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          Radiometric Methods for Measuring and Modelling Multiphase Systems Towards Process Management

          Closed for Proposals

          Project Type

          Coordinated Research Project

          Project Code

          F22060

          CRP

          1536

          Approved Date

          2012/02/10

          Project Status

          Closed

          Start Date

          2012/07/09

          Expected End Date

          2016/07/09

          Completed Date

          2016/10/20

          Description

          Multiphase flow systems are widely used in vast industrial and environmental processes. The fluid-dynamic properties of such systems are not yet well understood and hence, it is essential to properly and accurately measure these properties. Since these multiphase flow systems are opaque, radiometric techniques offer the best means of performing such measurements. Accordingly, this proposal focuses on establishing CRP to develop and validate integrated nuclear methods for investigation of multiphase flows and extend to real systems for on-line evaluation and efficient management of industrial processes such as waste water treatment plants, food, petrol, gas and chemical industries?. It includes development of nuclear techniques for measurement of spatial and temporal distribution of each phase in industrial multiphase systems, development of integrated methodology for measurement of phase flow rates in industrial multiphase flow systems. Guidelines for integration of gamma CT, densitometry and radiotracer techniques for multiphase flow measurements will be established. These will be achieved through international interactive research activities. The CRP will contribute to larger utilization of the nuclear techniques and their integrated use and transfer the technology and know-how to the developing countries through such interactive research efforts.

          Objectives

          To develop and validate integrated nuclear methods for investigation of multiphase flows and extend to real systems for on-line evaluation and efficient management of industrial processes

          Specific Objectives

          To develop methodology to integrate the nuclear techniques for the measurement of phase flow rates in industrial multiphase flow systems

          To develop nuclear techniques for measurement of spatial and temporal distribution of different phases in industrial multiphase systems such as waste water treatment plants, food, petrol, gas and chemical industries

          To develop software such as expert systems and Monte Carlo simulation codes for the design of instruments, data treatment and exploitation

          Impact

          The CRP developed and validated integrated nuclear methods for investigation of multiphase flows for on-line evaluation and efficient management of industrial processes such as waste water treatment plants, food, petrol, gas and chemical industries . It includes development of nuclear techniques for measurement of spatial and temporal distribution of each phase in industrial multiphase systems, and integrated methodology for measurement of phase flow rates in industrial multiphase flow systems. Guidelines for integration of gamma CT, densitometry and radiotracer techniques for multiphase flow measurements have been established. The CRP has contributed to larger utilization of integrated nuclear techniques and transfer of technology and know-how to the developing countries.

          Relevance

          The relevance of the CRP relates to the gains made by industry as they employed the techniques developed in this CRP. Once industrial processes are improved and made more efficient, environmental pollution is also reduced affirming the fact that nuclear techniques are helpful in building greener and sustainable communities

          CRP Publications

          Cuba, INSTEC
          Conference, XV Workshop on Nuclear Physics and IX International Symposium on Nuclear and Related Techniques WONP-NURT'2015, , 2013, Havana, Cuba
          2013
          Synthesis and behavior of a ferragel based solid 99mTc radiotracer

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