A new model for simulating the transport of healing agents in self-healing (SH) cementitious materials is presented. The model is applicable to autonomic SH material systems in which embedded channels, or vascular networks, are used to supply healing agents to damaged zones. The essential numerical components of the model are a crack flow model, based on the Navier-Stokes equations, which is coupled to the mass balance equation for simulating unsaturated matrix flow. The driving forces for the crack flow are the capillary meniscus force and the force derived from an external (or internal) pressure applied to the liquid healing agent. The crack flow model component applies to non-uniform cracks and allows for the dynamic variation of the men...
Capillary flow through discrete cracks is the main mechanism by which healing agents embedded within...
The success of self-healing cementitious materials relies on their ability to repeatedly heal over t...
We present a modeling methodology to assess and improve the encapsulation-based self-healing strateg...
A new model for simulating the transport of healing agents in self-healing (SH) cementitious materia...
This study presents a new 3D coupled model for simulating self-healing cementitious materials. The m...
The paper discusses research progress on numerical models for self-healing cementitious materials (S...
A series of characterisation studies are reported that provide new data on the behaviour of a self-h...
A new damage-healing model for self-healing cementitious materials is described. The model is formul...
Recent developments in self-healing technology inspired by natural biological materials have the pot...
The paper presents results from two groups of experimental tests on a pressurised vascular self-heal...
Autonomic self-healing cementitious materials generally rely upon the transport of adhesives via cap...
This chapter discusses previous research on the numerical simulation of self-healing cementitious ma...
In this paper, research progress on numerical models for self-healing cementitious materials (SHCMs...
AbstractAutonomic self-healing cementitious materials generally rely upon the transport of adhesives...
A new approach is described for simulating self-healing behaviour in cementitious materials with a t...
Capillary flow through discrete cracks is the main mechanism by which healing agents embedded within...
The success of self-healing cementitious materials relies on their ability to repeatedly heal over t...
We present a modeling methodology to assess and improve the encapsulation-based self-healing strateg...
A new model for simulating the transport of healing agents in self-healing (SH) cementitious materia...
This study presents a new 3D coupled model for simulating self-healing cementitious materials. The m...
The paper discusses research progress on numerical models for self-healing cementitious materials (S...
A series of characterisation studies are reported that provide new data on the behaviour of a self-h...
A new damage-healing model for self-healing cementitious materials is described. The model is formul...
Recent developments in self-healing technology inspired by natural biological materials have the pot...
The paper presents results from two groups of experimental tests on a pressurised vascular self-heal...
Autonomic self-healing cementitious materials generally rely upon the transport of adhesives via cap...
This chapter discusses previous research on the numerical simulation of self-healing cementitious ma...
In this paper, research progress on numerical models for self-healing cementitious materials (SHCMs...
AbstractAutonomic self-healing cementitious materials generally rely upon the transport of adhesives...
A new approach is described for simulating self-healing behaviour in cementitious materials with a t...
Capillary flow through discrete cracks is the main mechanism by which healing agents embedded within...
The success of self-healing cementitious materials relies on their ability to repeatedly heal over t...
We present a modeling methodology to assess and improve the encapsulation-based self-healing strateg...