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Safety Valve Efficiency

Safety Valve Efficiency
Author: Alfred B. Carhart
Publisher:
Total Pages: 32
Release: 1909
Genre:
ISBN:

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Safety Valve Stability and Capacity Test Results

Safety Valve Stability and Capacity Test Results
Author: Design Institute for Emergency Relief
Publisher: Amer Inst of Chemical Engineers
Total Pages: 77
Release: 1987-01-01
Genre: Chemical plants
ISBN: 9780816903894

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The Safety Relief Valve Handbook

The Safety Relief Valve Handbook
Author: Marc Hellemans
Publisher: Elsevier
Total Pages: 326
Release: 2009-08-31
Genre: Technology & Engineering
ISBN: 9780080961187

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The Safety Valve Handbook is a professional reference for design, process, instrumentation, plant and maintenance engineers who work with fluid flow and transportation systems in the process industries, which covers the chemical, oil and gas, water, paper and pulp, food and bio products and energy sectors. It meets the need of engineers who have responsibilities for specifying, installing, inspecting or maintaining safety valves and flow control systems. It will also be an important reference for process safety and loss prevention engineers, environmental engineers, and plant and process designers who need to understand the operation of safety valves in a wider equipment or plant design context. No other publication is dedicated to safety valves or to the extensive codes and standards that govern their installation and use. A single source means users save time in searching for specific information about safety valves The Safety Valve Handbook contains all of the vital technical and standards information relating to safety valves used in the process industry for positive pressure applications. Explains technical issues of safety valve operation in detail, including identification of benefits and pitfalls of current valve technologies Enables informed and creative decision making in the selection and use of safety valves The Handbook is unique in addressing both US and European codes: - covers all devices subject to the ASME VIII and European PED (pressure equipment directive) codes; - covers the safety valve recommendations of the API (American Petroleum Institute); - covers the safety valve recommendations of the European Normalisation Committees; - covers the latest NACE and ATEX codes; - enables readers to interpret and understand codes in practice Extensive and detailed illustrations and graphics provide clear guidance and explanation of technical material, in order to help users of a wide range of experience and background (as those in this field tend to have) to understand these devices and their applications Covers calculating valves for two-phase flow according to the new Omega 9 method and highlights the safety difference between this and the traditional method Covers selection and new testing method for cryogenic applications (LNG) for which there are currently no codes available and which is a booming industry worldwide Provides full explanation of the principles of different valve types available on the market, providing a selection guide for safety of the process and economic cost Extensive glossary and terminology to aid readers’ ability to understand documentation, literature, maintenance and operating manuals Accompanying website provides an online valve selection and codes guide.


Safety-valves

Safety-valves
Author: William Barnet Le Van
Publisher:
Total Pages: 178
Release: 1892
Genre: Faucets
ISBN:

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Proceedings of the 2nd International Conference on Developments in Valves and Actuators for Fluid Control

Proceedings of the 2nd International Conference on Developments in Valves and Actuators for Fluid Control
Author: Peter Wood
Publisher: Springer Science & Business Media
Total Pages: 363
Release: 2013-06-29
Genre: Technology & Engineering
ISBN: 3662114631

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The flow of two-phase mixtures through restrictions. is a complex phenomenon that to date has not been fully described analytically. It is an area that received a geat deal of attention because of its application to nuclear reactor technology. The majority of the work done in this area considered ideal geometries such as nozzles, orifices and straight pipes. In the area of control valves very little work has been done. Brockett & King [1] studied subcooled water. Stiles [2] looked at subcooled freon. Martinec [4] compared subcooled freon in valves with ideal geometries. Sheldon & Schuder [3) looked experimentally at airjwater mixtures through valves that resulted in a sizing procedure. Fagerlund [10] presented an analytical model that required use of the Sheldon & Schuder data to establish the behavior of valves as opposed to more ideal geometries. However, the data used was limited to a single valve travel. Fagerlund & Storer [11] have expanded this to include several valve travels that further generalizes the technique. It is the intent of this paper to summarize a practical approach to s1z1ng valves for two-phase service that may be reduced to either a graphical or calculator procedure. Discussion of Analysis A fundamental assumption in this method is that the quality remains constant between the inlet and the vena contracta. For gas-liquid flows it is obvious providing vaporization does not occur.


Pressure Relief Devices

Pressure Relief Devices
Author: Mohammad A. Malek
Publisher: McGraw Hill Professional
Total Pages: 494
Release: 2005-10-27
Genre: Technology & Engineering
ISBN: 0071589066

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Within the boiler, piping and pressure vessel industry, pressure relief devices are considered one of the most important safety components. These Devices are literally the last line of defense against catastrophic failure or even lose of life. Written in plain language, this fifth book in the ASME Simplified series addresses the various codes and recommended standards of practice for the maintenance and continued operations of pressure relief valves as specified by the American Society of Mechanical Engineers and the American Petroleum Institute. Covered in this book are: preventive maintenance procedures, methods for evaluation of mechanical components and accepted methods for cleaning, adjusting and lubricating various components to assure continued operation and speed performance as well as procedures for recording and evaluating these items.