Skip to main content
Erschienen in: Microsystem Technologies 12/2014

01.12.2014 | Review Paper

Underwater artificial lateral line flow sensors

verfasst von: Tan Shizhe

Erschienen in: Microsystem Technologies | Ausgabe 12/2014

Einloggen

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

Biomimetics is a promising field of research in which natural processes and structures are transferred to technical applications. The lateral line is a critical component of the fish sensory system and plays an important role in many behaviors by providing hydrodynamic information about the surrounding fluid. It is believed that the artificial lateral line flow sensors (ALLFS) are advantageous for underwater applications. This paper reviews the morphology and biophysics of the lateral line, especially theoretical models of lateral line, including biomechanical model, frequency response and time domain response of lateral line. Also, this paper reviews some efforts to mimic lateral line system in recent years. In order to capture the recent research status, this paper reviews the design and fabrication of ALLFS based on different sensing principles. Further researches to develop ALLFS and their underwater applications are also discussed in this paper.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literatur
Zurück zum Zitat Abdulsadda AT, Tan X (2011) Underwater source localization using an IPMC-based artificial lateral line. Robotics and automation (ICRA). Proceedings of the 2011 IEEE International Conference on Robotics and Automation, Shanghai, pp 447–452 Abdulsadda AT, Tan X (2011) Underwater source localization using an IPMC-based artificial lateral line. Robotics and automation (ICRA). Proceedings of the 2011 IEEE International Conference on Robotics and Automation, Shanghai, pp 447–452
Zurück zum Zitat Asadnia M, Kottapalli Ajay Giri Prakash, Shen Zhiyuan, Miao Jianmin, Triantafyllou Michael (2013) Flexible and surface-mountable piezoelectric sensor arrays for underwater sensing in marine vehicles. IEEE Sens J 13(10):3918–3925CrossRef Asadnia M, Kottapalli Ajay Giri Prakash, Shen Zhiyuan, Miao Jianmin, Triantafyllou Michael (2013) Flexible and surface-mountable piezoelectric sensor arrays for underwater sensing in marine vehicles. IEEE Sens J 13(10):3918–3925CrossRef
Zurück zum Zitat Batchelor GK (1967) Basic developments in fluid dynamics. J Fluid Mech 28:822–824CrossRef Batchelor GK (1967) Basic developments in fluid dynamics. J Fluid Mech 28:822–824CrossRef
Zurück zum Zitat Beckmann M, Eros T, Schmitz A, Bleckmann H (2010) Number and distribution of superficial neuromasts in twelve common European cypriniform fishes and their relationship to habitat occurrence. Int Rev Hydrobiol 95:273–284CrossRef Beckmann M, Eros T, Schmitz A, Bleckmann H (2010) Number and distribution of superficial neuromasts in twelve common European cypriniform fishes and their relationship to habitat occurrence. Int Rev Hydrobiol 95:273–284CrossRef
Zurück zum Zitat Bleckmann H, Mogdans Joachim, Coombs SL (2014) Flow sensing in air and water. Springer-Verlag, Berlin HeidelbergCrossRef Bleckmann H, Mogdans Joachim, Coombs SL (2014) Flow sensing in air and water. Springer-Verlag, Berlin HeidelbergCrossRef
Zurück zum Zitat Chen J, Fan ZF, Zou J, Engel J, Liu C (2003) Two-dimensional micromachined flow sensor array for fluid mechanics studies. J Aerosp Eng 16:85–97CrossRef Chen J, Fan ZF, Zou J, Engel J, Liu C (2003) Two-dimensional micromachined flow sensor array for fluid mechanics studies. J Aerosp Eng 16:85–97CrossRef
Zurück zum Zitat Chen N, Chen J, Engel J, Pandya S, Tucker C, Liu C (2006) Development and characterization of high-sensitivity bioinspired artificial haircell sensor The 12th Solid State Sensors, Actuator, and Microsystems Workshop, Hilton Head, South Carolina, 4–8 Jun Chen N, Chen J, Engel J, Pandya S, Tucker C, Liu C (2006) Development and characterization of high-sensitivity bioinspired artificial haircell sensor The 12th Solid State Sensors, Actuator, and Microsystems Workshop, Hilton Head, South Carolina, 4–8 Jun
Zurück zum Zitat Chen NN, Tucker C, Engel JM, Yang YC, Pandya S, Liu C (2007) Design and characterization of artificial haircell sensor for flow sensing with ultrahigh velocity and angular sensitivity. J Microelectromech Syst 16:999–1014CrossRef Chen NN, Tucker C, Engel JM, Yang YC, Pandya S, Liu C (2007) Design and characterization of artificial haircell sensor for flow sensing with ultrahigh velocity and angular sensitivity. J Microelectromech Syst 16:999–1014CrossRef
Zurück zum Zitat Chenyang X, Shang C, Wendong Z, Binzhen Z, Guojun Z, Hui Q (2007) Design, fabrication, and preliminary characterization of a novel MEMS bionic vector hydrophone. Microelectron J 38:1021–1026CrossRef Chenyang X, Shang C, Wendong Z, Binzhen Z, Guojun Z, Hui Q (2007) Design, fabrication, and preliminary characterization of a novel MEMS bionic vector hydrophone. Microelectron J 38:1021–1026CrossRef
Zurück zum Zitat Coombs S, Braun CB (2003) Information processing by the lateral line system. In: Collin SP, Marshall NJ (eds) Sensory processing in aquatic environments. Springer-Verlag, New York, pp 122–138CrossRef Coombs S, Braun CB (2003) Information processing by the lateral line system. In: Collin SP, Marshall NJ (eds) Sensory processing in aquatic environments. Springer-Verlag, New York, pp 122–138CrossRef
Zurück zum Zitat Dagamseh AMK, Lammerink TSJ, Bruinink CM, Wiegerink RJ, Krijnen GJM (2009) Dipole source localisation using bio-mimetic flow-sensor arrays. Procedia Chem 1:891–894CrossRef Dagamseh AMK, Lammerink TSJ, Bruinink CM, Wiegerink RJ, Krijnen GJM (2009) Dipole source localisation using bio-mimetic flow-sensor arrays. Procedia Chem 1:891–894CrossRef
Zurück zum Zitat Dagamseh AMK, Lammerink TSJ, Kolster ML, Bruinink CM, Wiegerink RJ, Krijnen GJM (2010) Dipole-source localization using biomimetic flow-sensor arrays positioned as lateral-line system. Sens Actuators A 162:355–360CrossRef Dagamseh AMK, Lammerink TSJ, Kolster ML, Bruinink CM, Wiegerink RJ, Krijnen GJM (2010) Dipole-source localization using biomimetic flow-sensor arrays positioned as lateral-line system. Sens Actuators A 162:355–360CrossRef
Zurück zum Zitat Dagamseh AMK, Lammerink TSJ, Sanders R, Wiegerink RJ, Krijnen GJM (2011) Towards high-resolution flow cameras made of artificial hair flow-sensors for flow pattern recognition Mems: IEEE 24th International conference on Micro Electro Mechanical Systems, pp 648–651 Dagamseh AMK, Lammerink TSJ, Sanders R, Wiegerink RJ, Krijnen GJM (2011) Towards high-resolution flow cameras made of artificial hair flow-sensors for flow pattern recognition Mems: IEEE 24th International conference on Micro Electro Mechanical Systems, pp 648–651
Zurück zum Zitat Dinklo T (2005) Mechano- and electrophysiological studies on cochlear hair cells and superficial lateral line cupulae. Doctoral dissertation, University of Groningen Dinklo T (2005) Mechano- and electrophysiological studies on cochlear hair cells and superficial lateral line cupulae. Doctoral dissertation, University of Groningen
Zurück zum Zitat Dusek J, Kottapalli AGP, Woo ME, Asadnia M, Miao J, Lang JH, Triantafyllou MS (2013) Development and testing of bio-inspired microelectromechanical pressure sensor arrays for increased situational awareness for marine vehicles. Smart Mater Struct. doi:10.1088/0964-1726/22/1/014002 Dusek J, Kottapalli AGP, Woo ME, Asadnia M, Miao J, Lang JH, Triantafyllou MS (2013) Development and testing of bio-inspired microelectromechanical pressure sensor arrays for increased situational awareness for marine vehicles. Smart Mater Struct. doi:10.​1088/​0964-1726/​22/​1/​014002
Zurück zum Zitat Fan Z, Chen J, Zou J, Bullen D, Liu C, Delcomyn F (2002) Design and fabrication of artificial lateral line flow sensors. J Micromech Microeng 12:655–661CrossRef Fan Z, Chen J, Zou J, Bullen D, Liu C, Delcomyn F (2002) Design and fabrication of artificial lateral line flow sensors. J Micromech Microeng 12:655–661CrossRef
Zurück zum Zitat Fulford JM (2001) Accuracy and consistency of water-current meters. JAWRA J Am Water Resour Assoc 37(5):1215–1224CrossRef Fulford JM (2001) Accuracy and consistency of water-current meters. JAWRA J Am Water Resour Assoc 37(5):1215–1224CrossRef
Zurück zum Zitat Gardiner JM, Atema J (2007) Sharks need the lateral line to locate odor sources: rheotaxis and eddy chemo taxis. J Exp Biol 210:1925–1934CrossRef Gardiner JM, Atema J (2007) Sharks need the lateral line to locate odor sources: rheotaxis and eddy chemo taxis. J Exp Biol 210:1925–1934CrossRef
Zurück zum Zitat Harris GG, van Bergeijk WA (1962) Evidence that the lateral-line organ responds to near field displacements of sound sources in water. J Acoust Soc Am 34:31–41CrossRef Harris GG, van Bergeijk WA (1962) Evidence that the lateral-line organ responds to near field displacements of sound sources in water. J Acoust Soc Am 34:31–41CrossRef
Zurück zum Zitat Izadi N, Krijnen Gijs JM (2012) Design and fabrication process for artificial lateral line sensors. In: Coombs S (ed) Frontiers in sensing from biology to engineering the lateral line. Springer, New York, pp 405–419 Izadi N, Krijnen Gijs JM (2012) Design and fabrication process for artificial lateral line sensors. In: Coombs S (ed) Frontiers in sensing from biology to engineering the lateral line. Springer, New York, pp 405–419
Zurück zum Zitat Jing XM, Miao JM, Xu T, Norford L (2010a) Hair-like airflow sensing with piezoelectric vibrating diaphragm. In: proceeding sensors, 2010 IEEE, pp 1809–1812 Jing XM, Miao JM, Xu T, Norford L (2010a) Hair-like airflow sensing with piezoelectric vibrating diaphragm. In: proceeding sensors, 2010 IEEE, pp 1809–1812
Zurück zum Zitat Jing XM, Miao JM, Xu T, Olfatnia M, Norford L (2010b) Vibration characteristics of micromachined piezoelectric diaphragms with a standing beam subjected to airflow. Sens Actuators A 164:22–27CrossRef Jing XM, Miao JM, Xu T, Olfatnia M, Norford L (2010b) Vibration characteristics of micromachined piezoelectric diaphragms with a standing beam subjected to airflow. Sens Actuators A 164:22–27CrossRef
Zurück zum Zitat Kalmijn AJ (1988) Hydrodynamic and acoustic field detection. In: Atema J, Fay RR, Popper AN, Tavolga WN (eds) Sensory biology of aquatic animals. Springer, New York, pp 83–130CrossRef Kalmijn AJ (1988) Hydrodynamic and acoustic field detection. In: Atema J, Fay RR, Popper AN, Tavolga WN (eds) Sensory biology of aquatic animals. Springer, New York, pp 83–130CrossRef
Zurück zum Zitat Kalmijn AJ (1989) Functional evolution of lateral line and inner ear sensory systems. In: Coombs S, Görner P, Münz H (eds) The mechanosensory lateral line. Springer, New York, pp 187–215CrossRef Kalmijn AJ (1989) Functional evolution of lateral line and inner ear sensory systems. In: Coombs S, Görner P, Münz H (eds) The mechanosensory lateral line. Springer, New York, pp 187–215CrossRef
Zurück zum Zitat Klein A, Bleckmann H (2011) Determination of object position, vortex shedding frequency and flow velocity using artificial lateral line canals. Beilstein J Nanotechnol 2:276–283CrossRef Klein A, Bleckmann H (2011) Determination of object position, vortex shedding frequency and flow velocity using artificial lateral line canals. Beilstein J Nanotechnol 2:276–283CrossRef
Zurück zum Zitat Krijnen G, Lammerink T, Wiegerink R, Casas J (2007) Cricket inspired flow-sensor arrays. In: IEEE Sensors conference pp 539–546 Krijnen G, Lammerink T, Wiegerink R, Casas J (2007) Cricket inspired flow-sensor arrays. In: IEEE Sensors conference pp 539–546
Zurück zum Zitat Li Fei, Liu Weiting, Stefanini Cesare, Xin Fu, Dario Paolo (2010) A novel bioinspired PVDF micro/nano hair receptor for a robot sensing system. Sensors 10:994–1011CrossRef Li Fei, Liu Weiting, Stefanini Cesare, Xin Fu, Dario Paolo (2010) A novel bioinspired PVDF micro/nano hair receptor for a robot sensing system. Sensors 10:994–1011CrossRef
Zurück zum Zitat McConney ME, Chen N, Lu D, Hu HA, Coombs S, Liu C, Tsukruk VV (2008) Biologically inspired design of hydrogel-capped hair sensors for enhanced underwater flow detection. Soft Mater 5:292–295CrossRef McConney ME, Chen N, Lu D, Hu HA, Coombs S, Liu C, Tsukruk VV (2008) Biologically inspired design of hydrogel-capped hair sensors for enhanced underwater flow detection. Soft Mater 5:292–295CrossRef
Zurück zum Zitat McHenry MJ, Strother JA, van Netten SM (2008) Mechanical filtering by the boundary layer and fluid-structure interaction in the superficial neuromast of the fish lateral line system. J Comput Physiol A 194:795–810CrossRef McHenry MJ, Strother JA, van Netten SM (2008) Mechanical filtering by the boundary layer and fluid-structure interaction in the superficial neuromast of the fish lateral line system. J Comput Physiol A 194:795–810CrossRef
Zurück zum Zitat Mogdans J, Bleckmann H (2012) Coping with flow: behavior, neurophysiology and modeling of the fish lateral line system. Biol Cybern 106(11–12):627–642CrossRef Mogdans J, Bleckmann H (2012) Coping with flow: behavior, neurophysiology and modeling of the fish lateral line system. Biol Cybern 106(11–12):627–642CrossRef
Zurück zum Zitat Nawi MNM, Abd Manaf A, Arshad MR, Sidek O (2011) Review of MEMS flow sensors based on artificial hair cell sensor Microsyst. Technol 17:1417–1426 Nawi MNM, Abd Manaf A, Arshad MR, Sidek O (2011) Review of MEMS flow sensors based on artificial hair cell sensor Microsyst. Technol 17:1417–1426
Zurück zum Zitat Nguyen N, Jones D, Pandya S, Yang Y C, Chen NN, Tucker C, Liu C (2008) Biomimetic flow imaging with an artificial fish lateral line. In: Biosignals: Proc. First Int. Conf. on Bio-Inspired Systems and Signal Processing vol 2. pp 269–276 Nguyen N, Jones D, Pandya S, Yang Y C, Chen NN, Tucker C, Liu C (2008) Biomimetic flow imaging with an artificial fish lateral line. In: Biosignals: Proc. First Int. Conf. on Bio-Inspired Systems and Signal Processing vol 2. pp 269–276
Zurück zum Zitat Nguyen N, Jones DL, Yang YC, Liu C (2011) Flow vision for autonomous underwater vehicles via an artificial lateral line. EURASIP J Adv Signal Process. doi:10.1155/2011/806406 Nguyen N, Jones DL, Yang YC, Liu C (2011) Flow vision for autonomous underwater vehicles via an artificial lateral line. EURASIP J Adv Signal Process. doi:10.​1155/​2011/​806406
Zurück zum Zitat Ozaki Y, Ohyama T, Yasuda T, Shimoyama I (2000) Air flow sensor modeled on wind receptor hairs of insects IEEE Int. Conf. MEMS pp 531–6 Ozaki Y, Ohyama T, Yasuda T, Shimoyama I (2000) Air flow sensor modeled on wind receptor hairs of insects IEEE Int. Conf. MEMS pp 531–6
Zurück zum Zitat Pandya S, Yang Y, Jones DL, Engel J, Liu C (2006) Multisensor processing algorithms for underwater dipole localization and tracking using MEMS artificial lateral-line sensors. EURASIP J Adv Signal Process. doi:10.1155/ASP/2006/76593 Pandya S, Yang Y, Jones DL, Engel J, Liu C (2006) Multisensor processing algorithms for underwater dipole localization and tracking using MEMS artificial lateral-line sensors. EURASIP J Adv Signal Process. doi:10.​1155/​ASP/​2006/​76593
Zurück zum Zitat Pandya S, Yang Y C, Liu C, Jones D L(2007) Biomimetic imaging of flow phenomena. IEEE Int. Conf. on Acoustics, Speech, and Signal Processing vol II, pp 933–936 Pandya S, Yang Y C, Liu C, Jones D L(2007) Biomimetic imaging of flow phenomena. IEEE Int. Conf. on Acoustics, Speech, and Signal Processing vol II, pp 933–936
Zurück zum Zitat Peleshanko S, Julian MD (2007) Hydrogel-encapsulated microfabricated haircells mimicking fish cupula neuromast Adv. Mater 19:2903–2909 Peleshanko S, Julian MD (2007) Hydrogel-encapsulated microfabricated haircells mimicking fish cupula neuromast Adv. Mater 19:2903–2909
Zurück zum Zitat Pitcher T, Partridge B.L, Wardle C.S (1976) A blind fish can school Science 194: 963–965 Pitcher T, Partridge B.L, Wardle C.S (1976) A blind fish can school Science 194: 963–965
Zurück zum Zitat Pohlmann K, Atema J, Breithaupt T (2004) The importance of the lateral line in nocturnal predation of piscivorous catfish. J Exp Biol 207:2971–2978CrossRef Pohlmann K, Atema J, Breithaupt T (2004) The importance of the lateral line in nocturnal predation of piscivorous catfish. J Exp Biol 207:2971–2978CrossRef
Zurück zum Zitat Qualtieri A, Rizzi F, Todaro MT, Passaseo A, Cingolani R, De Vittorio M (2011) Stress-driven AlN cantilever-based flow sensor for fish lateral line system. Microelectron Eng 88:2376–2378CrossRef Qualtieri A, Rizzi F, Todaro MT, Passaseo A, Cingolani R, De Vittorio M (2011) Stress-driven AlN cantilever-based flow sensor for fish lateral line system. Microelectron Eng 88:2376–2378CrossRef
Zurück zum Zitat Schlichting H (1979a) Boundary-layer theory. Springer-Verlag, New YorkMATH Schlichting H (1979a) Boundary-layer theory. Springer-Verlag, New YorkMATH
Zurück zum Zitat Schlichting H (1979b) Boundary-layer theory. Springer-Verlag, New YorkMATH Schlichting H (1979b) Boundary-layer theory. Springer-Verlag, New YorkMATH
Zurück zum Zitat Song C, Aiyar AR, Kim SH, Allen MG (2011) Exploitation of aeroelastic effects for drift reduction, in an all-polymer air flow sensor. Sensors Actuators A 165:66–72CrossRef Song C, Aiyar AR, Kim SH, Allen MG (2011) Exploitation of aeroelastic effects for drift reduction, in an all-polymer air flow sensor. Sensors Actuators A 165:66–72CrossRef
Zurück zum Zitat Stocking JB, Eberhardt WC, Shakhsheer YA, Calhoun BH, Paulus JR, Appleby M (2010) A capacitance-based whisker-like artificial sensor for fluid motion sensing. 2010 IEEE Sensors conference pp 2224–2229 Stocking JB, Eberhardt WC, Shakhsheer YA, Calhoun BH, Paulus JR, Appleby M (2010) A capacitance-based whisker-like artificial sensor for fluid motion sensing. 2010 IEEE Sensors conference pp 2224–2229
Zurück zum Zitat Stokes GG (1851) On the effect if the internal friction of fluids on the motion of pendulums Trans. Camb. Phil. Soc. 9:8–106 Stokes GG (1851) On the effect if the internal friction of fluids on the motion of pendulums Trans. Camb. Phil. Soc. 9:8–106
Zurück zum Zitat Tao J, Yu X, Berilla J (2011a) Micropillar sensing element for bio-Inspired flow sensors 8th Int. Workshop on Structural Health Monitoring (Standford, CA) ed F Chang, pp 1732–9 Tao J, Yu X, Berilla J (2011a) Micropillar sensing element for bio-Inspired flow sensors 8th Int. Workshop on Structural Health Monitoring (Standford, CA) ed F Chang, pp 1732–9
Zurück zum Zitat Tao J, Yu X, Berilla J (2011b) Bio-inspired flow and acoustic sensor Proc. SPIE 8019:80190R–80210R Tao J, Yu X, Berilla J (2011b) Bio-inspired flow and acoustic sensor Proc. SPIE 8019:80190R–80210R
Zurück zum Zitat Van Baar JJ, Dijkstra M, Wiegerink RJ, Lammerink TSJ, Krijnen GJM, Humphrey JAC (2003) Fabrication of arrays of artificial hairs for complex flow pattern recognition. IEEE Sens Conf 1:332–336 Van Baar JJ, Dijkstra M, Wiegerink RJ, Lammerink TSJ, Krijnen GJM, Humphrey JAC (2003) Fabrication of arrays of artificial hairs for complex flow pattern recognition. IEEE Sens Conf 1:332–336
Zurück zum Zitat van Netten SM (1991) Hydrodynamics of the excitation of the cupula in the fish canal lateral line. J Acoust Soc Am 89:310–319CrossRef van Netten SM (1991) Hydrodynamics of the excitation of the cupula in the fish canal lateral line. J Acoust Soc Am 89:310–319CrossRef
Zurück zum Zitat Van Netten SM (2006) Hydrodynamic detection by cupulae in a lateral line canal: functional relations between physics and physiology. Biol Cybern 94:67–85CrossRefMATH Van Netten SM (2006) Hydrodynamic detection by cupulae in a lateral line canal: functional relations between physics and physiology. Biol Cybern 94:67–85CrossRefMATH
Zurück zum Zitat van Netten SM, McHenry MJ (2013) The biophysics of the fish lateral line. In: Coombs S (ed) The Lateral line. Springer, New York, pp 99–119CrossRef van Netten SM, McHenry MJ (2013) The biophysics of the fish lateral line. In: Coombs S (ed) The Lateral line. Springer, New York, pp 99–119CrossRef
Zurück zum Zitat Van Trump WJ, McHenry MJ (2008) The morphology and mechanical sensitivity of lateral line receptors in zebrafish larvae (Danio rerio). J Exp Biol 211(13):2105–2115CrossRef Van Trump WJ, McHenry MJ (2008) The morphology and mechanical sensitivity of lateral line receptors in zebrafish larvae (Danio rerio). J Exp Biol 211(13):2105–2115CrossRef
Zurück zum Zitat Wang YH, Lee CY, Chiang CM (2007) A MEMS-based air flow sensor with a free-standing micro-cantilever structure. Sensors 7:2389–2401CrossRef Wang YH, Lee CY, Chiang CM (2007) A MEMS-based air flow sensor with a free-standing micro-cantilever structure. Sensors 7:2389–2401CrossRef
Zurück zum Zitat Windsor SP, McHenry MJ (2009) The influence of viscous hydrodynamics on the fish lateral-line system Int. Comp Biol 49:691–701CrossRef Windsor SP, McHenry MJ (2009) The influence of viscous hydrodynamics on the fish lateral-line system Int. Comp Biol 49:691–701CrossRef
Zurück zum Zitat Xue CY, Chen S, Zhang WD, Zhang BZ, Zhang GJ, Qiao H (2007) Design, fabrication, and preliminary characterization of a novel MEMS bionic vector hydrophone. Microelectron J 38:1021–1026CrossRef Xue CY, Chen S, Zhang WD, Zhang BZ, Zhang GJ, Qiao H (2007) Design, fabrication, and preliminary characterization of a novel MEMS bionic vector hydrophone. Microelectron J 38:1021–1026CrossRef
Zurück zum Zitat Xu Y, Kamran M (2014) Bioinspired hydrodynamic force feedforward for autonomous underwater vehicle control. IEEE/ASME Trans Mechatron 19(4):1127–1137CrossRef Xu Y, Kamran M (2014) Bioinspired hydrodynamic force feedforward for autonomous underwater vehicle control. IEEE/ASME Trans Mechatron 19(4):1127–1137CrossRef
Zurück zum Zitat Yang Y, Chen N, Tucker C, Engel JM, Pandya S, Liu C (2007) From artificial hair cell sensor to artificial lateral line system: development and application. In: Proc IEEE 20th International Conference on Micro Electro Mechanical Systems, MEMS (2007), Kobe, Japan, pp 577–580 Yang Y, Chen N, Tucker C, Engel JM, Pandya S, Liu C (2007) From artificial hair cell sensor to artificial lateral line system: development and application. In: Proc IEEE 20th International Conference on Micro Electro Mechanical Systems, MEMS (2007), Kobe, Japan, pp 577–580
Zurück zum Zitat Yang YN, Klein A, Bleckmann H, Liu C (2011a) Artificial lateral line canal for hydrodynamic detection. Appl Phys Lett 99:023701CrossRef Yang YN, Klein A, Bleckmann H, Liu C (2011a) Artificial lateral line canal for hydrodynamic detection. Appl Phys Lett 99:023701CrossRef
Zurück zum Zitat Yang YC, Klein A, Bleckmann H, Liu C (2011b) Artificial lateral line canal for hydrodynamic detection. Appl Phys Lett 99:023701CrossRef Yang YC, Klein A, Bleckmann H, Liu C (2011b) Artificial lateral line canal for hydrodynamic detection. Appl Phys Lett 99:023701CrossRef
Zurück zum Zitat Yu X, Tao J, Berilla J (2010) A bio-inspired flow sensor, Proc. SPIE 7646, Nanosensors, Biosensors, and Info-Tech Sensors and Systems 2010, 764618 (30 Mar 2010); doi:10.1117/12.849230 Yu X, Tao J, Berilla J (2010) A bio-inspired flow sensor, Proc. SPIE 7646, Nanosensors, Biosensors, and Info-Tech Sensors and Systems 2010, 764618 (30 Mar 2010); doi:10.​1117/​12.​849230
Zurück zum Zitat Zhang BZ, Qiao H, Chen S, Liu J, Zhang WD, Xiong JJ, Xue CY, Zhang GJ (2008) Modeling and characterization of a micromachined artificial hair cell vector hydrophone. Microsyst Technol 14:821–828CrossRef Zhang BZ, Qiao H, Chen S, Liu J, Zhang WD, Xiong JJ, Xue CY, Zhang GJ (2008) Modeling and characterization of a micromachined artificial hair cell vector hydrophone. Microsyst Technol 14:821–828CrossRef
Metadaten
Titel
Underwater artificial lateral line flow sensors
verfasst von
Tan Shizhe
Publikationsdatum
01.12.2014
Verlag
Springer Berlin Heidelberg
Erschienen in
Microsystem Technologies / Ausgabe 12/2014
Print ISSN: 0946-7076
Elektronische ISSN: 1432-1858
DOI
https://doi.org/10.1007/s00542-014-2350-1

Weitere Artikel der Ausgabe 12/2014

Microsystem Technologies 12/2014 Zur Ausgabe

Neuer Inhalt