the non-linear quantity and probability perception of human psychology, which extends to five fundamental behavioral attributes that have profound implications for diverse disciplines. By expatiating on the prospect theoretic framework, we aim to provide a guideline for developing human-centric communications and articulate a novel interdisciplinary research area for further investigation.</pre>


Author(s):  
Kevin Luo ◽  
Shuping Dang ◽  
Basem Shihada ◽  
Mohamed-Slim Alouini

Entering the 5G/6G era, the core concept of human-centric communications has intensified the research effort into analytical frameworks for integrating technological and non-technological domains. Among non-technological domains, human behavioral, psychological, and socio-economic contexts are widely considered as indispensable elements for characterizing user experience (UE). In this study, we introduce the prospect theory as a promising methodology for modeling UE and perceptual measurements for human-centric communications. As the founding pillar of behavioral economics, the prospect theory proposes the non-linear quantity and probability perception of human psychology, which extends to five fundamental behavioral attributes that have profound implications for diverse disciplines. An example of applying the novel theoretic framework is also provided to illustrate how the prospect theory can be utilized to incorporate human factors and analyze human-centric communications. By expatiating on the prospect theoretic framework, we aim to provide a guideline for developing human-centric communications and articulate a novel interdisciplinary research area for further investigation.


2019 ◽  
Author(s):  
Kevin Luo ◽  
Shuping Dang ◽  
Basem Shihada ◽  
Mohamed-Slim Alouini

<pre>Entering the 5G/6G era, the core concept of human-centric communications has intensified the search effort into analytical frameworks for integrating technological and non-technological domains. Among non-technological domains, human behavioral, psychological, and socio-economic contexts are widely considered as indispensable elements for characterizing user experience (UE). In this study, we introduce the prospect theory as a promising methodology for modeling UE and perceptual measurements for human-centric communications. As the founding pillar of behavioral economics, the prospect theory proposes the non-linear quantity and probability perception of human psychology, which extends to five fundamental behavioral attributes that have profound implications for diverse disciplines. By expatiating on the prospect theoretic framework, we aim to provide a guideline for developing human-centric communications and articulate a novel interdisciplinary research area for further investigation.</pre>


Polymers ◽  
2021 ◽  
Vol 13 (15) ◽  
pp. 2400
Author(s):  
Leandra P. Santos ◽  
Douglas S. da Silva ◽  
Thais H. Morari ◽  
Fernando Galembeck

Many materials and additives perform well as fire retardants and suppressants, but there is an ever-growing list of unfulfilled demands requiring new developments. This work explores the outstanding dispersant and adhesive performances of cellulose to create a new effective fire-retardant: exfoliated and reassembled graphite (ERG). This is a new 2D polyfunctional material formed by drying aqueous dispersions of graphite and cellulose on wood, canvas, and other lignocellulosic materials, thus producing adherent layers that reduce the damage caused by a flame to the substrates. Visual observation, thermal images and surface temperature measurements reveal fast heat transfer away from the flamed spots, suppressing flare formation. Pinewood coated with ERG underwent standard flame resistance tests in an accredited laboratory, reaching the highest possible class for combustible substrates. The fire-retardant performance of ERG derives from its thermal stability in air and from its ability to transfer heat to the environment, by conduction and radiation. This new material may thus lead a new class of flame-retardant coatings based on a hitherto unexplored mechanism for fire retardation and showing several technical advantages: the precursor dispersions are water-based, the raw materials used are commodities, and the production process can be performed on commonly used equipment with minimal waste.


2021 ◽  
Vol 16 (5) ◽  
pp. 1934578X2110167
Author(s):  
Xing-Pan Wu ◽  
Tian-Shun Wang ◽  
Zi-Xin Yuan ◽  
Yan-Fang Yang ◽  
He-Zhen Wu

Objective To explore the anti-COVID-19 active components and mechanism of Compound Houttuynia mixture by using network pharmacology and molecular docking. Methods First, the main chemical components of Compound Houttuynia mixture were obtained by using the TCMSP database and referring to relevant chemical composition literature. The components were screened for OB ≥30% and DL ≥0.18 as the threshold values. Then Swiss Target Prediction database was used to predict the target of the active components and map the targets of COVID-19 obtained through GeneCards database to obtain the gene pool of the potential target of COVID-19 resistance of the active components of Compound Houttuynia mixture. Next, DAVID database was used for GO enrichment and KEGG pathway annotation of targets function. Cytoscape 3.8.0 software was used to construct a “components-targets-pathways” network. Then String database was used to construct a “protein-protein interaction” network. Finally, the core targets, SARS-COV-2 3 Cl, ACE2 and the core active components of Compound Houttuyna Mixture were imported into the Discovery Studio 2016 Client database for molecular docking verification. Results Eighty-two active compounds, including Xylostosidine, Arctiin, ZINC12153652 and ZINC338038, were screened from Compound Houttuyniae mixture. The key targets involved 128 targets, including MAPK1, MAPK3, MAPK8, MAPK14, TP53, TNF, and IL6. The HIF-1 signaling, VEGF signaling, TNF signaling and another 127 signaling pathways associated with COVID-19 were affected ( P < 0.05). From the results of molecular docking, the binding ability between the selected active components and the core targets was strong. Conclusion Through the combination of network pharmacology and molecular docking technology, this study revealed that the therapeutic effect of Compound Houttuynia mixture on COVID-19 was realized through multiple components, multiple targets and multiple pathways, which provided a certain scientific basis of the clinical application of Compound Houttuynia mixture.


2021 ◽  
Author(s):  
Junzong Feng ◽  
Bao-Lian Su ◽  
Hesheng Xia ◽  
Shanyu Zhao ◽  
Chao Gao ◽  
...  

A rapidly growing interdisciplinary research area combining aerogel and printing technologies that began only five years ago has been comprehensively reviewed.


1991 ◽  
Vol 16 (1) ◽  
pp. 97-107 ◽  
Author(s):  
James R. Cordy ◽  
Charles D. Halpern-Hamu ◽  
Eric Promislow

2008 ◽  
Vol 20 (1) ◽  
pp. 229-234 ◽  
Author(s):  
SuA Park ◽  
GeunHyung Kim ◽  
Yong Chul Jeon ◽  
YoungHo Koh ◽  
WanDoo Kim

2021 ◽  
pp. 1-11
Author(s):  
Oscar Herrera ◽  
Belém Priego

Traditionally, a few activation functions have been considered in neural networks, including bounded functions such as threshold, sigmoidal and hyperbolic-tangent, as well as unbounded ReLU, GELU, and Soft-plus, among other functions for deep learning, but the search for new activation functions still being an open research area. In this paper, wavelets are reconsidered as activation functions in neural networks and the performance of Gaussian family wavelets (first, second and third derivatives) are studied together with other functions available in Keras-Tensorflow. Experimental results show how the combination of these activation functions can improve the performance and supports the idea of extending the list of activation functions to wavelets which can be available in high performance platforms.


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