Transient thermal analysis of the thermal management of high
Ming et al. (2022) illustrates the thermal management performance of the charging pile using the fin and ultra-thin heat pipes, and the hybrid heat dissipation system
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Ming et al. (2022) illustrates the thermal management performance of the charging pile using the fin and ultra-thin heat pipes, and the hybrid heat dissipation system
Thermal conductivity plays a vital role in regulating the thermal charging and discharging rate of PCMs and improving the heat-utilization efficiency. The strategies for
Results revealed that implementing the PCM containers increased the energy storage from 16.4 to 48.2 kJ/kg (in the case of PCM 2), while the temperature distribution was
In addition, the effects of the pile-pile thermal interference on reducing the rate of solar energy storage after a one-year operation were quantified to be within 10 W/m for groups
The thermal performance of energy piles equipped with new metal fins to improve heat transmission is examined in this research. The solid heat transfer module of
The stainless-steel material can act as a heat transfer medium to enhance the thermal conductivity of the pile body and allow rapid heat exchange with the PCM. Table 1.
The urgent need to tackle climate change has spiked significant interest in renewable energy, such as solar and wind. However, these renewable energies are
A transient heat transfer phenomenon during charging and discharging of the shell-and-tube latent thermal energy storage system has been analysed in this paper.
The horizontal shell-tube LTES device has been a key link in the utilization of solar energy and successfully applied in solar thermal plants , solar central heating systems
thermal process goes in an energy pile, as in a borehole heat exchanger, in different stages: heat transfer through the ground, conduction through pile concrete and heat exchanger pipes, and
Yan, J.-B., et al.:Experimental Study on Heat Transfer Enhancement of 594 THERMAL SCIENCE: Year 2023, Vol. 27, No. 1B, pp. 591-597 strength, its toughening-crack resistance
energy pile heat exchanger function will be discussed in terms of the thermal conductivity of soils, as this has a significant effect on the heat exchange capacity of the energy pile. Potential
technique, latent heat thermal energy storage has raised more and more attentions for solar energy utilization. Thermal energy is stored or released during charging or discharging
Lithium-ion batteries (LiBs) are the leading choice for powering electric vehicles due to their advantageous characteristics, including low self-discharge rates and high energy
In order to reduce the operation temperature of the charging pile, this paper proposed a fin and ultra-thin heat pipes (UTHPs) hybrid heat dissipation system for the direct
The high thermal conductivity energy pile can transfer heat to the soil around it better by its excellent heat transfer capacity, which leads to the temperature of the soil around
The traditional charging pile management system usually only focuses on the basic charging function, which has problems such as single system function, poor user experience, and inconvenient management. In this
The evaluation and optimal design of energy piles is an emerging research direction in recent years. Huang et al. [] proposed a new type of independent drawable double
Even though each thermal energy source has its specific context, TES is a critical function that enables energy conservation across all main thermal energy sources
The energy storage pile foundation adopts high strength fiber-reinforced concrete, which has an approximate thermal conductivity of 2 W/m·°C and specific heat of 940 J/kg·°C
Our results suggest that (1) incorporating MicroPCM into C50 concrete specimens (up to 5 wt.%), will dramatically reduce the compressive strength of C50 concrete;
The primary focus of the present review will be on the thermal conductivity enhancement that is realized through introduction of fixed, non-moving high-conductivity
Fatty alcohols have been identified as promising organic phase change materials (PCMs) for thermal energy storage, because of their suitable temperature range, nontoxicity
Increasing the composite phase change material thermal conductivity from 6.05 W·m −1 ·K −1 to 8.99 This result shows that the power module of the charging pile is more
Geothermal energy pile is a remarkable alternative energy source that can provide heating and cooling energy to meet the energy demands in buildings. This study aims
Current research trends emphasize the enhancement of thermal efficiency in energy piles by modifying the concrete used in pile structures. Phase change materials
Herein, we design and develop an ammonium-ion thermal charging supercapacitor (ATSC) with high thermoelectric performance and energy storage properties.
Increasing the PCM thermal conductivity is known as a critical importance parameter for fully benefiting from convection cooling. Currently, adding higher thermal
The low heat extraction rate as to low PCM thermal conductivity and the limited thermal storage capacity are the two major flaws of PCM-based battery thermal management
Experimental study on enhancement of thermal energy storage 2.2. Preparation of composite of metal foam and PCM. Copper foam is one of the most common metal foam that has been
Thermal energy storage (TES) is a critical enabler for the large-scale deployment of renewable energy and transition to a decarbonized building stock and energy system by 2050. Advances
The escalating energy demands and the severe deficit of energy resources advocate the utilization of renewable energy [1, 2].Nevertheless, the instability and intermittent
Effective temperature control for the high-power charging modules in the fast charging pile needs a novel thermal design to resolve the more extensive Joule heat in the
Alternatively, Carotenuto et al. (2017) found that the thermal performance of energy piles increases by 42% with an increase in the thermal conductivity of concrete from
Compressed air energy storage (CAES) technology has been re-emerging as one of the promising options to address the challenge coming from the intermittency of
The results of the group test are compared to the individual pile results at a site with a soil profile consisting of sand and clay through the depth that the piles were installed.
NaCl-MgCl 2-KCl (wt% = 23:14:63) was infiltrated into the bionic SiC skeletons to obtain high-temperature composite thermal storage cells with an axial thermal conductivity of
In order to reduce the operation temperature of the charging pile, this paper proposed a fin and ultra-thin heat pipes (UTHPs) hybrid heat dissipation system for the direct-current (DC) charging pile. The L-shaped ultra-thin flattened heat pipe with ultra-high thermal conductivity was adopted to reduce the spreading thermal resistance.
Ming et al. (2022) illustrates the thermal management performance of the charging pile using the fin and ultra-thin heat pipes, and the hybrid heat dissipation system effectively increases the temperature uniformity of the charging module.
The heat power of the fast charging piles is recognized as a key factor for the efficient design of the thermal management system. At present, the typical high-power direct current EV charging pile available in the market is about 150 kW with a heat generation power from 60 W to 120 W ( Ye et al., 2021 ).
The efficiency of heat transfer in an energy pile depends on the design parameters concerning the characteristics of the pile, pipe, concrete, fluid, and ground. The configuration of heat exchanger pipes is found to be the most influential parameter.
The heat exchange capacity of the energy pile depends on the thermal resistivity of the pile and the surrounding soils. The consequently, their thermal behaviour could be different. The pile Lennon et al., 2009; Wood et al., 2010) is not in good agreement with the theoretically calculated value.
The thermal process goes in an energy pile, as in a borehole heat exchanger, in different stages: heat transfer through the ground, conduction through pile concrete and heat exchanger pipes, and convection in the fluid and at the interface with the inner surface of the pipes (Fig. 2).