Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Temperature is one of the main factors affecting the properties of polyurethane foams, and there are large differences in the mechanical properties of polyurethane foams at different temperatures. To understand the effect of temperature on the mechanical properties of polyurethane foams and to provide a theoretical basis for the application of polyurethane foams in extreme environments, this paper systematically describes the research on the effect of mold temperature, raw material temperature, and environmental temperature on the microstructure and mechanical properties of polyurethane foams in the formation and service stages of rigid polyurethane foams by domestic and foreign scholars, and summarizes the effect of temperature on the mechanical properties of polyurethane foams and the mechanism of action. A review of the literature shows that the effect of different temperatures on the mechanical properties of polyurethane foams can be summarized. The literature review shows that there are certain changes in the foaming process, pore structure, and mechanical properties of polyurethane foams at different temperatures, and the increase in temperature generally leads to the increase in pore size, decrease in density, and decrease in mechanical properties of polyurethane foams.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9654075PMC
http://dx.doi.org/10.3390/polym14214586DOI Listing

Publication Analysis

Top Keywords

polyurethane foams
44
properties polyurethane
36
mechanical properties
28
polyurethane
11
foams
11
properties
9
foams temperatures
8
temperature mechanical
8
temperature
7
mechanical
7

Similar Publications

The use of highly flammable materials such as foams, resins, and plastics has led to an increase in the frequency and severity of urban fires worldwide. To address this issue, this study developed a high-specific-surface-area mesoporous metal-organic framework (Fe-MOFs) with heat trapping and smoke adsorption. The Fe-MOFs, zinc tailings (ZTs), piperazine pyrophosphate (PAPP), and sodium lignosulfonate (LS) were used to modify rigid polyurethane foam (RPUF).

View Article and Find Full Text PDF

This study aims to evaluate the application potential of unrefined vegetable oils derived from three plant species- (), (), and rapeseed ( L. var. )-as renewable raw materials for the synthesis of bio-based polyurethane foams.

View Article and Find Full Text PDF

Comparative Evaluation of Polyester and Polyether Polyurethane Foams for Adsorption in Water Disinfection.

ACS Omega

August 2025

Water and Energy Research Lab, Mechanical and Industrial Engineering, University of Toronto, 5 King's College Rd, Toronto, ON, M5S 3G8, Canada.

In 2022, an estimated 1.7 billion people globally lacked access to safe drinking water, with more than 100 million still relying on untreated surface water. Contamination of water with fecal bacteria can cause a variety of diseases.

View Article and Find Full Text PDF

The increasing demand for sustainable construction materials has driven research into the reuse of plastic waste for renewable building applications. This study introduces a new lightweight insulating mortar for floor and roof systems, utilizing recycled rigid polyurethane (PU) foam as the primary aggregate. The binder mainly consists of Portland cement, with no added sand, and includes minor additives to enhance mechanical, physical, and thermal properties.

View Article and Find Full Text PDF

This systematic literature review explores recent advancements in polymer-based composite materials designed for thermal insulation in automotive applications, with a particular focus on sustainability, performance optimization, and scalability. The methodology follows PRISMA 2020 guidelines and includes a comprehensive bibliometric and thematic analysis of 229 peer-reviewed articles published over the past 15 years across major databases (Scopus, Web of Science, ScienceDirect, MDPI). The findings are structured around four central research questions addressing (1) the functional role of insulation in automotive systems; (2) criteria for selecting suitable polymer systems; (3) optimization strategies involving nanostructuring, self-healing, and additive manufacturing; and (4) future research directions involving smart polymers, bioinspired architectures, and AI-driven design.

View Article and Find Full Text PDF