A Mechanical Model of Cellular Solids for Energy Absorption. Issue 4 (21st October 2018)
- Record Type:
- Journal Article
- Title:
- A Mechanical Model of Cellular Solids for Energy Absorption. Issue 4 (21st October 2018)
- Main Title:
- A Mechanical Model of Cellular Solids for Energy Absorption
- Authors:
- Avalle, Massimiliano
Belingardi, Giovanni - Other Names:
- von Hehl Axel guestEditor.
- Abstract:
- Abstract : Cellular materials, also known as foams, have a variety of applications in the field of packaging, and shock mitigation in the case of crash of vehicles, due to their ability to protect goods by absorbing energy in the case of impact while reducing the transmitted loads. To properly design energy absorption devices and systems such as bumpers, road barriers, helmets, sole paddings, packages, etc. it is necessary to use precisely predictive models of cellular materials, in order to select the most suitable foam for the considered application. The model must describe the stress–strain behavior, at least uniaxial compression, but also sometimes the tension and multiaxial loading, then energy absorption characteristics is evaluated. Moreover, it must take into account affecting factors like the strain‐rate. Secondarily, modeling the influence of the density heavily helps designer in selecting the best solution in terms of minimum weight per given energy to dissipate. In previous works, the authors present more than one model able to describe the quasi‐static stress–strain behavior of several cellular materials. The current paper presents a very general model able to describe, with properly identified parameters, the mechanical characteristics of a much larger variety of cellular materials including metal foams, foam mechanical properties (like, e.g., the dependence on density), and takes into account the influence of strain‐rate. Among the considered materials are theAbstract : Cellular materials, also known as foams, have a variety of applications in the field of packaging, and shock mitigation in the case of crash of vehicles, due to their ability to protect goods by absorbing energy in the case of impact while reducing the transmitted loads. To properly design energy absorption devices and systems such as bumpers, road barriers, helmets, sole paddings, packages, etc. it is necessary to use precisely predictive models of cellular materials, in order to select the most suitable foam for the considered application. The model must describe the stress–strain behavior, at least uniaxial compression, but also sometimes the tension and multiaxial loading, then energy absorption characteristics is evaluated. Moreover, it must take into account affecting factors like the strain‐rate. Secondarily, modeling the influence of the density heavily helps designer in selecting the best solution in terms of minimum weight per given energy to dissipate. In previous works, the authors present more than one model able to describe the quasi‐static stress–strain behavior of several cellular materials. The current paper presents a very general model able to describe, with properly identified parameters, the mechanical characteristics of a much larger variety of cellular materials including metal foams, foam mechanical properties (like, e.g., the dependence on density), and takes into account the influence of strain‐rate. Among the considered materials are the Foaminal® aluminum foam and the APM ® hybrid foam. The model is fitted to experimental tests with parameters identified based on past experimental data from the authors themselves. Tests include quasi‐static, dynamic, and impact tests at different loading speed and impact energy. It is shown that the proposed model is fundamentally suitable for most materials, virtually any foamed material, and it is an outstandingly useful tool for designers in the mentioned areas. Abstract : The paper describes a general model for the uniaxial compression of metal foams, previously validated for polymeric and non‐organic expanded materials. The model allows describing with great precision the stress–strain curve from the elastic phase to the densification, and to take into account affecting factors such as strain‐rate and density. Identified parameters for some production aluminum foams are reported. … (more)
- Is Part Of:
- Advanced engineering materials. Volume 21:Issue 4(2019)
- Journal:
- Advanced engineering materials
- Issue:
- Volume 21:Issue 4(2019)
- Issue Display:
- Volume 21, Issue 4 (2019)
- Year:
- 2019
- Volume:
- 21
- Issue:
- 4
- Issue Sort Value:
- 2019-0021-0004-0000
- Page Start:
- n/a
- Page End:
- n/a
- Publication Date:
- 2018-10-21
- Subjects:
- cellular materials -- energy absorption -- foams modeling
Materials -- Periodicals
620.11 - Journal URLs:
- http://onlinelibrary.wiley.com/ ↗
- DOI:
- 10.1002/adem.201800457 ↗
- Languages:
- English
- ISSNs:
- 1438-1656
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 0696.851200
British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 10466.xml