We derive a sophisticated mathematical model for coupled heat and mass transport in the tumour microenvironment and we apply it to study nanoparticle delivery and hyperthermic treatment of cancer. The model has the unique ability of combining the following features: (i) realistic vasculature; (ii) coupled capillary and interstitial flow; (iii) coupled capillary and interstitial mass transfer applied to nanoparticles; and (iv) coupled capillary and interstitial heat transfer, which are the fundamental mechanisms governing nano-based hyperthermic treatment. This is an improvement with respect to previous modelling approaches, where the effect of blood perfusion on heat transfer is modelled in a spatially averaged form. We analyse the time evo...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
Current clinically accepted technologies for cancer treatment still have limitations which lead to t...
Current clinically accepted technologies for cancer treatment still have limitations which lead to t...
We derive a sophisticated mathematical model for coupled heat and mass transport in the tumour micro...
We derive a sophisticated mathematical model for coupled heat and mass transport in the tumour micro...
We derive a sophisticated mathematical model for coupled heat and mass transport in the tumour micro...
We focus on modelling of cancer hyperthermia driven by the application of the magnetic field to iron...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
We describe a novel mathematical model for blood flow, delivery of nanoparticles, and heat transport...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
Abstract This study presents a theoretical model to mimic heat transfer and nanoparticle transport t...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
Current clinically accepted technologies for cancer treatment still have limitations which lead to t...
Current clinically accepted technologies for cancer treatment still have limitations which lead to t...
We derive a sophisticated mathematical model for coupled heat and mass transport in the tumour micro...
We derive a sophisticated mathematical model for coupled heat and mass transport in the tumour micro...
We derive a sophisticated mathematical model for coupled heat and mass transport in the tumour micro...
We focus on modelling of cancer hyperthermia driven by the application of the magnetic field to iron...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
We describe a novel mathematical model for blood flow, delivery of nanoparticles, and heat transport...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
Abstract This study presents a theoretical model to mimic heat transfer and nanoparticle transport t...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
The application of hyperthermia to cancer treatment is studied using a novel model arising from the ...
Current clinically accepted technologies for cancer treatment still have limitations which lead to t...
Current clinically accepted technologies for cancer treatment still have limitations which lead to t...