© 2019 Elsevier Ltd An improved agglomerate sub-model of catalyst layer (CL) involving actual agglomerate size and oxygen local transport characteristics is developed and incorporated into a three-dimensional (3D) multi-phase model of proton exchange membrane (PEM) fuel cell. This makes it capable to consider the effect of platinum (Pt) loading on oxygen transport and fuel cell performance more accurately. Oxygen local transport resistance near the catalyst surface is divided into three parts caused by liquid water blockage, ionomer coverage and Pt/carbon agglomeration, respectively. The resistances caused by ionomer coverage and Pt/carbon agglomeration are two major sources of oxygen local transport resistance. They have opposite variation...
A model for the cathode catalyst layer (CL) is presented, which is validated with previous experimen...
Exploring the origins of local transport resistance and characterizing the oxygen transport resistan...
Exploring the origins of local transport resistance and characterizing the oxygen transport resistan...
Prasad, AjayAdvani, SureshAs the demand for clean energy grows rapidly, proton exchange membrane (PE...
A low platinum loading model, considering both the platinum loading and platinum particle distributi...
Understanding the interaction between catalyst layer (CL) design parameters is a prerequisite for de...
Understanding the interaction between catalyst layer (CL) design parameters is a prerequisite for de...
The cathode catalyst layer within a proton-exchange-membrane fuel cell is the most complex and criti...
The catalyst layer (CL) in polymer electrolyte membrane (PEM) fuel cells is one of the key component...
The foremost practical objective in research on polymer electrolyte fuel cells is to design catalyst...
Reducing Pt in proton exchange membrane fuel cells is the subject of intense research and developmen...
A series of steady-state microscopic continuum models of the cathode catalyst layer (active layer) o...
Durability is a major issue against the commercialization of proton exchange membrane fuel cells (PE...
A model for the cathode catalyst layer (CL) is presented, which is validated with previous experimen...
A model for the cathode catalyst layer (CL) is presented, which is validated with previous experimen...
A model for the cathode catalyst layer (CL) is presented, which is validated with previous experimen...
Exploring the origins of local transport resistance and characterizing the oxygen transport resistan...
Exploring the origins of local transport resistance and characterizing the oxygen transport resistan...
Prasad, AjayAdvani, SureshAs the demand for clean energy grows rapidly, proton exchange membrane (PE...
A low platinum loading model, considering both the platinum loading and platinum particle distributi...
Understanding the interaction between catalyst layer (CL) design parameters is a prerequisite for de...
Understanding the interaction between catalyst layer (CL) design parameters is a prerequisite for de...
The cathode catalyst layer within a proton-exchange-membrane fuel cell is the most complex and criti...
The catalyst layer (CL) in polymer electrolyte membrane (PEM) fuel cells is one of the key component...
The foremost practical objective in research on polymer electrolyte fuel cells is to design catalyst...
Reducing Pt in proton exchange membrane fuel cells is the subject of intense research and developmen...
A series of steady-state microscopic continuum models of the cathode catalyst layer (active layer) o...
Durability is a major issue against the commercialization of proton exchange membrane fuel cells (PE...
A model for the cathode catalyst layer (CL) is presented, which is validated with previous experimen...
A model for the cathode catalyst layer (CL) is presented, which is validated with previous experimen...
A model for the cathode catalyst layer (CL) is presented, which is validated with previous experimen...
Exploring the origins of local transport resistance and characterizing the oxygen transport resistan...
Exploring the origins of local transport resistance and characterizing the oxygen transport resistan...