Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Paraffin Wax-Based Thermal Composites

View through CrossRef
Paraffin waxes are organic phase change materials possessing a great potential to store and release thermal energy. The reversible solid–liquid phase change phenomenon is the under-lying mechanism enabling the paraffin waxes as robust thermal reservoirs based on inherently high latent heat (i.e., ~200–250 J/g). However, the main drawback of paraffin waxes is their inability to expedite the phase change process owing to low thermal conductivity (i.e., ~0.19–0.35 Wm−1 K−1). This drawback has long been documented as a technological challenge of paraffin waxes especially for temperature-control applications where faster thermal storage/release is necessitated, encompassing thermal management of batteries, thermoelectric modules and photovoltaic panels. Besides, sustaining the solid-like form of paraffin waxes (shape-stability) is also recommended to avoid the liquid drainage threats for crucial applications, like thermal management of buildings and fabrics. These objectives can be met by developing the paraffin wax-based thermal composites (PWTCs) with help of various thermal reinforcements. However, PWTCs also encounter severe challenges, probably due to lack of design standards. This chapter attempts presenting the recent advances and major bottlenecks of PWTCs, as well as proposing the design standards for optimal PWTCs. Also, the fundamental classification of phase change phenomenon, paraffin waxes and potential thermal reinforcements is thoroughly included.
Title: Paraffin Wax-Based Thermal Composites
Description:
Paraffin waxes are organic phase change materials possessing a great potential to store and release thermal energy.
The reversible solid–liquid phase change phenomenon is the under-lying mechanism enabling the paraffin waxes as robust thermal reservoirs based on inherently high latent heat (i.
e.
, ~200–250 J/g).
However, the main drawback of paraffin waxes is their inability to expedite the phase change process owing to low thermal conductivity (i.
e.
, ~0.
19–0.
35 Wm−1 K−1).
This drawback has long been documented as a technological challenge of paraffin waxes especially for temperature-control applications where faster thermal storage/release is necessitated, encompassing thermal management of batteries, thermoelectric modules and photovoltaic panels.
Besides, sustaining the solid-like form of paraffin waxes (shape-stability) is also recommended to avoid the liquid drainage threats for crucial applications, like thermal management of buildings and fabrics.
These objectives can be met by developing the paraffin wax-based thermal composites (PWTCs) with help of various thermal reinforcements.
However, PWTCs also encounter severe challenges, probably due to lack of design standards.
This chapter attempts presenting the recent advances and major bottlenecks of PWTCs, as well as proposing the design standards for optimal PWTCs.
Also, the fundamental classification of phase change phenomenon, paraffin waxes and potential thermal reinforcements is thoroughly included.

Related Results

Paraffin Characteristics of Waxy Crude Oils in China and the Methods of Paraffin Removal and Inhibition
Paraffin Characteristics of Waxy Crude Oils in China and the Methods of Paraffin Removal and Inhibition
ABSTRACT The crude oil in which the wax content is more than 10% (w), nearly accounts for 90 percent of the total output of crudes in China. On the whole, for the...
Wax Deposition Correlation-Application in Multiphase Wax Deposition Models
Wax Deposition Correlation-Application in Multiphase Wax Deposition Models
Abstract The two most dominant factors in wax deposition are:Brownian diffusion of wax forming molecules toward and adhesion of wax crystals at the wall. The rate...
Robust Phenomenological Model for Simulation of Transient Wax Gelation in Submarine Pipelines
Robust Phenomenological Model for Simulation of Transient Wax Gelation in Submarine Pipelines
Abstract A two-phase modeling approach to wax gelation in shut-in submarine pipelines is presented and validated with experimental data. Accurate correlation of p...
Thermal Characterization of Structured Porous Materials and Phase Change Composites for Heat Sink Applications
Thermal Characterization of Structured Porous Materials and Phase Change Composites for Heat Sink Applications
Heat sinks are commonly used in electronic devices to dissipate heat from electronic circuits. Phase change materials (PCMs) offer a viable solution for storing thermal energy duri...
Thermal Effects in High Compactness CEA Stack
Thermal Effects in High Compactness CEA Stack
Thermal management is a pivotal aspect of stack durability and system operability. Consequently, understanding the thermal mapping within a stack based on its operating conditions ...
Wilhelm His Sr. and the development of paraffin embedding
Wilhelm His Sr. and the development of paraffin embedding
AbstractParaffin histology is one of the most important and commonly-used laboratory techniques in diagnostic histopathology. The discovery of paraffin embedding is often attribute...
Characterization of Hybrid-nano/Paraffin Organic Phase Change Material for Thermal Energy Storage Applications in Solar Thermal Systems
Characterization of Hybrid-nano/Paraffin Organic Phase Change Material for Thermal Energy Storage Applications in Solar Thermal Systems
In this work, the experimental investigations were piloted to study the influence of hybrid nanoparticles containing SiO2 and CeO2 nanoparticles on thermo-physical characteristics ...

Back to Top