Catalytic converter element
The present invention relates to a catalytic converter element having a plurality of essentially parallel channels through which gas flows during operation of the catalytic converter element. The channels are bordered by channel walls which have a catalytically active coating arranged thereon in at least some areas where it is exposed to the gas. In some channels the coating thus begins with an axial offset from the admission end. This allows an improved temperature management within the catalytic converter element.
1. A catalytic converter element comprising:
a plurality of essentially parallel channels through which gas flows during operation of the catalytic converter element, wherein each of said plurality of channels through which gas flows during operation of the catalytic converter element has an open inlet end and an open outlet end;
wherein the channels are bordered by channel walls which have a catalytically active coating that is arranged on the channel walls in at least some areas and is exposed to the gas,
wherein the coating on the channel walls begins with an axial offset in the direction of flow at the admission end of some channels.
2. The catalytic converter element according to claim 1 , wherein a plurality of channels are combined to form channel elements.
3. The catalytic converter element according to claim 2 , wherein the channels that are combined into one channel element have a coating that begins at the same axial position.
4. The catalytic converter element according to claim 2 , wherein neighboring channel elements each have a different alternating axial position positions at which the coating begins, as seen in the direction of flow.
5. The catalytic converter element according to claim 1 , wherein the channel walls comprise silicon carbide (SiC).
6. A reformer for generating a combustible gas containing hydrogen from a hydrocarbon fuel and an oxidizer containing oxygen with at least one catalytic converter element, said reformer comprising:
a plurality of essentially parallel channels through which gas flows during operation of the catalytic converter element, wherein each of said plurality of channels through which gas flows during operation of the catalytic converter element has an open inlet end and an open outlet end;
wherein the channels are bordered by channel walls which have a catalytically active coating that is arranged on the channel walls in at least some areas and is exposed to the gas,
wherein the coating on the channel walls begins with an axial offset in the direction of flow at the admission end of some channels.
7. The reformer according to claim 6 , wherein a plurality of channels are combined to form channel elements.
8. The reformer according to claim 7 , wherein the channels that are combined into one channel element have a coating that begins at the same axial position.
9. The reformer according to claim 7 , wherein neighboring channel elements each have a different alternating axial position at which the coating begins, as seen in the direction of flow.
10. The reformer according to claim 6 , wherein the channel walls comprise silicon carbide (SiC).