Showing 81 - 100 results of 485 for search '(("rapping" OR (("trapping" OR "tcapping") OR "tapping")) OR ("flapping" OR "capping"))', query time: 0.18s Refine Results
  1. 81
  2. 82

    Dysregulation of MMP2-dependent TGF-ß2 activation impairs fibrous cap formation in type 2 diabetes-associated atherosclerosis by Singh, P, Sun, J, Cavalera, M, Al-Sharify, D, Matthes, F, Barghouth, M, Tengryd, C, Dunér, P, Persson, A, Sundius, L, Nitulescu, M, Bengtsson, E, Rattik, S, Engelbertsen, D, Orho-Melander, M, Nilsson, J, Monaco, C, Goncalves, I, Edsfeldt, A

    Published 2024
    “…Transforming growth factor-ß2 originates mostly from contractile vascular smooth muscle cells that interact with synthetic vascular smooth muscle cells in the cap, leading to collagen formation and vascular smooth muscle cell differentiation. …”
    Journal article
  3. 83

    Hollow-core photonic crystal fiber based multifunctional optical system for trapping, position sensing, and detection of fluorescent particles by Shinoj, Vengalathunadakal Kuttinarayanan, Murukeshan, Vadakke Matham

    Published 2013
    “…This multifunctional optical system for trapping, position sensing, and fluorescent detection is designed such that a near-IR laser light is used to create an optical trap across a liquid-filled HC-PCF, and a 473 nm laser is employed as a source for fluorescence excitation. …”
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    Journal Article
  4. 84

    Combining detection dogs and camera traps improves minimally-invasive population monitoring for the cheetah, an elusive and rare large carnivore by Verschueren, S, Hofmann, T, Schmidt-Küntzel, A, Kakove, M, Munyandi, B, Bauer, H, Balkenhol, N, Leirs, H, Neumann, S, Cristescu, B, Marker, L

    Published 2025
    “…The detection probability (p) of cheetahs with one camera trap station per sampling unit placed at roads was low (p = 0.167), but increased for camera traps placed at marking sites that were identified through the detection dog survey (p = 0.244), and in particular when multiple camera trap stations were placed per sampling unit and detections were pooled across stations (p = 0.348 - 0.750). …”
    Journal article
  5. 85

    First cycle voltage hysteresis in Li-rich 3d cathodes associated with molecular O2 trapped in the bulk by House, RA, Rees, G, Perez-Osorio, M, Marie, J-J, Boivin, E, Robertson, A, Nag, A, Garcia-Fernandez, M, Zhou, K-J, Bruce, P

    Published 2020
    “…The implication is that O2, trapped in the bulk and lost from the surface, can explain O-redox.…”
    Journal article
  6. 86
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  9. 89

    Alteration of gate-oxide trap capture/emission time constants by channel hot-carrier effect in the metal-oxide-semiconductor field-effect transistor by Ju, Xin, Ang, Diing Shenp

    Published 2021
    “…A reversion of the altered trap time constant to the value before the CHC-stress is also observed, but the period varies significantly for different traps (from several hours to months). …”
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    Journal Article
  10. 90
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  12. 92

    Effect of post-deposition annealing on the interface electronic structures of Al2O3-Capped GaN and GaN/AlGaN/GaN heterostructure by Duan, Tian Li, Pan, Ji Sheng, Ang, Diing Shenp

    Published 2019
    “…The interface electronic structures of GaN and GaN/AlGaN/GaN samples, capped with atomic-layer-deposited Al2O3 and subjected to varying post-deposition annealing (PDA) temperatures, are investigated by X-ray photoelectron spectroscopy (XPS) and Hall-effect measurement. …”
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    Journal Article
  13. 93

    Dragonfly (Sympetrum flaveolum) flight : kinematic measurement and modelling by Chen, Y. H., Martin, Skote., Zhao, Y., Huang, W. M.

    Published 2013
    “…The kinematics of the flapping hindwing of the dragonfly Sympetrum flaveolum is investigated. …”
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    Journal Article
  14. 94

    Aerodynamics of unconventional airfoils by Ng, Bing Feng.

    Published 2009
    “…Static LEVs are stationary vortices trapped over the top surface of an airfoil. As such, it will be shown here that static LEVs can be created and trapped through the use of cavities. …”
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    Final Year Project (FYP)
  15. 95

    Soft actuators and their fabrication for bio-inspired mobile robots by Lau, Gih-Keong, Low, Sze-Shien, Chin, Yao-Wei, Heng, Kim-Rui

    Published 2016
    “…Dielectric elastomer actuators (DEA), which are capable of muscle-like actuation, have potential to drive insect-inspired flapping-wing robotfly. They have not been successfully used to drive flapping wings due to various limitations. …”
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    Research Report
  16. 96

    Design and fabrication of piezoelectrically driven wing flapper by Xu, WeiQuan.

    Published 2011
    “…This study focused on reproducing the flapping mechanism observed in insect flight using piezoelectric material as its driving mechanism. …”
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    Final Year Project (FYP)
  17. 97

    Cold-formed light gauge steel for rapid deployable shelters by Wu, Hongjun.

    Published 2009
    “…The I-columns are fabricated by connecting 2 lipped channels back-to-back using self tapping screws. We used Euler’s method to calculate the strength of the I-column and the experiment has proven that this method is valid for the calculation of I-column fabricated using self-tapping screws. …”
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    Final Year Project (FYP)
  18. 98

    Butterfly-like micro air vehicle by Yang, Xiaobin

    Published 2018
    “…Butterfly cannot hover, but it has unique aerodynamic characteristics such as undulating body motion and low wing loading. Development of flapping wing micro air vehicle is mainly focus on the hovering birds and inserts. …”
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    Final Year Project (FYP)
  19. 99

    Investigation of the effects of wing membrane slackness on thrust generation by Chua, Jasper Dong Qiu

    Published 2016
    “…In this experiment, the author aims to recreate this phenomenon, creating wings of varying slackness in an attempt to study if this phenomenon is a viable form a wing control for flapping wing micro-aerial vehicles (MAV).…”
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    Final Year Project (FYP)
  20. 100

    Natural avian inspired ornithopter UAV by Kaung, Ko Ko

    Published 2019
    “…Therefore, in this final year project, the product development will encompass studying and analyzing several bird species, mainly their flight dynamics and followed by engineering flexible flapping wing platforms which produce both thrust and lift by nature inspired movement of the birds’ wings in different flight phases, namely flapping, gliding and maneuvering. …”
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    Final Year Project (FYP)