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Journal articles on the topic 'Mechanics'

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1

Sakamoto, Makoto, Kenji Sato, Koichi Kobayashi, Jun Sakai, Yuji Tanabe, and Toshiaki Hara. "Nanoindentation Analysis of Mechanical Properties of Cortical Bone(Bone Mechanics)." Proceedings of the Asian Pacific Conference on Biomechanics : emerging science and technology in biomechanics 2004.1 (2004): 43–44. http://dx.doi.org/10.1299/jsmeapbio.2004.1.43.

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2

Sheng, Fu Shen, and Jie Hua Hu. "Dynamics Analysis of Drag Rope Base on Lagrange Equation." Applied Mechanics and Materials 533 (February 2014): 27–31. http://dx.doi.org/10.4028/www.scientific.net/amm.533.27.

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Drag rope is a kind of soft body. Now the analysis method of rigid-Body mechanics is not suitable for drag rope mechanics to analysis. This paper compares the two branches of the theoretical mechanic, who are the vector mechanics and the analysis mechanics, then put forward a kind of mechanical analysis method which uses the Lagrange-equation which belongs to the analysis mechanics, to analysis the movement and stress of drag rope.
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3

Arai, Masataka, Shota Hori, Satoshi Miyamoto, Kazuhiro Nakashima, Toshihiro Sera, and Susumu Kudo. "OS18-5 Mechanical Stimulus Effects Diacylglycerol Distribution in Vascular Endothelial Cells(Cell and Tissue mechanics 2,OS18 Cell and tissue mechanics,BIOMECHANICS)." Abstracts of ATEM : International Conference on Advanced Technology in Experimental Mechanics : Asian Conference on Experimental Mechanics 2015.14 (2015): 239. http://dx.doi.org/10.1299/jsmeatem.2015.14.239.

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4

Namazu, Takahiro. "OS12-1 MEMS and Nanotechnology for Experimental Mechanics(invited,Mechanical properties of nano- and micro-materials-1,OS12 Mechanical properties of nano- and micro-materials,MICRO AND NANO MECHANICS)." Abstracts of ATEM : International Conference on Advanced Technology in Experimental Mechanics : Asian Conference on Experimental Mechanics 2015.14 (2015): 183. http://dx.doi.org/10.1299/jsmeatem.2015.14.183.

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5

Wiwid Wahyudi, Khoirur Rozikin, and Afriliawan Indra Permana. "SISTEM PAKAR DIAGNOSA KERUSAKAN MOTOR YAMAHA NMAX MENGGUNAKAN METODE FORWARD CHAINING." Elkom : Jurnal Elektronika dan Komputer 13, no. 1 (July 28, 2020): 78–86. http://dx.doi.org/10.51903/elkom.v13i1.167.

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The recruitment of new mechanics at Mataram Sakti is no longer through the training process at the head office, but new mechanics are placed at the dealership accompanied by the chief mechanic as a supervisor, with the aim of providing training to new mechanics in order to be able to service or periodically repair Yamaha products especially the latest motorbikes namely Yamaha NMAX, because of the flurry sometimes the mechanical head is not in place so that when the mechanic is experiencing problems it cannot directly ask the mechanical head causing the handling of repairs to be less effective and efficient. One way to overcome this is to create a web-based expert system application with a forward chaining method so that the chief mechanic can transfer the knowledge he has into the computer. Forward chaining method is a search technique that starts with known facts and then matches these facts with the IF part of the IF-Then rules, so that conclusions can be drawn. This expert system was built using supporting software including, Macromedia Dreamweaver MX, PHP script language, MySQL database and WAMP server. The expert system for diagnosing damage to Yamaha NMAX motorcycles using the forward chaining method can be used as a new mechanical learning media in diagnosing damage to NMAX motorcycles and as a means of chief mechanics transferring their knowledge.
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6

Smith, Russell. "Light Path." Journal of Early Modern Studies 8, no. 2 (2019): 43–79. http://dx.doi.org/10.5840/jems20198212.

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This paper focuses on the mathematisation of mechanics in the seventeenth century, specifically on how the representation of compounded rectilinear motions presented in the ancient Greek Mechanica found its way into Newton’s Principia almost two thousand years later. I aim to show that the path from the former to the latter was optical: the conceptualisation of geometrical lines as paths of reflection created a physical interpretation of dia­grammatic principles of geometrical point-motion, involving the kinematics and dynamics of light reflection. Upon the atomistic conception of light, the optical interpretation of such geometrical principles entailed their mechanical generalisation to local motion; rectilinear motion via the physico-mathemat­ics of reflection and the Mechanica’s parallelogram rule; circular motion via the physico-mathematics of reflection, the Archimedean squaring of the circle and the Mechanica’s extension of the parallelogram rule to centripetal motion. This appeal to the physico-mathematics of reflection forged a realist founda­tion for the mathematisation of motion. Whereas Aristotle’s physics rested on motions which had their source in the nature of the elements, early modern thinkers such as Harriot, Descartes, and Newton based their new principles of mechanical motion upon selected elements of the mechanics of light motion, projected upon the geometry of the parallelogram rule for rectilinear and, ultimately, circular motion.
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Jubran, Amal. "Monitoring Mechanics During Mechanical Ventilation." Seminars in Respiratory and Critical Care Medicine 20, no. 01 (January 1999): 65–79. http://dx.doi.org/10.1055/s-2007-1009447.

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8

SIMBRUNER, GEORGE. "Lung mechanics and mechanical ventilation." Critical Care Medicine 21, Supplement (September 1993): S369. http://dx.doi.org/10.1097/00003246-199309001-00044.

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9

Henderson, William R., and A. William Sheel. "Pulmonary mechanics during mechanical ventilation." Respiratory Physiology & Neurobiology 180, no. 2-3 (March 2012): 162–72. http://dx.doi.org/10.1016/j.resp.2011.11.014.

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10

Little, J. Paige, Clayton Adam, Graeme Pettet, and Mark J. Pearcy. "Initiation of Mechanical Derangement in the Anulus Fibrosus Ground Matrix(Soft Tissue Mechanics)." Proceedings of the Asian Pacific Conference on Biomechanics : emerging science and technology in biomechanics 2004.1 (2004): 183–84. http://dx.doi.org/10.1299/jsmeapbio.2004.1.183.

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11

Widiarina, Widiarina, Kartika Mariskhana, and Ita Dewi Sintawati. "Assignment of Motor Mechanics at the Tire Palace Using the Hungarian Method and Testing Software Quality Management (QM)." SinkrOn 7, no. 2 (March 31, 2022): 413–20. http://dx.doi.org/10.33395/sinkron.v7i2.11336.

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Measurement of working time (time study) is basically an attempt to determine the placement of mechanical work from the length of work time required by a mechanic to complete a job. This study aims to place the optimal mechanical work in the context of service operational time efficiency and obtain optimal time savings that can be achieved by mechanics in working on motorcycle servicing so as to maximize income using the Hungarian Method. The purpose of this research is to optimize employee assignments by looking at the mechanical working time. The problems that occur at ISTANA BAN are the ineffectiveness of the work process time and the swelling of operational costs, especially in the work of Matic Kaburator, Injection Matic, Injection Duck, Kaburator Duck and Sport with 5 workers. The results of the Assignment Application with the Hungarian Method and Software Quality Management (QM) Testing, Evan mechanics serviced the Duck Kaburator motorbike with a service time of 25 minutes, Minus mechanic serviced the Injection Duck motorbike with a service time of 24 minutes, Hermon mechanic serviced the Sport motorbike with a service time of 27 minutes, mechanic Anton servicing the Matic Injection motorbike with a service time of 25 minutes, mechanic Zola servicing the Matic Kaburator motorbike with a service time of 26 minutes. After analyzing the possibilities, it can be concluded that all mechanics can service each type of motor if the assigned mechanic has worked on the specified type of motor. By minimizing mechanical service time, it will have an impact on Tire Zone revenue because the number of motorbikes being serviced is increasing. Total Tire Zone revenue can be increased from pre-implementation revenue using the Hungarian Method.
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12

Sadiku, Matthew N. O., Adedamola Omotoso, and Sarhan M. Musa. "Computational Mechanics." International Journal of Trend in Scientific Research and Development Volume-3, Issue-2 (February 28, 2019): 559–60. http://dx.doi.org/10.31142/ijtsrd21422.

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13

Matsumoto, Takeo, Yohei Uno, Shintaro Iijima, Shukei Sugita, and Kazuaki Nagayama. "OS18-10 Heterogeneity in the Mechanical Environment of Elastic Laminas in Porcine Thoracic Aortas(Cell and Tissue mechanics 3,OS18 Cell and tissue mechanics,BIOMECHANICS)." Abstracts of ATEM : International Conference on Advanced Technology in Experimental Mechanics : Asian Conference on Experimental Mechanics 2015.14 (2015): 244. http://dx.doi.org/10.1299/jsmeatem.2015.14.244.

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14

Kawahara, Daigo, and Teruo Murakami. "Mechanical Evaluation of Relationship between Stiffness and Diffuse Damage in Cortical Bone(Bone Mechanics)." Proceedings of the Asian Pacific Conference on Biomechanics : emerging science and technology in biomechanics 2004.1 (2004): 41–42. http://dx.doi.org/10.1299/jsmeapbio.2004.1.41.

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15

Wagh, Prajwal, Kunal Patil, Khushboo Kosrabe, and Prof Chetan Padole. "On Road Vehicle Assistance Management System." International Journal for Research in Applied Science and Engineering Technology 12, no. 4 (April 30, 2024): 2713–18. http://dx.doi.org/10.22214/ijraset.2024.58901.

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Abstract: The "On Road Vehicle Breakdown Assistance" system is a pioneering solution designed to offer timely and reliable support to individuals facing mechanical issues with their vehicles, particularly in remote or unfamiliar locations. This innovative system connects registered users with a network of trustworthy, legally licensed, and approved mechanics. Unlike existing solutions with limited mechanic databases, this system provides users access to a comprehensive network of professionals. Real-time assistance and location-based mechanic searches enable users to swiftly address vehicular emergencies, promoting peace of mind and security. The "On Road Vehicle Breakdown Assistance" system is poised to redefine the way individuals receive mechanical help, making it more accessible, dependable, and user-centric.A standout feature of this system is its real-time assistance capabilities. Users can instantly request help for vehicle breakdowns or mechanical issues, significantly reducing response times. The system incorporates precise location-based searches, enabling users to identify and connect with mechanics in their vicinity. This functionality is invaluable, especially when users find themselves in remote or long-distant locations far from their regular mechanic shops.
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16

Ash, Christopher, S. C. Frautschi, R. P. Olenick, T. M. Apostol, and D. L. Goodstein. "The Mechanical Universe: Mechanics and Heat." Mathematical Gazette 71, no. 458 (December 1987): 344. http://dx.doi.org/10.2307/3617105.

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17

Manning, K. B., T. M. Przyhysz, A. A. Fontaine, S. Deutsch, and J. M. Tarbell. "MECHANICAL HEART VALVE CAVITATION FLUID MECHANICS." ASAIO Journal 50, no. 2 (March 2004): 123. http://dx.doi.org/10.1097/00002480-200403000-00049.

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18

Sharir, Amnon, Meir Max Barak, and Ron Shahar. "Whole bone mechanics and mechanical testing." Veterinary Journal 177, no. 1 (July 2008): 8–17. http://dx.doi.org/10.1016/j.tvjl.2007.09.012.

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19

Jubran, Amal. "MONITORING PATIENT MECHANICS DURING MECHANICAL VENTILATION." Critical Care Clinics 14, no. 4 (October 1998): 629–53. http://dx.doi.org/10.1016/s0749-0704(05)70024-5.

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20

ISHIKAWA, Tatsuya, Hiroto MORI, and Takehiro TAGAWA. "Garment mechanical properties on running mechanics." Proceedings of the Symposium on sports and human dynamics 2016 (2016): B—16. http://dx.doi.org/10.1299/jsmeshd.2016.b-16.

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21

Garber, Daniel. "Descartes, Mechanics, and the Mechanical Philosophy." Midwest Studies in Philosophy 26, no. 1 (August 2002): 185–204. http://dx.doi.org/10.1111/1475-4975.261061.

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22

YAMAGUCHI, Tetsuo. "Non-linear mechanics of mechanical metamaterials." Proceedings of the Materials and Mechanics Conference 2022 (2022): OS1104. http://dx.doi.org/10.1299/jsmemm.2022.os1104.

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23

López, Eusebio Jiménez, Pablo Alberto Limon Leyva, Armando Ambrosio López, Francisco Javier Ochoa Estrella, Juan José Delfín Vázquez, Baldomero Lucero Velázquez, and Víctor Manuel Martínez Molina. "Mechanics 4.0 and Mechanical Engineering Education." Machines 12, no. 5 (May 7, 2024): 320. http://dx.doi.org/10.3390/machines12050320.

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Industry 4.0 is an industrial paradigm that is causing changes in form and substance in factories, companies and businesses around the world and is impacting work and education in general. In fact, the disruptive technologies that frame the Fourth Industrial Revolution have the potential to improve and optimize manufacturing processes and the entire value chain, which could lead to an exponential evolution in the production and distribution of goods and services. All these changes imply that the fields of engineering knowledge must be oriented towards the concept of Industry 4.0, for example, Mechanical Engineering. The development of various physical assets that are used by cyber-physical systems and digital twins is based on mechanics. However, the specialized literature on Industry 4.0 says little about the importance of mechanics in the new industrial era, and more importance is placed on the evolution of Information and Communication Technologies and artificial intelligence. This article presents a frame of reference for the importance of Mechanical Engineering in Industry 4.0 and proposes an extension to the concept of Mechanics 4.0, recently defined as the relationship between mechanics and artificial intelligence. To analyze Mechanical Engineering in Industry 4.0, the criteria of the four driving forces that defined mechanics in the Third Industrial Revolution were used. An analysis of Mechanical Engineering Education in Industry 4.0 is presented, and the concept of Mechanical Engineering 4.0 Education is improved. Finally, the importance of making changes to the educational models of engineering education is described.
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24

Kalinowski, Anna Maria. "“My pockets are full”: The Emotional and Mechanical Function of Goodbyes in Animal Crossing." Animal Crossing Special Issue 13, no. 22 (February 16, 2021): 59–71. http://dx.doi.org/10.7202/1075263ar.

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This article focuses on goodbyes within the Animal Crossing series, describing them as an important but often overlooked mechanic afforded through the inventory space. Beginning with defining the general mechanics withing the series, the article highlights the value of inventory space and argues that inventory space affords the central mechanic of collecting to emerge. As inventory space is not infinite, collecting is accompanied by the necessary mechanic of goodbyes. In order to make more room to collect players will be faced with choices of departing from both items and villagers, the game’s NPCs (Non-Playable Characters), emphasizing goodbyes’ mechanical and emotional function within this virtual world. Ultimately, this article concludes by highlighting how these mechanics serve to emphasize the parasocial attachments and agency players encounter when faced with the dilemma of departure.
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25

Safii, M., and Azlan Zulhamsyah. "Sistem Pendukung Keputusan Pemilihan Mekanik Sepeda Motor Yamaha Alfascorfii Dengan Metode Multi Objective Optimization On The Basis Of Ratio Analysis (MOORA)." J-SAKTI (Jurnal Sains Komputer dan Informatika) 2, no. 2 (September 25, 2018): 162. http://dx.doi.org/10.30645/j-sakti.v2i2.79.

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Job performance is one of the needs in a company. The demand for these needs aims to foster consumer confidence in the services provided. In service business activities such as the sale and service of professional motorbikes, mechanical work is needed. In determining the best mechanic, there are many criteria that the mechanic must fulfill. These criteria include efforts to overcome problems, years of service, education and discipline. The selection of the best motorcycle mechanics is done to help improve the mechanical workability to be better than before. To assist with the determination or selection in determining someone who deserves to be the best motorcycle mechanic, a decision support system is needed. In this study a case will be raised which is looking for the best alternative based on the criteria that have been determined by using the Multi Objective Optimization Method On The Base Of Ratio Analysis (MOORA). The research was conducted by looking for weight values for each attribute, then ranking process was carried out which would determine the optimal alternative, namely Yamaha Alfascorfii motorcycle mechanics.
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26

Pradipta, Mahadika Bayu, and Tutus Praningki. "Sistem Pendukung Keputusan Menentukan Mekanik Terbaik Menggunakan Metode Simple Additive Weighting." CAHAYAtech 7, no. 2 (July 8, 2019): 135. http://dx.doi.org/10.47047/ct.v7i2.100.

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Ahass Aries Sentosa Motor Kediri is one of the leading motorcycle dealers and workshops in Kediri. One of the key factors in getting a well-known predicate from consumers is the mechanical quality factor, especially in motorcycle service in the workshop Ahass Aries Sentosa Motor Kediri. The use of a decision support system is very helpful in determining the best mechanics, and is accompanied by the method of Simple Additive Weighting (SAW), this method can complete the research by looking for weight values for each attribute, then ranking process that will determine the optimal alternative, namely the entitled mechanics got the title as the best mechanic. With the decision support system with Simple Additive Weighting (SAW) method applied to this problem because it is able to select the best alternative from a number of alternatives. In this case it will be easier to monitor, select and determine the mechanics who are entitled to the title as the best mechanic.
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27

Cheng, Yuan Zheng, and Guang Yu Shi. "The Prediction of Mechanical Properties of Graphene by Molecular Mechanics and Structural Mechanics Method." Advanced Materials Research 583 (October 2012): 403–7. http://dx.doi.org/10.4028/www.scientific.net/amr.583.403.

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Based on a new molecular structural mechanics model, the effective in-plane mechanical properties of monolayer graphene sheet is analytically analyzed in this paper. The energy equivalence between the basic cell of the atomic structure of graphene and the corresponding basic cell, defined in the homogenization of periodic cellular media, of its equivalent periodic framed structure is used to determine the mechanical properties of the equivalent structural members representing the C-C bonds of graphene. The resulting relationship between the mechanical parameters of the equivalent structural members and the force constants defined in molecular mechanics are different from those used in other molecular structural mechanics models. And these mechanical parameters yield more accurate effective mechanical properties of graphene, especially the Poisson ratio, than the existing molecular structural mechanics models.
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28

Mercier de Lépinay, Laure, Caspar F. Ockeloen-Korppi, Matthew J. Woolley, and Mika A. Sillanpää. "Quantum mechanics–free subsystem with mechanical oscillators." Science 372, no. 6542 (May 6, 2021): 625–29. http://dx.doi.org/10.1126/science.abf5389.

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Quantum mechanics sets a limit for the precision of continuous measurement of the position of an oscillator. We show how it is possible to measure an oscillator without quantum back-action of the measurement by constructing one effective oscillator from two physical oscillators. We realize such a quantum mechanics–free subsystem using two micromechanical oscillators, and show the measurements of two collective quadratures while evading the quantum back-action by 8 decibels on both of them, obtaining a total noise within a factor of 2 of the full quantum limit. This facilitates the detection of weak forces and the generation and measurement of nonclassical motional states of the oscillators. Moreover, we directly verify the quantum entanglement of the two oscillators by measuring the Duan quantity 1.4 decibels below the separability bound.
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29

Sundaram, Manu, and Manjush Karthika. "Respiratory Mechanics: To Balance the Mechanical Breaths!!" Indian Journal of Critical Care Medicine 25, no. 1 (2021): 10–11. http://dx.doi.org/10.5005/jp-journals-10071-23700.

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30

Sundaram, Manu, and Manjush Karthika. "Respiratory Mechanics: To Balance the Mechanical Breaths!!" Indian Journal of Critical Care Medicine 25, no. 1 (2021): 10–11. http://dx.doi.org/10.5005/jp-journals-10071-23700.

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31

Fischer-Cripps,, AC, and KL Johnson,. "Introduction to Contact Mechanics. Mechanical Engineering Series." Applied Mechanics Reviews 55, no. 3 (May 1, 2002): B51. http://dx.doi.org/10.1115/1.1470678.

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32

Bennett, J. A. "The Mechanics' Philosophy and the Mechanical Philosophy." History of Science 24, no. 1 (March 1986): 1–28. http://dx.doi.org/10.1177/007327538602400101.

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33

Kim, Kyeong Tae, Jennifer Knopp, Bronwyn Dixon, and Geoff Chase. "Quantifying neonatal pulmonary mechanics in mechanical ventilation." Biomedical Signal Processing and Control 52 (July 2019): 206–17. http://dx.doi.org/10.1016/j.bspc.2019.04.015.

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34

Chen, Tianwu, Hui Yang, Ju Li, and Sulin Zhang. "Mechanics of electrochemically driven mechanical energy harvesting." Extreme Mechanics Letters 15 (September 2017): 78–82. http://dx.doi.org/10.1016/j.eml.2017.06.002.

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35

Kim, Jungsil, and Jessica E. Wagenseil. "Bio-Chemo-Mechanical Models of Vascular Mechanics." Annals of Biomedical Engineering 43, no. 7 (December 3, 2014): 1477–87. http://dx.doi.org/10.1007/s10439-014-1201-7.

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36

Yokoi, Yuho, and Sumiyoshi Abe. "On quantum-mechanical origin of statistical mechanics." Journal of Physics: Conference Series 1113 (November 2018): 012012. http://dx.doi.org/10.1088/1742-6596/1113/1/012012.

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37

Khang, Dahl-Young, John A. Rogers, and Hong H. Lee. "Mechanical Buckling: Mechanics, Metrology, and Stretchable Electronics." Advanced Functional Materials 19, no. 10 (May 22, 2009): 1526–36. http://dx.doi.org/10.1002/adfm.200801065.

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38

Sinha, P., and T. Mukhopadhyay. "Programmable multi-physical mechanics of mechanical metamaterials." Materials Science and Engineering: R: Reports 155 (October 2023): 100745. http://dx.doi.org/10.1016/j.mser.2023.100745.

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39

Sakai, Nobuo, Yoshinori Sawae, and Teruo Murakami. "A Development of Joint Mechanism of Robot Arm Based on Human Shoulder Morphology(Musculo-Skeletal Mechanics)." Proceedings of the Asian Pacific Conference on Biomechanics : emerging science and technology in biomechanics 2004.1 (2004): 151–52. http://dx.doi.org/10.1299/jsmeapbio.2004.1.151.

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40

Yu, T. X. "Book Review: Mechanics of Deformable Solids (Volume 3 in Mechanical Engineering and Applied Mechanics)." International Journal of Mechanical Engineering Education 22, no. 1 (January 1994): 42. http://dx.doi.org/10.1177/030641909402200105.

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41

Liang, Steven Y., and Zhi Peng Pan. "Integration of Process Mechanics and Materials Mechanics for Precision Machining." Solid State Phenomena 261 (August 2017): 9–16. http://dx.doi.org/10.4028/www.scientific.net/ssp.261.9.

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On process mechanics, the mechanical and thermal stresses and their distributions within the material as imposed by machining is essential, and on materials mechanics, the crystal plasticity and microstructural dynamics of recrystallization, texture evolution, phase field variation, as well as constitutive of flow stress and other properties play pivotal roles. Furthermore, mechanical, thermal, and even chemical stresses imposed by machining effect the evolution of part microstructure and bulk properties, but on the other hand the materials microstructure can also change the flow stress characteristics and heat generation mechanics of machining. This process-materials interaction of bilateral nature is not clearly understood in the current literature. This paper outlines an iterative blending scheme to factor in both the process mechanics and materials mechanics in one analysis platform to facilitate the predictive modeling and planning of precision machining. The integration of the two mechanics domains combines macroscopic analysis of contact plasticity and moving heat source with the microscopic analysis of constitutive and homogenization modeling, to achieve a holistic descript of precision machining thus supporting process design and optimization. Steels, and titanium alloys are discussed as example material families in machining.
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42

Hammerer, K. "Quantum Mechanics Tackles Mechanics." Science 342, no. 6159 (November 7, 2013): 702–3. http://dx.doi.org/10.1126/science.1245797.

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43

Huang, Ju Hua. "Study on Theoretical Mechanics with Mechanics Properties in Exercise Class." Applied Mechanics and Materials 327 (June 2013): 237–40. http://dx.doi.org/10.4028/www.scientific.net/amm.327.237.

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In order to promote the students to master the mechanics concepts and mechanical properties,the exercise class must be paid attention highly besides basic theory in the learning of theoretical mechanics. Many practices prove that one problem with more solutions is an effective method.
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44

SONG, Xiaoqi, Weiming HE, and Tohru IHARA. "WeC-1-1 Predicting Periodic Evolution of BUE Formation Mechanisms during Machining Ductile Material Using Damage Mechanics." Proceedings of JSME-IIP/ASME-ISPS Joint Conference on Micromechatronics for Information and Precision Equipment : IIP/ISPS joint MIPE 2015 (2015): _WeC—1–1–1—_WeC—1–1–3. http://dx.doi.org/10.1299/jsmemipe.2015._wec-1-1-1.

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45

SATO, C., Y. NISHIYAMA, and M. SUGIURA. "ICS-14: Mechanical Properties of Dismantlable Adhesive Including Expansion Agents(ICS-II: INTERFACES AND CONTACT SURFACE MECHANICS)." Proceedings of the JSME Materials and Processing Conference (M&P) 2005 (2005): 9. http://dx.doi.org/10.1299/jsmeintmp.2005.9_1.

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46

Wool, Daegon, Hansung Kim, and Gyerae Tack. "A study on the mechanical characteristics of vertebral trabecular bones using the micro-FE models(Bone Mechanics)." Proceedings of the Asian Pacific Conference on Biomechanics : emerging science and technology in biomechanics 2004.1 (2004): 37–38. http://dx.doi.org/10.1299/jsmeapbio.2004.1.37.

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47

Carroll, M. M. "Foundations of Solid Mechanics." Applied Mechanics Reviews 38, no. 10 (October 1, 1985): 1301–8. http://dx.doi.org/10.1115/1.3143698.

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Solid mechanics is a basic discipline which supports much of the practice of mechanical and civil engineering, and contributes significantly to other engineering and scientific disciplines. Research in solid mechanics, at the foundational level, emphasizes comprehensive understanding and well-formulated analyses of mechanical phenomena occurring in engineering systems. The increasing availability of large computers has had a tremendous impact on the field. The traditional emphasis on analysis has shifted toward development of more realistic and detailed descriptions of material response, more efficient computational methodologies, and accurate numerical solution of initial and boundary value problems. Despite (or perhaps because of) this trend, theory and analysis must continue to play a vital role in modern solid mechanics. Solid mechanics is enriched by the increasing level of activity in interdisciplinary research. Within the field, there is a need for better communication and interaction between computation, experiment, and theory.
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48

Turner, A. J. "Essay Review: Mechanics in the Roberts Collection, Bibliotheca Mechanica." History of Science 32, no. 1 (March 1994): 106–8. http://dx.doi.org/10.1177/007327539403200105.

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49

Pidaparti, Ramana M., Kittisak Koombua, and Kevin R. Ward. "Assessment of mechanical ventilation parameters on respiratory mechanics." Journal of Medical Engineering & Technology 36, no. 1 (December 3, 2011): 34–41. http://dx.doi.org/10.3109/03091902.2011.634945.

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Bober, William. "Fluid Mechanics Computer Project for Mechanical Engineering Students." International Journal of Mechanical Engineering Education 36, no. 3 (July 2008): 248–55. http://dx.doi.org/10.7227/ijmee.36.3.8.

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