SMALL-SCALE RADIAL INFLOW TURBINE FOR WHR ORC

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SMALL-SCALE RADIAL INFLOW TURBINE FOR WHR ORC ( small-scale-radial-inflow-turbine-for-whr-orc )

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CHAPTER 7: Conclusions and Recommendations for Future Work 13.19% compared to 11.94% obtained from the mean-line optimization with relative improvement of 10.46% and underlined the effectiveness of the 3-D CFD optimization approach performed in this thesis to further improve the ORC performance.  Such results were considerably higher than the reported values for other types of expanders in the literature and highlighted the potential and effectiveness of the combined mean-line and CFD optimizations approaches proposed and developed in the thesis. With the validated CFD model such tool can be used for further analysing and optimizing small-scale RITs to enhance the ORC performance. 7.3. Recommendations for future work The present study is a step toward developing efficient RITs for small-scale ORC systems. However, more research is required in the following aspects:  The developed mean-line model was capable of only designing and optimizing the RITs at their design point (new geometries are created based on each set of input parameters). However, it is suggested to extend the model so that it can also be used for the analysis of RITs where the geometry is obtained and fixed from the design code and then imported to the analysis code to assess its performance under off-design operating conditions. Such feature is particularly important as it allows the multi-point mean-line optimization of RITs for the ORC systems that are subjected to the heat source fluctuations (i.e. solar or geothermal heat) and is helpful for optimizing the cycle performance over a range of operating conditions and not only at a single design point.  It is suggested to conduct the same optimizations as in chapter five but instead of the simple ORC layout, both the recuperated ORC and supercritical ORC systems be 272 | P a g e

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