Language:
English
繁體中文
Help
回圖書館首頁
手機版館藏查詢
Login
Back
Switch To:
Labeled
|
MARC Mode
|
ISBD
Molecular dynamics simulations and m...
~
Georgia Institute of Technology.
Linked to FindBook
Google Book
Amazon
博客來
Molecular dynamics simulations and microscopic hydrodynamics of nanoscale liquid structures.
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Molecular dynamics simulations and microscopic hydrodynamics of nanoscale liquid structures./
Author:
Kang, Wei.
Description:
152 p.
Notes:
Adviser: Uzi Landman.
Contained By:
Dissertation Abstracts International69-04B.
Subject:
Physics, Fluid and Plasma. -
Online resource:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3308775
ISBN:
9780549559849
Molecular dynamics simulations and microscopic hydrodynamics of nanoscale liquid structures.
Kang, Wei.
Molecular dynamics simulations and microscopic hydrodynamics of nanoscale liquid structures.
- 152 p.
Adviser: Uzi Landman.
Thesis (Ph.D.)--Georgia Institute of Technology, 2008.
The dynamics of liquid structures is of fundamental interest in both theoretical investigations and industrial applications. Self-similarity, scaling, and pattern formation phenomena taking place in a variety of liquid structures have attracted attention for a long time. Many applications, such as ink-jet printing, spraying and fuel injection are based to the dynamics of liquid structures. The size of liquid structures in present-day applications is rapidly decreasing, even to the scale where macroscopic hydrodynamical equations may break down so that understanding the hydrodynamics in the microscale is becoming an increasingly important subject.
ISBN: 9780549559849Subjects--Topical Terms:
1018402
Physics, Fluid and Plasma.
Molecular dynamics simulations and microscopic hydrodynamics of nanoscale liquid structures.
LDR
:02917nam 2200289 a 45
001
858636
005
20100713
008
100713s2008 ||||||||||||||||| ||eng d
020
$a
9780549559849
035
$a
(UMI)AAI3308775
035
$a
AAI3308775
040
$a
UMI
$c
UMI
100
1
$a
Kang, Wei.
$3
1025747
245
1 0
$a
Molecular dynamics simulations and microscopic hydrodynamics of nanoscale liquid structures.
300
$a
152 p.
500
$a
Adviser: Uzi Landman.
500
$a
Source: Dissertation Abstracts International, Volume: 69-04, Section: B, page: 2384.
502
$a
Thesis (Ph.D.)--Georgia Institute of Technology, 2008.
520
$a
The dynamics of liquid structures is of fundamental interest in both theoretical investigations and industrial applications. Self-similarity, scaling, and pattern formation phenomena taking place in a variety of liquid structures have attracted attention for a long time. Many applications, such as ink-jet printing, spraying and fuel injection are based to the dynamics of liquid structures. The size of liquid structures in present-day applications is rapidly decreasing, even to the scale where macroscopic hydrodynamical equations may break down so that understanding the hydrodynamics in the microscale is becoming an increasingly important subject.
520
$a
In this thesis, issues pertaining to the dynamics of nanoscale liquid systems, such as nanojets and nanobridges, in vacuum as well as in ambient gaseous conditions, are explored using both extensive molecular dynamics simulations and theoretical analyses. The simulation results serve as "theoretical experimental data" (together with laboratory experiments when available) for the formulation, implementation, and testing of modified hydrodynamic formulations, including stochastic hydrodynamics. These investigations aim at extending hydrodynamic formulations to the nanoscale regime. In particular, the instability, and breakup of liquid nanobridges and nanojets are addressed in details. As an application of the microscopic hydrodynamics, a heated-nozzle technique to generate and control nanojets is proposed. Both simulations and microscopic hydrodynamic modeling reveal the formation of a "virtual convergent nozzle", which consists of a narrowing convergent liquid core within a growing evaporative sheath, by the nanojet itself inside the real nozzle. The diameter of the resulting ejected nanojet is much smaller than the diameter of the nozzle. By adjusting the temperature distribution of the real nozzle, the size and shape of the virtual nozzle are changed, which in turn changes the diameter and the direction of the ejected nanojet.
590
$a
School code: 0078.
650
4
$a
Physics, Fluid and Plasma.
$3
1018402
650
4
$a
Physics, Theory.
$3
1019422
690
$a
0753
690
$a
0759
710
2
$a
Georgia Institute of Technology.
$3
696730
773
0
$t
Dissertation Abstracts International
$g
69-04B.
790
$a
0078
790
1 0
$a
Landman, Uzi,
$e
advisor
791
$a
Ph.D.
792
$a
2008
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3308775
based on 0 review(s)
Location:
ALL
電子資源
Year:
Volume Number:
Items
1 records • Pages 1 •
1
Inventory Number
Location Name
Item Class
Material type
Call number
Usage Class
Loan Status
No. of reservations
Opac note
Attachments
W9073411
電子資源
11.線上閱覽_V
電子書
EB W9073411
一般使用(Normal)
On shelf
0
1 records • Pages 1 •
1
Multimedia
Reviews
Add a review
and share your thoughts with other readers
Export
pickup library
Processing
...
Change password
Login