Novel Tube Design for Superheater Heat Exchanger Enabled Via Additive Manufacturing

Author:

Singh Vanshika12,Babu S. S.34,Kirka M. M.5,Kulkarni Anand6

Affiliation:

1. Bredesen Center for Interdisciplinary Research and Graduate Education, The University of Tennessee , Knoxville, TN 37932 ; , 2350 Cherahala Boulevard, Knoxville, TN 37932

2. Manufacturing Demonstration Facility, Oak Ridge National Laboratory , Knoxville, TN 37932 ; , 2350 Cherahala Boulevard, Knoxville, TN 37932

3. Oak Ridge National Laboratory , Oak Ridge, TN 37830 ; , Knoxville, TN 37932

4. Bredesen Center for Interdisciplinary Research and Graduate Education, The University of Tennessee , Oak Ridge, TN 37830 ; , Knoxville, TN 37932

5. Oak Ridge National Laboratory , Oak Ridge, TN 37830

6. Siemens Corporation , Charlotte, NC 28227

Abstract

Abstract Superheater tubes are critical boiler components that operate at relatively higher temperatures and pressure. Amongst the primary concerns for these tubes is the deposition of ash particles on the tube surface, leading to the reduced thickness of the tube due to material corrosion, consequently causing early creep failure of the component. In this research, a novel tube design has been proposed which resembles a teardrop or ogive shape to reduce the drag and concurrently improve the creep life of the superheater tubes. To administer the practicality of novel tubes, metal additive manufacturing (AM), for instance, laser-powder bed fusion (L-PBF), has been proposed. These unconventional designs were assessed and compared with the baseline circular tube design for mechanical design requirements (hoop stress and creep life) and the particle and flue gas flow characteristics around the differently shaped tubes. A thermomechanical finite element (FE) analysis was performed for hoop stress calculations. This study also emphasizes on effect of circumferential thermal variation on hoop stress distribution in tubes. Therefore, a detailed two-dimensional (2D) thermal simulation has been performed to report the circumferential thermal variation on the tube. A computational fluid dynamics (CFD) analysis coupled with particle tracing was performed for gas flow visualization and particle tracing around the proposed shapes and baseline circular-shaped tube design. The Schlieren optic setup was built and leveraged for qualitative validation of the proposed design. The complete design methodology established in the paper shows teardrop-shaped tubes better in terms of drag and creep life in contrast to the circular-shaped tube.

Funder

Office of Fossil Energy

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

Reference47 articles.

1. Annual Energy Outlook 2021,2021

2. Asgaryan, M., 2013, “ Prediction of the Remaining Service Life of Superheater and Reheater Tubes in Coal-Biomass Fired Power Plants,” Ph.D. thesis, Cranfield University, Cranfield, UK.

3. Yang, X., 2016, “ Development of Ash Deposition Prediction Models Through the CFD Methods and the Ash Deposition Indice,” Ph.D. thesis, University of Sheffield, Sheffield, UK.

4. Utilizing Biomass and Waste for Power production—A Decade of Contributing to the Understanding, Interpretation and Analysis of Deposits and Corrosion Products;Fuel,2005

5. Assessment of Coating Performance on Waterwalls and Superheaters in a Pulverised Fuel-Fired Power Station;Oxid. Met.,2017

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