Abstract
Pit thermal energy storage (PTES) is an efficient renewable energy
storage technology widely used in large-scale solar district heating
systems. Accurate modeling of mixing in a PTES due to inlet flow is key
in calculating heat storage performance. However, the commonly used
one-dimensional PTES models fail to consider inlet mixing due to the
three-dimensional nature of the mixing flow. This research adopts a
three-dimensional model to analyze the dynamic behavior of inlet mixing
inside the PTES. The model is validated against measurements of the
Dronninglund PTES. To quantify the inlet mixing impact, two performance
indicators (i.e., the penetration height (Z) and the energy distribution ratio (nj)) are proposed. The parametric analysis revealed that is more dependent on the Reynold (Re) number than the Froude (Fr) number, while both the Re and Fr numbers influence nj. According to the dimensional theory, the penetration height shows a power-law relation with time. For the energy distribution ratio ,
a power-law relation with time is seen, although an asymptotic formula
is needed in the region of a negative buoyancy jet. Finally, the inflow
mixing inside the PTES is characterized under various operating
conditions by empirical correlations. The results of this study could be
used to improve the current one-dimensional heat storage models in
terms of inlet mixing.
| Original language | English |
|---|---|
| Article number | 119170 |
| Journal | Renewable Energy |
| Volume | 217 |
| Number of pages | 18 |
| ISSN | 0960-1481 |
| DOIs | |
| Publication status | Published - 2023 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
-
SDG 7 Affordable and Clean Energy
Keywords
- Energy distribution ratio
- Inflow mixing
- Penetration height
- Solar district heating
- Three-dimensional model
- Water pit heat storage
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