complex sample survey module 13.0 windows xp Search Results


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ANSYS inc workbench 13.0
Finite element simulation result of the pressure profile of the immobilization channel
with one worm loaded and another worm at the channel inlet. The simulation was performed
in ANSYS 13.0 (Canonsburg, USA). The pressure drop along the worm trapped at the inlet of
the immobilization channel is too small to push the animal into the immobilization
channel. The 3D model of the immobilization channel and worm and the associated mesh were
developed by the ANSYS Workbench 13.0. The worm body was represented by a cylinder with
cone-shaped head and tail. Incompressible steady-state Navier-Stokes equations and no-slip
boundary conditions were used in the simulation. The pressure difference between the inlet
and outlet of the channel was set to be 30 kPa.
Workbench 13.0, supplied by ANSYS inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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ANSYS inc ansys cfx 13.0
Finite element simulation result of the pressure profile of the immobilization channel
with one worm loaded and another worm at the channel inlet. The simulation was performed
in ANSYS 13.0 (Canonsburg, USA). The pressure drop along the worm trapped at the inlet of
the immobilization channel is too small to push the animal into the immobilization
channel. The 3D model of the immobilization channel and worm and the associated mesh were
developed by the ANSYS Workbench 13.0. The worm body was represented by a cylinder with
cone-shaped head and tail. Incompressible steady-state Navier-Stokes equations and no-slip
boundary conditions were used in the simulation. The pressure difference between the inlet
and outlet of the channel was set to be 30 kPa.
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LEAD Technologies spss
Finite element simulation result of the pressure profile of the immobilization channel
with one worm loaded and another worm at the channel inlet. The simulation was performed
in ANSYS 13.0 (Canonsburg, USA). The pressure drop along the worm trapped at the inlet of
the immobilization channel is too small to push the animal into the immobilization
channel. The 3D model of the immobilization channel and worm and the associated mesh were
developed by the ANSYS Workbench 13.0. The worm body was represented by a cylinder with
cone-shaped head and tail. Incompressible steady-state Navier-Stokes equations and no-slip
boundary conditions were used in the simulation. The pressure difference between the inlet
and outlet of the channel was set to be 30 kPa.
Spss, supplied by LEAD Technologies, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Philips Healthcare qlab 13 0
Finite element simulation result of the pressure profile of the immobilization channel
with one worm loaded and another worm at the channel inlet. The simulation was performed
in ANSYS 13.0 (Canonsburg, USA). The pressure drop along the worm trapped at the inlet of
the immobilization channel is too small to push the animal into the immobilization
channel. The 3D model of the immobilization channel and worm and the associated mesh were
developed by the ANSYS Workbench 13.0. The worm body was represented by a cylinder with
cone-shaped head and tail. Incompressible steady-state Navier-Stokes equations and no-slip
boundary conditions were used in the simulation. The pressure difference between the inlet
and outlet of the channel was set to be 30 kPa.
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LEAD Technologies spss 13.0
Finite element simulation result of the pressure profile of the immobilization channel
with one worm loaded and another worm at the channel inlet. The simulation was performed
in ANSYS 13.0 (Canonsburg, USA). The pressure drop along the worm trapped at the inlet of
the immobilization channel is too small to push the animal into the immobilization
channel. The 3D model of the immobilization channel and worm and the associated mesh were
developed by the ANSYS Workbench 13.0. The worm body was represented by a cylinder with
cone-shaped head and tail. Incompressible steady-state Navier-Stokes equations and no-slip
boundary conditions were used in the simulation. The pressure difference between the inlet
and outlet of the channel was set to be 30 kPa.
Spss 13.0, supplied by LEAD Technologies, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/complex+sample+survey+module+13%2E0+windows+xp/10__1007_slash_s00227___008___1062___4-154-14-16?v=LEAD+Technologies
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Finite element simulation result of the pressure profile of the immobilization channel
with one worm loaded and another worm at the channel inlet. The simulation was performed
in ANSYS 13.0 (Canonsburg, USA). The pressure drop along the worm trapped at the inlet of
the immobilization channel is too small to push the animal into the immobilization
channel. The 3D model of the immobilization channel and worm and the associated mesh were
developed by the ANSYS Workbench 13.0. The worm body was represented by a cylinder with
cone-shaped head and tail. Incompressible steady-state Navier-Stokes equations and no-slip
boundary conditions were used in the simulation. The pressure difference between the inlet
and outlet of the channel was set to be 30 kPa.

Journal: Biomicrofluidics

Article Title: A microfluidic device for automated, high-speed microinjection of Caenorhabditis elegans

doi: 10.1063/1.4941984

Figure Lengend Snippet: Finite element simulation result of the pressure profile of the immobilization channel with one worm loaded and another worm at the channel inlet. The simulation was performed in ANSYS 13.0 (Canonsburg, USA). The pressure drop along the worm trapped at the inlet of the immobilization channel is too small to push the animal into the immobilization channel. The 3D model of the immobilization channel and worm and the associated mesh were developed by the ANSYS Workbench 13.0. The worm body was represented by a cylinder with cone-shaped head and tail. Incompressible steady-state Navier-Stokes equations and no-slip boundary conditions were used in the simulation. The pressure difference between the inlet and outlet of the channel was set to be 30 kPa.

Article Snippet: The 3D model of the immobilization channel and worm and the associated mesh were developed by the ANSYS Workbench 13.0.

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