Sulfur detector for gaseous fuels
In one embodiment the present invention provides for a sulfur detector 8 that comprises a gaseous flow 2 , and a zeolite material disposed in the gaseous flow. Although various types of sulfur can be detected, the present invention is particularly suited for dimethyl sulfide and organic sulfur. The zeolite material changes color in the presence of sulfur by physically binding sulfur from the gaseous flow 2 , which is also referred to as physical adsorption. The zeolite material is regenerable, and regenerating the zeolite material releases sulfur and returns to an original color.
1 . A sulfur detector comprising:
a gaseous flow; and
a zeolite material disposed in said gaseous flow, wherein said zeolite material changes color in the presence of sulfur by physically binding sulfur from said gaseous flow;
wherein said zeolite material is regenerable, and wherein regenerating said zeolite material releases sulfur and returns to an original color.
2 . The sulfur detector of claim 1 , wherein said gaseous flow is a fuel.
3 . The sulfur detector of claim 1 , wherein said zeolite material is a metal exchanged zeolite-Y.
4 . The sulfur detector of claim 3 , wherein said metal is copper.
5 . The sulfur detector of claim 1 , wherein said zeolite material is disposed in a side flow of said gaseous flow.
6 . The sulfur detector of claim 5 , wherein said side flow is used to calibrate the sensitivity of said sulfur detector.
7 . The sulfur detector of claim 1 , further comprising an optical detector, wherein said optical detector is capable of measuring the change in color of said zeolite material.
8 . The sulfur detector of claim 7 , wherein said optical detector is calibrated to approximate a concentration of sulfur in said gaseous flow by the degree of color change to said zeolite material.
9 . The sulfur detector of claim 1 , wherein said zeolite material changes color when the concentration of sulfur in said gaseous flow is at least 1 mg/m 3 .
10 . The sulfur detector of claim 1 , wherein said zeolite material is regenerated by heating to about 300° C. and exposing said zeolite material to a gas flow.
11 . The sulfur detector of claim 10 , wherein the regeneration is performed after removing said zeolite material from said gaseous flow.
12 . The sulfur detector of claim 1 , wherein said zeolite material is monitored after removing said zeolite material form said gaseous flow.
13 . A sulfur detector comprising:
a gaseous flow;
a copper exchanged zeolite-Y film on a substrate disposed within said gaseous flow; and
an optical detector;
wherein said zeolite-Y film changes color in the presence of sulfur by physically binding sulfur in said gaseous flow;
wherein said zeolite-Y changes color when the concentration of sulfur in said gaseous flow is at least 1 mg/m 3 ;
wherein said optical detector is capable of measuring the change in color of said zeolite-Y;
wherein said zeolite-Y is regenerated by heating to about 300° C. and exposing said zeolite-Y to a gas, whereby said gas flow carries away desorbed sulfur compounds.
14 . The sulfur detector of claim 13 , wherein the heating to regenerate said zeolite-Y is performed by directly heating said zeolite-Y with a heater.
15 . The sulfur detector of claim 13 , wherein the heating to regenerate said zeolite-Y is performed by bringing said gas flow to about 300° C.
16 . A method of detecting sulfur in a gaseous flow comprising:
depositing a thin film of a metal exchanged zeolite onto a substrate;
disposing said zeolite into said gaseous flow;
observing said zeolite for a color change;
recognizing said color change and inferring the presence of sulfur in said gaseous flow.
17 . The method of claim 16 , wherein said metal exchanged zeolite is copper exchanged zeolite-Y.
18 . The method of claim 16 , wherein said substrate is an integral part of a system for said gaseous flow.
19 . The method of claim 16 , wherein observing said zeolite for a color change is performed by an optical detector.