Fluid mechanics for petroleum engineers
著者
書誌事項
Fluid mechanics for petroleum engineers
(Developments in petroleum science, 32)
Elsevier, c1993 , Akadémiai Kiadó, c1993
- タイトル別名
-
Áramlástan bánymérnököknek
- 統一タイトル
-
Áramlástan bánymérnököknek
大学図書館所蔵 全5件
  青森
  岩手
  宮城
  秋田
  山形
  福島
  茨城
  栃木
  群馬
  埼玉
  千葉
  東京
  神奈川
  新潟
  富山
  石川
  福井
  山梨
  長野
  岐阜
  静岡
  愛知
  三重
  滋賀
  京都
  大阪
  兵庫
  奈良
  和歌山
  鳥取
  島根
  岡山
  広島
  山口
  徳島
  香川
  愛媛
  高知
  福岡
  佐賀
  長崎
  熊本
  大分
  宮崎
  鹿児島
  沖縄
  韓国
  中国
  タイ
  イギリス
  ドイツ
  スイス
  フランス
  ベルギー
  オランダ
  スウェーデン
  ノルウェー
  アメリカ
注記
Enl. & rev. ed. of: Áramlástan bányamérnököknek
Includes bibliographical references (p. [389]-396) and index
内容説明・目次
内容説明
Written primarily to provide petroleum engineers with a systematic analytical approach to the solution of fluid flow problems, this book will nevertheless be of interest to geologists, hydrologists, mining-, mechanical-, or civil engineers. It provides the knowledge necessary for petroleum engineers to develop design methods for drilling, production, transport of oil and gas. Basic mechanical laws are applied for perfect fluid flow, Newtonian fluid, non-Newtonian fluid, and multiple phase flows. Elements of gas dynamics, a non-familiar treatment of shock waves, boundary layer theory, and two-phase flow are also included.
目次
1. Flow Properties of Fluids. The fluid state. The continuum models of fluids. Variables of state. Conductivity coefficients. 2. Kinematics. Eulerian and Lagrangian description of fluid motion. The velocity field. The acceleration field. Motion of an infinitesimal fluid particle. Rotational motion, vorticity field. Relationships between the acceleration- and the vorticity field. The transport theorem: the material derivative of a volume integral over a volume of flowing fluid. 3. Balance Equations. The principle of conservation of mass. The balance of momentum. The balance of angular momentum. The balance of kinetic energy. The principle of conservation of energy. The balance of entropy. Mechanical equilibrium of fluids. 4. Perfect Fluid Flow. The perfect fluid. Euler's equation. The Bernoulli equation. Simple applications of the Bernoulli equation. The Cauchy-Lagrange integral of Euler's equation. Kelvin's vortex theorem. The law of conservation of energy for perfect fluid flow. The Vazsonyi-Crocco equation. Small perturbations at the speed of sound. Dynamical similarity of ideal gas flows. Critical flow variables. Variation in area for isentropic flow. High velocity gas flow in pipes with friction. 5. Shock Waves in Compressible Flow. Shock surfaces. Kinematics of motion of singular surfaces: the speed of displacement. Weak singular surfaces in compressible flow. Discontinuous balance equations at a shock surface. Balance equations at a shock surface. Changes in the variables of state across a shock surface. Speed of propagation of shock surfaces. The jump in the variables of state as a function of the Mach number. Shock surfaces in steady supersonic planar flow. 6. Laminar Flow. The flow of viscous fluids. The Navier-Stokes equation. The balance of kinetic energy for laminar flow. The balance of internal energy for laminar flow. Dynamical similarity. Some general properties of incompressible viscous flow. Steady incompressible flow in a cylindrical pipe. Steady incompressible laminar flow in annuli. Elementary boundary-layer theory. Resistance of a solid sphere in laminar flow. Free convection. 7. Turbulent Flow. The nature of turbulent motion. Reynold's equation: the balance of momentum for turbulent flow. The balance of kinetic energy for turbulent flow. Determination of the apparent turbulent shear stress according to the mixing length theory. Turbulent flow through pipes. Turbulent boundary-layer flow. Turbulent flow in annuli. 8. One-Dimensional Pipe Flow. One-dimensional approximation for flow in pipes. Basic equations for one-dimensional flow in pipes. Criteria for laminar, transitional and turbulent flow. Head loss in straight cylindrical pipes. Head losses resulting from fittings. Pressure loss of a low velocity gas flow. Flow in pipes with mechanical energy addition. Flow in pipes with heat exchange. Pressure waves in one-dimensional pipe flow. 9. Non-Newtonian Fluid Flow. Specific types of flow behavior. Laminar flow of pseudoplastic fluids in pipes. Bingham fluid flow in pipes. Unsteady viscoelastic fluid flow in a cylindrical pipe. The Rabinowitsch equation. Laminar flow of thixotropic fluids in pipes. Pseudoplastic fluid flow in annuli. Turbulent flow of non-Newtonian fluids in pipes. 10. Flow of Multiphase Mixtures. Properties of multiphase mixtures. The continuity equation for multiphase mixtures. The momentum equation for multiphase mixtures. The mechanical energy equation for multiphase flow. Characteristic flow patterns. Holdup relations for two-phase flow. Determination of pressure losses for two-phase flow in pipes. References. Subject index.
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