Drop Dynamics and Dropwise Condensation on Textured Surfaces (Paperback)

Language: English

Published by Springer Nature Switzerland AG, Cham, 2021

3030484637 / 9783030484637

Series: Book 70 of 80 - Mechanical Engineering

  • Softcover
  • New
See all details

Seller: Grand Eagle Retail, Bensenville, IL, U.S.A.Grand Eagle Retail

5-star seller

AbeBooks seller since October 12, 2005

Softcover

Condition: New

£ 84.89

 Free Shipping 
Ships within U.S.A.

Quantity: 1 available

Add to basket
Free 30-day returns

Item description from seller

Paperback. This book is an expanded form of the monograph, Dropwise Condensation on Inclined Textured Surfaces, Springer, 2013, published earlier by the authors, wherein a mathematical model for dropwise condensation of pure vapor over inclined textured surfaces was presented, followed by simulations and comparison with experiments. The model factored in several details of the overall quasi-cyclic process but approximated those at the scale of individual drops. In the last five years, drop level dynamics over hydrophobic surfaces have been extensively studied. These results can now be incorporated in the dropwise condensation model.Dropwise condensation is an efficient route to heat transfer and is often encountered in major power generation applications. Drops are also formed during condensation in distillation devices that work with diverse fluids ranging from water to liquid metals. Design of such equipment requires careful understanding of the condensation cycle, starting from the birth of nuclei, followed by molecular clusters, direct growth of droplets, their coalescence, all the way to instability and fall-off of condensed drops. The model described here considers these individual steps of the condensation cycle. Additional discussions include drop shape determination under static conditions, a fundamental study of drop spreading in sessile and pendant configurations, and the details of the drop coalescence phenomena. These are subsequently incorporated in the condensation model and their consequences are examined. As the mathematical model is spread over multiple scales of length and time, a parallelization approach to simulation is presented. Special topics include three-phase contact line modeling, surface preparation techniques, fundamentals of evaporation and evaporation rates of a single liquid drop, and measurement of heat transfer coefficient during large-scale condensation of water vapor. We hope that this significantly expanded text meets the expectations of design engineers, analysts, and researchers working in areas related to phase-change phenomena and heat transfer. This book is an expanded form of the monograph, Dropwise Condensation on Inclined Textured Surfaces, Springer, 2013, published earlier by the authors, wherein a mathematical model for dropwise condensation of pure vapor over inclined textured surfaces was presented, followed by simulations and comparison with experiments. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.…

Seller Inventory # 9783030484637

Title
Drop Dynamics and Dropwise Condensation on Textured Surfaces (Paperback)
Author
Sameer Khandekar
Publisher
Springer Nature Switzerland AG, Cham
Publication year
2021
Condition
new
Binding
Paperback
Language
English
ISBN 10
3030484637
ISBN 13
9783030484637
Series
Book 70 of 80: Mechanical Engineering

Grand Eagle Retail

Bensenville, IL, U.S.A.

5-star seller

AbeBooks seller since October 12, 2005

Shipping rates within U.S.A.

Item6 to 14 business days6 to 16 business days
First item£ 0.00£ 0.00
Delivery times are set by sellers and vary by carrier and location. Orders passing through Customs may face delays and buyers are responsible for any associated duties or fees. Sellers may contact you regarding additional charges to cover any increased costs to ship your items.

Payment methods

  • Visa
  • Mastercard
  • American Express
  • Apple Pay
  • Google Pay

Seller's business information

APOLLO ONLINE CORP.

605 Geddes Street
Wilmington, DE U.S.A. 19805