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1

Burkey, John M., and William H. Lippy. "Small air-bone gaps." Hearing Journal 52, no. 6 (1999): 63–64. http://dx.doi.org/10.1097/00025572-199906000-00007.

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2

Kohl, Paul A. "Air-Gaps for Electrical Interconnections." Electrochemical and Solid-State Letters 1, no. 1 (1999): 49. http://dx.doi.org/10.1149/1.1390631.

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3

Rezinkina, M. M., O. L. Rezinkin, A. R. Danyliuk, V. I. Revuckiy, and A. N. Guchenko. "PHYSICAL MODELING OF ELECTRICAL PHYSICAL PROCESSESAT LONG AIR GAPS BREAKDOWN." Tekhnichna Elektrodynamika 2017, no. 1 (2017): 29–34. http://dx.doi.org/10.15407/techned2017.01.029.

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4

Margolis, Robert H., Richard H. Wilson, Gerald R. Popelka, Robert H. Eikelboom, De Wet Swanepoel, and George L. Saly. "Distribution Characteristics of Air-Bone Gaps." Ear and Hearing 37, no. 2 (2016): 177–88. http://dx.doi.org/10.1097/aud.0000000000000246.

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5

Wolf, Heinrich, Horst Gieser, Detlef Bonfert, and Markus Hauser. "ESD Susceptibility of Submicron Air Gaps." Microelectronics Reliability 46, no. 9-11 (2006): 1587–90. http://dx.doi.org/10.1016/j.microrel.2006.07.039.

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6

Gosset, L. G., A. Farcy, J. de Pontcharra, et al. "Advanced Cu interconnects using air gaps." Microelectronic Engineering 82, no. 3-4 (2005): 321–32. http://dx.doi.org/10.1016/j.mee.2005.07.014.

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7

Zhang, Zhuoran, Shengjie Ma, Ji Dai, and Yangguang Yan. "Investigation of Hybrid Excitation Synchronous Machines With Axial Auxiliary Air-Gaps and Non-Uniform Air-Gaps." IEEE Transactions on Industry Applications 50, no. 3 (2014): 1729–37. http://dx.doi.org/10.1109/tia.2013.2282937.

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8

Urata, E. "Influence of unequal air-gap thickness in servo valve torque motors." Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science 221, no. 11 (2007): 1287–97. http://dx.doi.org/10.1243/09544062jmes709.

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The current paper considers servo valve torque motors having four air-gaps. An ideal for these types of torque motors is to have four equal air-gaps at free state. However, real servo valve torque motors have unequal air-gaps due to production errors. Because the influence of the inequality of air-gaps is not clear, servo valve manufacturers have made great efforts to establish the equality of the air-gaps. The current paper gives a prospect on how an imbalance of air-gaps changes the flux densities in the air-gaps and the resultant torque characteristic. An important result of the paper is th
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9

CAO, Da, Yu AIDA, Naohisa INOUE, and Tetsuya SAKUMA. "Examination of the effect of air gaps on impact sound insulation performance of dry-type double floor system." INTER-NOISE and NOISE-CON Congress and Conference Proceedings 270, no. 9 (2024): 2577–87. http://dx.doi.org/10.3397/in_2024_3205.

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The dry-type double floor system is a floor finishing structure widely installed for apartments and offices in Japan. However, after installing the double floor system, it is found that the impact sound insulation performance using a heavy-weight impact source is usually reduced due to the resonance of the air layer between the floor panels and the concrete slab. To reduce this adverse effect, small air gaps are set between the floor panels and the surrounding walls. In this paper, an experimental study is conducted firstly. A small specimen including particle board, support legs and air gaps
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10

Salmon, Caroline, Sébastien Barriat, Laurent Demanez, David Magis, and Philippe Lefebvre. "Audiometric Results after Stapedotomy Operations in Patients with Otosclerosis and Preoperative Small Air-Bone Gaps." Audiology and Neurotology 20, no. 5 (2015): 330–36. http://dx.doi.org/10.1159/000433510.

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Objectives: The efficacy of stapedotomies performed on patients with small air-bone gaps (<25 dB) was compared with the efficacy of the operation in patients who had otosclerosis with high air-bone gaps (≥25 dB). Methods: This retrospective study evaluates the short-term postoperative air and bone conduction thresholds and air-bone gaps after 182 CO2 laser stapedotomies. Results: A significantly smaller air-bone gap and lower air conduction thresholds after surgery were observed in the group of patients who underwent surgery with preoperative air-bone gaps of less than 25 dB. Bone conductio
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11

Starodubtsev, Yuri N., Vladimir S. Tsepelev, Vladimir Ya Belozerov, and Viktor A. Zelenin. "Permeability of Magnetic Cores with Air Gaps." Materials 15, no. 3 (2022): 1217. http://dx.doi.org/10.3390/ma15031217.

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The influence of the geometric dimensions of the cut core and the number and size of air gaps on the effective permeability was investigated. Using dimensional analysis, an equation was obtained that relates the permeability of the cut core to the simplest dimensionless combination of the mean magnetic flux length l, single air gap length lg1, the cross-sectional area S of the core, and gap number ng. Permeability calculated from the geometric parameters of the cut core was compared with the effective permeability obtained using a two-dimensional FEMM simulation. Simulation has shown that the
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12

Liau, Z. L., and A. A. Liau. "Nanometer air gaps in semiconductor wafer bonding." Applied Physics Letters 78, no. 23 (2001): 3726–28. http://dx.doi.org/10.1063/1.1377313.

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13

Berghel, Hal. "A Farewell to Air Gaps, Part 1." Computer 48, no. 6 (2015): 64–68. http://dx.doi.org/10.1109/mc.2015.179.

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14

Berghel, Hal. "A Farewell to Air Gaps, Part 2." Computer 48, no. 7 (2015): 59–63. http://dx.doi.org/10.1109/mc.2015.181.

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15

Kohl, P. A., D. M. Bhusari, M. Wedlake та ін. "Air-gaps in 0.3 μm electrical interconnections". IEEE Electron Device Letters 21, № 12 (2000): 557–59. http://dx.doi.org/10.1109/55.887464.

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16

Moore, Sarah. "Closing the gaps in air cargo security." Journal of Transportation Security 8, no. 3-4 (2015): 115–37. http://dx.doi.org/10.1007/s12198-015-0163-9.

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17

Allen, N. L., M. Boutlendj, and H. A. Lightfoot. "Dielectric breakdown in nonuniform field air gaps." IEEE Transactions on Electrical Insulation 28, no. 2 (1993): 183–91. http://dx.doi.org/10.1109/14.212243.

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18

Nicolaou, Laura, and William Checkley. "Inequities in air pollution exposure and gaps in air quality monitoring." Journal of Allergy and Clinical Immunology 148, no. 1 (2021): 64–66. http://dx.doi.org/10.1016/j.jaci.2021.04.014.

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19

af Klintberg, Tord, and Folke Björk. "Air Gap Method: measurements of airflow inside air gaps of walls." Structural Survey 26, no. 4 (2008): 343–63. http://dx.doi.org/10.1108/02630800810906584.

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20

Dai, Yong, Yifeng Zheng, Chunwei Yuan, Yuqing Zhang, and Hongbo Qiu. "Influence of Dual Air Gaps on Flux–Torque Regulation Hybrid Excitation Machine with Axial–Radial Magnetic Circuit." World Electric Vehicle Journal 15, no. 9 (2024): 430. http://dx.doi.org/10.3390/wevj15090430.

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In this paper, a flux–torque regulation hybrid excitation machine (FTRHEM) with axial–radial dual air gaps, which can increase torque and regulate magnetic flux by changing the exciting current, is studied. Dual air gaps have a huge impact on the magnetic flux and additional torque. The effect of the air gap reluctances on the magnetic flux of the machine is obtained by establishing equivalent magnetic network models, which show that the dual air gaps are the key component in the axial–radial magnetic circuit. This study examines the flux regulation ability and the enhanced torque performance
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21

Dissanayake, S. E., and K. A. I. L. Wijewardena Gamalath. "Simulation of Two Dimensional Photonic Band Gaps." International Letters of Chemistry, Physics and Astronomy 24 (December 2013): 58–88. http://dx.doi.org/10.18052/www.scipress.com/ilcpa.24.58.

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The plane wave expansion method was implemented in modelling and simulating the band structures of two dimensional photonic crystals with square, triangular and honeycomb lattices with circular, square and hexagonal dielectric rods and air holes. Complete band gaps were obtained for square lattice of square GaAs rods and honeycomb lattice of circular and hexagonal GaAs rods as well as triangular lattice of circular and hexagonal air holes in GaAs whereas square lattice of square or circular air holes in a dielectric medium ε = 18 gave complete band gaps. The variation of these band gaps with d
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22

Dissanayake, S. E., and K. A. I. L. Wijewardena Gamalath. "Simulation of Two Dimensional Photonic Band Gaps." International Letters of Chemistry, Physics and Astronomy 24 (December 26, 2013): 58–88. http://dx.doi.org/10.56431/p-41l177.

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The plane wave expansion method was implemented in modelling and simulating the band structures of two dimensional photonic crystals with square, triangular and honeycomb lattices with circular, square and hexagonal dielectric rods and air holes. Complete band gaps were obtained for square lattice of square GaAs rods and honeycomb lattice of circular and hexagonal GaAs rods as well as triangular lattice of circular and hexagonal air holes in GaAs whereas square lattice of square or circular air holes in a dielectric medium ε = 18 gave complete band gaps. The variation of these band gaps with d
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23

Oreshkin, E. V., S. A. Barengolts, S. A. Chaikovsky, A. V. Oginov, K. V. Shpakov, and V. A. Bogachenkov. "Bremsstrahlung of fast electrons in long air gaps." Physics of Plasmas 19, no. 1 (2012): 013108. http://dx.doi.org/10.1063/1.3677267.

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24

Lippy, William H., John M. Burkey, Arnold G. Schuring, and Franklin M. Rizer. "Stapedectomy in Patients With Small Air-Bone Gaps." Laryngoscope 107, no. 7 (1997): 919–22. http://dx.doi.org/10.1097/00005537-199707000-00016.

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25

Gosset, L. "Integration of SiOC air gaps in copper interconnects." Microelectronic Engineering 70, no. 2-4 (2003): 274–79. http://dx.doi.org/10.1016/s0167-9317(03)00438-6.

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26

Palkovich, Alex, John M. Bird, and Toma Duby. "5614880 Superconducting magnet with symmetrical plural AIR gaps." Magnetic Resonance Imaging 15, no. 5 (1997): XVI. http://dx.doi.org/10.1016/s0730-725x(97)89759-7.

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27

Prawoto, Clarissa, Zichao Ma, Ying Xiao, Salahuddin Raju, Changjian Zhou, and Mansun Chan. "Interconnect Technology With h-BN-Capped Air-Gaps." IEEE Electron Device Letters 40, no. 11 (2019): 1876–79. http://dx.doi.org/10.1109/led.2019.2944418.

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28

Sorenson, James A., and Jacqueline Floch. "Scatter rejection by air gaps: An empirical model." Medical Physics 12, no. 3 (1985): 308–16. http://dx.doi.org/10.1118/1.595690.

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29

Wooding, Hayley, Paul Ronaldson, Victoria Beenstock, Avtar Raina, and Lisa Johansson. "Clinical Consequences of Air Gaps Surrounding Vaginal Cylinders." Brachytherapy 17, no. 4 (2018): S122. http://dx.doi.org/10.1016/j.brachy.2018.04.225.

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30

Mortazy, Ebrahim, Alireza Hassani, Francois Legare, Ke Wu, and Mohamed Chaker. "Multilayer porous waveguide for microwave low-loss applications." International Journal of Microwave and Wireless Technologies 3, no. 4 (2011): 459–63. http://dx.doi.org/10.1017/s1759078711000596.

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A novel waveguide called multilayer porous waveguide (MPW) is proposed as microwave low-loss transmission lines. MPW is a fully rectangular dielectric waveguide composed of several periodically rectangular air gaps in a bulk dielectric that can be easily formed by placing several dielectric substrates in interval with air gaps. The loss and propagating characteristics of both TE and TM modes in MPW are studied. The TE mode confined in the air gaps has a lower loss than the TM mode spread out in air gaps and dielectric; however, the loss of TM mode is still less than that of conventional microw
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31

Tilsley, Lee, D. J. Carr, C. Lankester, and C. Malbon. "Do air-gaps behind soft body armour affect protection?" Journal of the Royal Army Medical Corps 164, no. 1 (2017): 15–18. http://dx.doi.org/10.1136/jramc-2016-000759.

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IntroductionBody armour typically comprises a fabric garment covering the torso combined with hard armour (ceramic/composite). Some users wear only soft armour which provides protection from sharp weapons and pistol ammunition. It is usually recommended that body armour is worn against the body with no air-gaps being present between the wearer and the armour. However, air-gaps can occur in certain situations such as females around the breasts, in badly fitting armour and where manufacturers have incorporated an air-gap claiming improvements in thermophysiological burden. The effect of an air-g
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32

Li, Qiang, Xu Yang, Changhong Zhang, Qiang Fu, Dong Li, and Weizhen Zhou. "The impact of different air gap defects in polypropylene coaxial cables on electric field distortion." Journal of Physics: Conference Series 2741, no. 1 (2024): 012058. http://dx.doi.org/10.1088/1742-6596/2741/1/012058.

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Abstract The internal cable will have different air gaps due to various physical influences, and partial discharge caused by air gap defects is the main cause of cable insulation aging. To avoid serious consequences caused by air gap defects, it is crucial to analyze the extent of the impact of early-stage air gaps on the electric field in the cable. In this paper, COMSOL Multiphysics software is used to build a three-dimensional model of the cable, and the insulation material is polypropylene. Different positions and sizes of air gap defects are designed in the model. The electric field distr
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33

Rizk, F. A. M. "Critical switching impulse strength of long air gaps: modelling of air density effects." IEEE Transactions on Power Delivery 7, no. 3 (1992): 1507–15. http://dx.doi.org/10.1109/61.141871.

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34

Li, Li Li, Yu Long Wang, and Hong Da Yang. "Study on Relationships between High-Frequency High-Voltage Pulse Breakdown Voltage of Air-Gaps and Pulse Delay Time." Advanced Materials Research 981 (July 2014): 683–87. http://dx.doi.org/10.4028/www.scientific.net/amr.981.683.

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In the paper, power frequency and high-frequency high-voltage pulse breakdown voltage of air-gaps were measured by circuits of spark gap switches respectively, and then output waveforms were obtained by sampling circuits, finally a large number of data in experiments were recorded and were drawn into curves. It can be seen from curves: firstly, relationships between pulse breakdown voltage of air-gaps and pulse delay time or between pulse breakdown voltage of air-gaps and pulse coefficient are discussed when electrodes and distances between electrodes are different, secondly, relationships bet
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35

Zhou, Fangrong, Hao Geng, Gang Wen, et al. "Influence of Mountain Wildfires on the Insulation Properties of Air Gaps in Power Grids." Energies 18, no. 2 (2025): 225. https://doi.org/10.3390/en18020225.

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The complex terrain of China frequently leads to wildfires, which in turn pose a threat to the safe operation of power transmission lines. Studying the breakdown characteristics of air gaps under wildfire conditions is of great significance for understanding wildfire propagation mechanisms, risk assessment and management, and ecological environment protection. This paper establishes an experimental platform simulating wildfire climatic conditions and conducts experimental research on air gaps between rod–rod gaps and conductor–ground gaps. The experimental voltage types include direct current,
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36

Oktav, Akın. "The Effects of Trunk Cavity and Air-Gaps in the Acoustic Response of a Passenger Vehicle." Archives of Acoustics 42, no. 3 (2017): 433–40. http://dx.doi.org/10.1515/aoa-2017-0045.

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AbstractThe effects of additional cavities and air-gaps in the acoustic response of a passenger vehicle are investigated. It is observed that the cabin cavity and the trunk cavity of the passenger vehicle are connected through an aperture in the rear seat. In the trunk cavity of the vehicle, there are two more air-gaps which are designed as countermeasures to trunk lid slam noise. It is established that acoustic modes and acoustic eigenfrequencies of the vehicle are altered through the trunk cavity and its air-gaps. To develop an analytical solution, the actual acoustic cavity is simplified in
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37

Aoshima, Yoshihide, and Kunihiko Miyake. "Flashover characteristics of air gaps for short tail waves." IEEJ Transactions on Power and Energy 109, no. 3 (1989): 135–42. http://dx.doi.org/10.1541/ieejpes1972.109.135.

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38

Wu, Shaocheng, Linong Wang, Jiachen Gao, et al. "Breakdown characteristics of combined air gaps under lightning impulse." AIP Advances 12, no. 3 (2022): 035024. http://dx.doi.org/10.1063/5.0084951.

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With the increase of both voltage level and the transmission capacity, more attention has been paid to the external insulation of transmission lines. As the main external insulation medium of transmission line, the air gap’s dielectric strength will change when there are floating conductors. In this paper, we established an experiment platform to study the effects of floating conductors, simulated by floating rod electrode, on breakdown voltage, breakdown time, electric field distribution and discharge physical process of long air gaps under lightning impulse. The results showed that the inter
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39

Miki, Megumu, Atsushi Wada, and Takatoshi Shindo. "Characteristics of laser-guided discharges in long air gaps." Journal of Optical Technology 66, no. 3 (1999): 190. http://dx.doi.org/10.1364/jot.66.000190.

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40

Garnacho, Fernando, Abderrahim Khamlichi, Antonio Valladolid, Pascual Simon, and Rafael Guirado. "Procedures to Determine k-Factor Function for Air Gaps." IEEE Transactions on Power Delivery 28, no. 2 (2013): 686–92. http://dx.doi.org/10.1109/tpwrd.2012.2228012.

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41

Shindo, T., I. Kishizima, and T. Suzuki. "Flashover characteristics of air gaps under partly chopped waves." IEEE Transactions on Power Delivery 3, no. 4 (1988): 1887–91. http://dx.doi.org/10.1109/61.193997.

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42

Uzunlar, E., and P. A. Kohl. "Low-Cost MEMS Packaging Using Polymer-Based Air-Gaps." ECS Transactions 61, no. 3 (2014): 237–42. http://dx.doi.org/10.1149/06103.0237ecst.

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43

Fukunaga, H., T. Eguchi, Y. Ohta, and H. Kakehashi. "Core loss in amorphous cut cores with air gaps." IEEE Transactions on Magnetics 25, no. 3 (1989): 2694–98. http://dx.doi.org/10.1109/20.24510.

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44

Meng, Zhi-Jun, Li-Feng Wang, Ming-Yun Lü, and Zhe Wu. "Transmission properties of frequency selective structures with air gaps." Chinese Physics B 19, no. 12 (2010): 127301. http://dx.doi.org/10.1088/1674-1056/19/12/127301.

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45

Broeng, Jes, Stig E. Barkou, Anders Bjarklev, Jonathan C. Knight, Tim A. Birks, and Philip St J. Russell. "Highly increased photonic band gaps in silica/air structures." Optics Communications 156, no. 4-6 (1998): 240–44. http://dx.doi.org/10.1016/s0030-4018(98)00470-2.

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46

Mavroidis, P. N., P. N. Mikropoulos, and C. A. Stassinopoulos. "Impulse behavior of dielectric-covered rod-plane air gaps." IEEE Transactions on Dielectrics and Electrical Insulation 19, no. 2 (2012): 632–40. http://dx.doi.org/10.1109/tdei.2012.6180258.

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47

af Klintberg, Tord, Gudni Johannesson, and Folke Björk. "Air gaps in building construction avoiding dampness and mould." Structural Survey 26, no. 3 (2008): 242–55. http://dx.doi.org/10.1108/02630800810887126.

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48

Jeng, Fuh-Cherng, Carolyn J. Brown, Tiffany A. Johnson, and Kathy R. Vander Werff. "Estimating Air-Bone Gaps Using Auditory Steady-State Responses." Journal of the American Academy of Audiology 15, no. 01 (2004): 067–78. http://dx.doi.org/10.3766/jaaa.15.1.7.

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Auditory steady-state responses (ASSR) were recorded using stimuli presented both via air conduction (AC ASSR) and bone conduction (BC ASSR) in 10 normal-hearing subjects with different degrees of simulated conductive hearing losses. The ASSR-estimated ABG (air-bone gap) was compared with the ABG measured using traditional pure-tone audiometric procedures. Reproducibility of the BC ASSR electrophysiological thresholds was also assessed. Additionally, a group of five subjects with profound sensorineural hearing loss was used to establish stimulation levels in which the BC ASSR was contaminated
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49

Karutz, P., T. Nussbaumer, W. Gruber, and J. W. Kolar. "Acceleration-Performance Optimization for Motors With Large Air Gaps." IEEE Transactions on Industrial Electronics 57, no. 1 (2010): 52–60. http://dx.doi.org/10.1109/tie.2009.2026376.

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50

Kitahara, Tadashi, Arata Horii, Yasuo Mishiro, et al. "Low-tone air-bone gaps after endolymphatic sac surgery." Auris Nasus Larynx 38, no. 2 (2011): 178–84. http://dx.doi.org/10.1016/j.anl.2010.08.002.

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