Low density mist collector pad
A wire mesh mist collector pad having multiple density zones, the zones being arranged other than to provide a constantly increasing density gradient, provides a reduced pressure drop and increased capacity. For example, the pad can include at least three zones with the zones arranged so that the density gradient in the direction of gas flow through the pad varies from low to high to low or from high to low to high.
1. A method for making a mist collector pad comprising:
(a) forming a first zone of the mist collector pad by stacking one or more layers of a knitted wire mesh tube that has been (i) flattened and (ii) crimped twice;
(b) forming a second zone of the mist collector pad by stacking one or more layers of a knitted wire mesh tube that has been (i) flattened and (ii) crimped once;
(c) forming a third zone of the mist collector pad by stacking one or more layers of a knitted wire mesh tube that has been (i) flattened and (ii) crimped twice; and
(d) securing the first, second, and third zones in a grid which is used to install the mist collector pad in a process gas stream so that during use of the mist collector pad, the first zone is upstream of the second zone and the second zone is upstream of the third zone;
wherein:
(I) the density of the second zone is greater than the density of the first zone;
(II) the density of the second zone is greater than the density of the third zone; and
(III) the wire meshes of the first, second, and third zones are selected so that during use of the mist collector pad, liquid droplets in a process gas stream land on the wire meshes, coalesce on the meshes, and then run off from the meshes due to gravity.
2. The method of claim 1 wherein each layer of the first zone is the same as each layer of the third zone.
3. The method of claim 1 wherein the first, second, and third zones are contiguous.
4. The method of claim 1 comprising the additional steps of:
(e) forming a fourth zone of the mist collector pad by stacking one or more layers of a knitted wire mesh tube that has been (i) flattened and (ii) crimped once; and
(f) securing the fourth zone in the grid so that during use, the third zone is upstream of the fourth zone;
wherein:
(I) the density of the fourth zone is greater than the density of the first zone;
(II) the density of the fourth zone is greater than the density of the third zone; and
(III) the wire mesh of the fourth zone is selected so that during use of the mist collector pad, liquid droplets in a process gas stream land on the wire mesh, coalesce on the mesh, and then run off from the mesh due to gravity.
5. The method of claim 4 wherein each layer of the first zone is the same as each layer of the third zone.
6. The method of claim 4 wherein each layer of the second zone is the same as each layer of the fourth zone.
7. The method of claim 6 wherein each layer of the first zone is the same as each layer of the third zone.
8. The method of claim 4 wherein the first, second, third, and fourth zones are contiguous.
9. A method for making a mist collector pad comprising:
(a) forming a first zone of the mist collector pad by stacking one or more layers of a knitted wire mesh tube that has been (i) flattened and (ii) crimped once;
(b) forming a second zone of the mist collector pad by stacking one or more layers of a knitted wire mesh tube that has been (i) flattened and (ii) crimped twice;
(c) forming a third zone of the mist collector pad by stacking one or more layers of a knitted wire mesh tube that has been (i) flattened and (ii) crimped once; and
(d) securing the first, second, and third zones in a grid which is used to install the mist collector pad in a process gas stream so that during use of the mist collector pad, the first zone is upstream of the second zone and the second zone is upstream of the third zone;
wherein:
(I) the density of the second zone is less than the density of the first zone;
(II) the density of the second zone is less than the density of the third zone; and
(III) the wire meshes of the first, second, and third zones are selected so that during use of the mist collector pad, liquid droplets in a process gas stream land on the wire meshes, coalesce on the meshes, and then run off from the meshes due to gravity.
10. The method of claim 9 wherein each layer of the first zone is the same as each layer of the third zone.
11. The method of claim 9 wherein the first, second, and third zones are contiguous.
12. The method of claim 9 comprising the additional steps of:
(e) forming a fourth zone of the mist collector pad by stacking one or more layers of a knitted wire mesh tube that has been (i) flattened and (ii) crimped twice; and
(f) securing the fourth zone in the grid so that during use, the third zone is upstream of the fourth zone;
wherein:
(I) the density of the fourth zone is less than the density of the first zone;
(II) the density of the fourth zone is less than the density of the third zone; and
(III) the wire mesh of the fourth zone is selected so that during use of the mist collector pad, liquid droplets in a process gas stream land on the wire mesh, coalesce on the mesh, and then run off from the mesh due to gravity.
13. The method of claim 12 wherein each layer of the first zone is the same as each layer of the third zone.
14. The method of claim 12 wherein each layer of the second zone is the same as each layer of the fourth zone.
15. The method of claim 14 wherein each layer of the first zone is the same as each layer of the third zone.
16. The method of claim 12 wherein the first, second, third, and fourth zones are contiguous.