SMART SLIDE
20180128547 ยท 2018-05-10
Inventors
- Nathan C. RAWLS (Somervile, TX, US)
- Noel C. Bauman (College Station, TX, US)
- Richard K. Simon (College Station, TX, US)
Cpc classification
F16K3/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/0254
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2099/0078
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D99/0073
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2099/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A sliding style furnace cap features a furnace tube cap and a slider. The furnace tube cap has a first cap portion to couple to a furnace tube of a furnace, and a second cap portion with a bearing assembly arrangement. The furnace tube cap also has an inner tube cap channel passing through it with an inner tube cap channel sealing arrangement configured to extend outside the inner tube cap channel. The slider has an orifice/channel configured therein passing through the slider, couples and slides in the bearing assembly arrangement from an inject position to a rinse position, and vice versa, has a cam-like contoured surface with a first ramp configured to couple a first raised surface and an intermediate lower surface, and with a second ramp configured to couple the intermediate lower surface to a second raised surface. The slider also moves towards the inner tube cap channel and causes the bearing assembly arrangement to force a part/side of the slider to push against the inner channel sealing arrangement as part of the roller bearing arrangement rides up either the first ramp to the first raised portion when the slider is moved to the inject position, or the second ramp to the second raised portion when the slider is moved to the rinse position, and the first part of slider configured to seal the inner tube cap channel sealing arrangement when the slider is in either the inject position or the rinse position. The slider also moves away from the inner tube cap channel and causes the bearing assembly arrangement to allow the part/side of the slider to float above the inner channel sealing arrangement as the part of the roller bearing assembly rides along the intermediate lower surface when the slider is in transition between the inject position and the rinse position.
Claims
1. A furnace system comprising: a sliding style furnace cap having a furnace tube cap and a slider; the furnace tube cap having a first cap portion configured to couple to a furnace tube of a furnace, and having a second cap portion with a bearing assembly arrangement, the furnace tube cap also having an inner tube cap channel passing from the first cap portion to the second cap portion with an inner tube cap channel sealing arrangement configured to extend outside the inner tube cap channel; and the slider having an orifice/channel configured therein passing through the slider, being configured to couple and slide in the bearing assembly arrangement from an inject position to a rinse position, and vice versa, having a cam-like contoured surface with a first ramp configured to couple a first raised surface and an intermediate lower surface, and with a second ramp configured to couple the intermediate lower surface to a second raised surface, the slider configured to move towards the inner tube cap channel and cause the bearing assembly arrangement to force a part/side of the slider to push against the inner channel sealing arrangement as part of the roller bearing arrangement rides up either the first ramp to the first raised portion when the slider is moved to the inject position, or the second ramp to the second raised portion when the slider is moved to the rinse position, and the first part of slider configured to seal the inner tube cap channel sealing arrangement when the slider is in either the inject position or the rinse position, and the slider configured to move away from the inner tube cap channel and cause the bearing assembly arrangement to allow the part/side of the slider to float above the inner channel sealing arrangement as the part of the roller bearing assembly rides along the intermediate lower surface when the slider is in transition between the inject position and the rinse position.
2. A furnace system according to claim 1, wherein the inner channel sealing arrangement comprises an O-ring combination, including an inner elastomeric seal with an inner O-ring made of Viton and an outer inert and self-lubricating O-ring made of Teflon.
3. A furnace system according to claim 1, wherein the cam-like contoured surface includes the first ramp configured to couple the first raised surface and a first intermediate lower surface, the second ramp configured to couple the first intermediate lower surface to the second raised surface, a third ramp configured to couple the second raised surface to a second intermediate lower surface, and a fourth ramp configured to couple the second intermediate lower surface to a third raised surface.
4. A furnace system according to claim 1, wherein the bearing assembly arrangement comprises two sets of bearing assemblies, a first set of bearing assemblies configured or arranged over the first raised surface in the inject position, and a second set of bearing assemblies configured or arranged over the second raised surface in the rinse position.
5. A furnace system according to claim 1, wherein the slider comprises: a cam pathway having upper and lower cam-like contoured surfaces corresponding to one another; and the bearing assembly arrangement takes the form of a bearing cam follower.
6. A furnace system according to claim 5, wherein the slider comprises: two corresponding cam pathway, each cam pathway having the upper and lower cam-like contoured surfaces corresponding to one another; the bearing assembly arrangement includes two corresponding bearing cam followers.
7. A furnace system according to claim 1, wherein the furnace system is a Total Organic Carbon (TOC) system for measuring organic contaminants in a water system.
8. A sliding style furnace cap, comprising: a furnace tube cap having a first cap portion configured to couple to a furnace tube of a furnace, and having a second cap portion with a bearing assembly arrangement, the furnace tube cap also having an inner tube cap channel passing from the first cap portion to the second cap portion with an inner tube cap channel sealing arrangement configured to extend outside the inner tube cap channel; and a slider having an orifice/channel configured therein passing through the slider, being configured to couple and slide in the bearing assembly arrangement from an inject position to a rinse position, and vice versa, having a cam-like contoured surface with a first ramp configured to couple a first raised surface and an intermediate lower surface, and with a second ramp configured to couple the intermediate lower surface to a second raised surface, the slider configured to move towards the inner tube cap channel and cause the bearing assembly arrangement to force part of the slider to push against the inner channel sealing arrangement as part of the roller bearing assembly rides up either the first ramp to the first raised portion when the slider is moved to the inject position, or the second ramp to the second raised portion when the slider is moved to the rinse position, and the first side of slider configured to seal the inner tube cap channel sealing arrangement when the slider is in either the inject position or the rinse position, the slider configured to move away from the inner tube cap channel and cause the bearing assembly arrangement to allow the part of the slider to float above the inner channel sealing arrangement as the part of the roller bearing assembly rides along the intermediate lower surface when the slider is in transition between the inject position and the rinse position.
9. A sliding style furnace cap according to claim 8, wherein the inner channel sealing arrangement comprises an O-ring combination, including an inner elastomeric seal with an inner O-ring made of Viton and an outer inert and self-lubricating O-ring made of Teflon.
10. A sliding style furnace cap according to claim 8, wherein the cam-like contoured surface includes the first ramp configured to couple the first raised surface and a first intermediate lower surface, the second ramp configured to couple the first intermediate lower surface to the second raised surface, a third ramp configured to couple the second raised surface to a second intermediate lower surface, and a fourth ramp configured to couple the second intermediate lower surface to a third raised surface.
11. A sliding style furnace cap according to claim 8, wherein the bearing assembly arrangement comprises two sets of bearing assemblies, a first set of bearing assemblies configured or arranged over the first raised surface in the inject position, and a second set of bearing assemblies configured or arranged over the second raised surface in the rinse position.
12. A sliding style furnace cap according to claim 8, wherein the slider comprises: a cam pathway having upper and lower cam-like contoured surfaces corresponding to one another; and the bearing assembly arrangement takes the form of a bearing cam follower.
13. A sliding style furnace cap according to claim 12, wherein the slider comprises: two corresponding cam pathway, each cam pathway having the upper and lower cam-like contoured surfaces corresponding to one another; the bearing assembly arrangement includes two corresponding bearing cam followers.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0025] The drawing, which are not necessarily drawn to scale, includes
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034] To reduce clutter in the drawing, each Figure in the drawing does not necessarily include every reference label for every element shown therein.
DETAILED DESCRIPTION OF BEST MODE OF THE INVENTION
FIG. 1
[0035]
FIGS. 2A, 2B, 3A, 3B
[0036]
[0037] The furnace cap portion 26 has a first cap portion 26a configured to couple to the furnace tube 14 of the furnace 12, and has a second cap portion 26b with the bearing assembly arrangement 24 configured or arranged thereon as shown. The furnace tube cap 26 also has an inner tube cap channel 26c configured or formed therein, e.g., passing from the first cap portion 26a to the second cap portion 26b with an inner tube cap channel sealing arrangement generally indicated as 28 configured to extend outside the inner tube cap channel 26c. By way of example, the inner tube cap channel sealing arrangement 28 includes O-rings 28a, 28b, which may be made of rubber or Viton.
[0038] By way of example, the roller rearing arrangement 24 includes four roller bearing subassemblies 24, e.g., each having a roller bearing, one of which is labeled 24a, a bolt, one of which is labeled 24b, a washer, one of which is labeled 24c, a split lock washer, one of which is labeled 24d, and a hex nut, one of which is labeled 24e. This arrangement/configuration is set forth by way of example, and the scope of the invention is intended to include other types or kind of arrangements or configurations within the spirit of the present invention, e.g., see
[0039] Each roller bearing assembly 24 may be configured or arranged in a respective aperture/orifice, one of which is labeled O, in the second cap portion 26b.
[0040]
[0041]
FIG. 4
[0042]
[0043] In operation, the slider 22 is configured to move towards the inner tube cap channel 26c and cause the bearing assembly arrangement 24 to force the first part 22e of the slider 22 to push against the inner channel sealing arrangement 28 as the roller bearings 24a on the other side of the slider 22 ride up the ramps 22a2, 22a4, to the raised portions 22b3, 22b4 when the slider 22 is moved to the inject position, e.g., consistent with that shown in
FIG. 5
[0044]
[0045] In operation, the slider 22 is configured to move away from the inner tube cap channel 26c and the inject position and cause the bearing assembly arrangement 24 to allow the first part 22e of the slider 22 to float above the inner channel sealing arrangement 26c as the roller bearings 24a ride along the intermediate lower surfaces 22c1, 22c2 when the slider 22 is in transition between the inject position (
FIG. 6
[0046]
[0047] In operation, the slider 22 is configured to move from the transition position to the rinse position and cause the bearing assembly arrangement 24 to force the second part 22f of the slider 22 to push against the inner channel sealing arrangement 28 as the roller bearings 24a ride up the ramps 22a1, 22a3 to the raised portions 22b1, 22b2 when the slider is moved to the rinse position (see
FIG. 7
[0048]
[0049] In effect, the alternate slider/furnace cap design 40 operates similarly to the slider/furnace design 20, as follows:
[0050] For example,
[0051]
[0052]
[0053] In effect, the alternate slider/furnace cap design 40 moves from the transition position to the inject position and the rinse position in a manner similar to the slider/furnace cap design 20. For example, compare that shown in
FIG. 8
[0054]
[0055]
[0056]
[0057]
ALTERNATIVE EMBODIMENT
[0058] In a still alternative embodiment, the 2-bearing design in
Double Hammer Design
[0059] An alternate version of the present invention may include a double hammer-like design, where each hammer would alternate between forming a seal on the top of the furnace, e.g., with one hammer serving as the Inject/Waste port, and the other hammer serving to provide the carrier gas port. This would likely provide the increased O-ring life, but at the expense of cost and complexity and a significant loss of sealing while the hammers are alternating.
The Scope of the Invention
[0060] While the invention has been described with reference to an exemplary embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, may modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment(s) disclosed herein as the best mode contemplated for carrying out this invention.