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Experimental investigation of thermal stability and enthalpy of eutectic alkali metal solar salt dispersed with MGO nanoparticles

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Experimental investigation of thermal stability and enthalpy of eutectic alkali metal solar salt dispersed with MGO nanoparticles. / Aslfattahi, N.; Rahman, Saidur; Sabri, M.F.M. et al.
In: International Journal of Arts and Technology, Vol. 10, No. 6, 25.11.2019, p. 1112-1119.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Aslfattahi, N, Rahman, S, Sabri, MFM & Arifutzzaman, A 2019, 'Experimental investigation of thermal stability and enthalpy of eutectic alkali metal solar salt dispersed with MGO nanoparticles', International Journal of Arts and Technology, vol. 10, no. 6, pp. 1112-1119. https://doi.org/10.14716/ijtech.v10i6.3568

APA

Aslfattahi, N., Rahman, S., Sabri, M. F. M., & Arifutzzaman, A. (2019). Experimental investigation of thermal stability and enthalpy of eutectic alkali metal solar salt dispersed with MGO nanoparticles. International Journal of Arts and Technology, 10(6), 1112-1119. https://doi.org/10.14716/ijtech.v10i6.3568

Vancouver

Aslfattahi N, Rahman S, Sabri MFM, Arifutzzaman A. Experimental investigation of thermal stability and enthalpy of eutectic alkali metal solar salt dispersed with MGO nanoparticles. International Journal of Arts and Technology. 2019 Nov 25;10(6):1112-1119. doi: 10.14716/ijtech.v10i6.3568

Author

Aslfattahi, N. ; Rahman, Saidur ; Sabri, M.F.M. et al. / Experimental investigation of thermal stability and enthalpy of eutectic alkali metal solar salt dispersed with MGO nanoparticles. In: International Journal of Arts and Technology. 2019 ; Vol. 10, No. 6. pp. 1112-1119.

Bibtex

@article{fc5242b31b534a48b14f5430c2d55bed,
title = "Experimental investigation of thermal stability and enthalpy of eutectic alkali metal solar salt dispersed with MGO nanoparticles",
abstract = "In this study, nanocomposites containing a pre-defined mass ratio of solar salt (NaNO3-KNO3: 60-40 wt.%) dispersed with magnesium oxide (MgO) nanoparticles with nominal sizes of 100 nm were prepared in solid and liquid states. The proposed amounts of sodium nitrate and potassium nitrate were added to certain amounts of ultrapure deionized (DI) water comprising a 5 wt.% concentration of MgO nanoparticles. Afterward, the prepared mixture was placed in a dry oven to mix in a liquid state to obtain well-dispersed nanocomposites. Scanning electronic microscopy (SEM) was conducted to evaluate the uniformity of synthesized, molten salt–based magnesium oxide–nanoparticles, revealing a uniform dispersion. Enthalpy and melting point measurements were performed using differential scanning calorimetry. The experimental results of solar salt–based MgO indicated decreases in melting point and enthalpy by 7% and 12.4%, respectively. The reduction of enthalpy indicated that, with the addition of magnesium oxide to solar salt, the final nanocomposite tends to have more exothermic reactions and enhanced thermal conductivity performance at the melting point. Lower melting points constitute one of the major concerns regarding molten salt–based nanofluids. MgO nanoparticles with a concentration of 5 wt.% have a melting point decreased by 7%. Mass loss and thermal stability measurements were conducted using thermogravimetric analysis (TGA). The experimentally acquired results revealed an increment of decomposition temperature from 734.29°C to 750.73°C, demonstrating the enhancement of thermal stability at high temperatures.",
keywords = "Enthalpy, MgO, Solar salt, Thermal stability",
author = "N. Aslfattahi and Saidur Rahman and M.F.M. Sabri and A. Arifutzzaman",
year = "2019",
month = nov,
day = "25",
doi = "10.14716/ijtech.v10i6.3568",
language = "English",
volume = "10",
pages = "1112--1119",
journal = "International Journal of Arts and Technology",
issn = "1754-8853",
publisher = "Inderscience Publishers",
number = "6",

}

RIS

TY - JOUR

T1 - Experimental investigation of thermal stability and enthalpy of eutectic alkali metal solar salt dispersed with MGO nanoparticles

AU - Aslfattahi, N.

AU - Rahman, Saidur

AU - Sabri, M.F.M.

AU - Arifutzzaman, A.

PY - 2019/11/25

Y1 - 2019/11/25

N2 - In this study, nanocomposites containing a pre-defined mass ratio of solar salt (NaNO3-KNO3: 60-40 wt.%) dispersed with magnesium oxide (MgO) nanoparticles with nominal sizes of 100 nm were prepared in solid and liquid states. The proposed amounts of sodium nitrate and potassium nitrate were added to certain amounts of ultrapure deionized (DI) water comprising a 5 wt.% concentration of MgO nanoparticles. Afterward, the prepared mixture was placed in a dry oven to mix in a liquid state to obtain well-dispersed nanocomposites. Scanning electronic microscopy (SEM) was conducted to evaluate the uniformity of synthesized, molten salt–based magnesium oxide–nanoparticles, revealing a uniform dispersion. Enthalpy and melting point measurements were performed using differential scanning calorimetry. The experimental results of solar salt–based MgO indicated decreases in melting point and enthalpy by 7% and 12.4%, respectively. The reduction of enthalpy indicated that, with the addition of magnesium oxide to solar salt, the final nanocomposite tends to have more exothermic reactions and enhanced thermal conductivity performance at the melting point. Lower melting points constitute one of the major concerns regarding molten salt–based nanofluids. MgO nanoparticles with a concentration of 5 wt.% have a melting point decreased by 7%. Mass loss and thermal stability measurements were conducted using thermogravimetric analysis (TGA). The experimentally acquired results revealed an increment of decomposition temperature from 734.29°C to 750.73°C, demonstrating the enhancement of thermal stability at high temperatures.

AB - In this study, nanocomposites containing a pre-defined mass ratio of solar salt (NaNO3-KNO3: 60-40 wt.%) dispersed with magnesium oxide (MgO) nanoparticles with nominal sizes of 100 nm were prepared in solid and liquid states. The proposed amounts of sodium nitrate and potassium nitrate were added to certain amounts of ultrapure deionized (DI) water comprising a 5 wt.% concentration of MgO nanoparticles. Afterward, the prepared mixture was placed in a dry oven to mix in a liquid state to obtain well-dispersed nanocomposites. Scanning electronic microscopy (SEM) was conducted to evaluate the uniformity of synthesized, molten salt–based magnesium oxide–nanoparticles, revealing a uniform dispersion. Enthalpy and melting point measurements were performed using differential scanning calorimetry. The experimental results of solar salt–based MgO indicated decreases in melting point and enthalpy by 7% and 12.4%, respectively. The reduction of enthalpy indicated that, with the addition of magnesium oxide to solar salt, the final nanocomposite tends to have more exothermic reactions and enhanced thermal conductivity performance at the melting point. Lower melting points constitute one of the major concerns regarding molten salt–based nanofluids. MgO nanoparticles with a concentration of 5 wt.% have a melting point decreased by 7%. Mass loss and thermal stability measurements were conducted using thermogravimetric analysis (TGA). The experimentally acquired results revealed an increment of decomposition temperature from 734.29°C to 750.73°C, demonstrating the enhancement of thermal stability at high temperatures.

KW - Enthalpy

KW - MgO

KW - Solar salt

KW - Thermal stability

U2 - 10.14716/ijtech.v10i6.3568

DO - 10.14716/ijtech.v10i6.3568

M3 - Journal article

VL - 10

SP - 1112

EP - 1119

JO - International Journal of Arts and Technology

JF - International Journal of Arts and Technology

SN - 1754-8853

IS - 6

ER -