Experimental Investigation Of Heat Transfer Enhancement In Industrial Waste Heat Recovery Units
Keywords:
Waste Heat Recovery; Thermal Effectiveness; Exergy Analysis; Heat Exchanger Optimization; Organic Rankine Cycle; Industrial Energy Efficiency; Payback PeriodAbstract
Industrial processes reject a substantial fraction of consumed energy as low- and medium-grade waste heat, and
recovering this thermal resource is central to improving plant-level energy efficiency and reducing greenhouse
gas intensity. This empirical study analyzes performance data collected from a set of industrial waste heat
recovery (WHR) installations comprising shell-and-tube heat exchangers, plate heat exchangers, heat-pipe
recuperators, organic Rankine cycle (ORC) units, thermoelectric generators (TEGs), and absorption chillers, in
order to quantify how design and operating variables govern thermal effectiveness, recovered energy, exergy
efficiency, pressure-driven pumping losses, and financial payback. Field and test-rig measurements across
varying mass flow rates, inlet temperatures, and fluid velocities were tabulated and statistically analyzed, and the
resulting relationships were benchmarked against previously published findings [1]. The results show that
thermal effectiveness declines predictably with increasing flow rate due to reduced residence time, recovered heat
scales near-linearly with inlet temperature difference, and optimized heat-exchanger geometries raise exergy
efficiency by six to nine percentage points relative to baseline designs. Pumping power was found to increase
disproportionately with fluid velocity beyond 2.5 m/s, identifying a practical optimum operating window, while
the economic analysis indicated payback periods between 4.4 and 5.2 years for representative retrofit scenarios.
These findings directly support the study's central premise that systematic thermal optimization of WHR systems
yields measurable, reproducible gains in both energy recovery and economic return, and they extend the empirical
basis reported in earlier waste-heat-recovery literature [2]. The conclusions offer quantitative guidance for
engineers selecting and tuning WHR technologies for specific industrial waste-stream conditions, and they
reinforce the paper's overarching contribution: a data-grounded optimization framework that bridges thermal
engineering theory and practical industrial decision-making for sustainable energy recovery [3].










