ICE-MELTING BI-DIRECTIONAL EXHAUST DIVERTER WITH SELECTABLE FLOW CONTROL
20170002715 ยท 2017-01-05
Inventors
Cpc classification
F01N13/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2240/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An ice-melting exhaust diverter with selectable flow control is disclosed. The ice-melting exhaust diverter includes an exhaust inflow opening configured to receive exhaust from an internal combustion engine, a first exhaust outflow opening configured to release exhaust rearward, a second exhaust outflow opening configured to release exhaust downward, and a diverter plate having a selectable control to direct exhaust flow rearward or downward through either the first outflow opening or the second outflow opening, respectively.
Claims
1. An ice-melting exhaust diverter with selectable flow control, the exhaust diverter comprising: an inflow exhaust conduit configured to receive exhaust from a combustion engine; a first outflow exhaust conduit configured to release exhaust rearward; a second outflow exhaust conduit configured to release exhaust downward; and a selectable flow controller configured to selectably direct exhaust from the inflow exhaust conduit either rearward through the first outflow exhaust conduit, or downward through the second outflow exhaust conduit.
2. The ice-melting exhaust diverter of claim 1, wherein the selectable flow controller includes a diverter plate and a selectable control, the diverter plate being movable by the selectable control so as to obstruct one of the first outflow exhaust conduit, or the second outflow exhaust conduit.
3. The ice-melting exhaust diverter of claim 2, wherein the selectable control includes a rotating arm connected to the diverter plate.
4. The ice-melting exhaust diverter of claim 3, wherein the selectable control includes a selector arm connected to the rotating arm.
5. The ice-melting exhaust diverter of claim 4, wherein the selector arm is connected to a control cable that runs from the selectable flow controller to an operational location.
6. The ice-melting exhaust diverter of claim 5, wherein the operational location is inside an automobile trunk.
7. The ice-melting exhaust diverter of claim 1, wherein the inflow exhaust conduit attaches directly to a muffler connected to a combustion engine exhaust system.
8. The ice-melting exhaust diverter of claim 1, wherein an opening of the second outflow exhaust conduit configured to release exhaust downward is substantially parallel to the ground.
9. The ice-melting exhaust tail pipe of claim 1, wherein an opening of the second outflow exhaust conduit configured to release exhaust downward s configured to be at an angle of approximately 45 degrees to the ground.
10. An ice-melting automotive exhaust apparatus comprising: a remote-located selector; and a bi-directional exhaust flow diverter having: an exhaust inflow opening, an exhaust outflow rearward opening, an exhaust outflow downward opening, and an exhaust flow diverter plate configured to direct exhaust flow from the exhaust inflow opening, to either the exhaust outflow rearward opening or the exhaust outflow downward opening; wherein the remote-located selector is operatively connected to the exhaust flow diverter plate, and positions the exhaust flow diverter plate so as to obstruct one of the exhaust outflow rearward opening and the exhaust outflow downward opening.
11. The apparatus of claim 10, wherein the remote-located selector includes a cable running from an automobile trunk to a selector arm controlling the exhaust flow diverter plate.
12. The apparatus of claim 11, wherein the selector arm is connected to a rotating arm, and the rotating arm is connected to the diverter plate.
13. The apparatus of claim 11, wherein the remote-located selector is a tensioned cable connected to the selector arm.
14. The apparatus of claim 11, wherein the selector arm is connected to the rotating arm at an angle of approximately 90 degrees.
15. The apparatus of claim 10, wherein the exhaust outflow downward opening is configured at an angle of approximately 45 degrees with respect to the exhaust tail pipe.
16. The apparatus of claim 10, wherein the exhaust outflow downward opening is substantially parallel to a road surface.
17. The apparatus of claim 10, wherein the exhaust inflow opening attaches to a muffler on a vehicle having a combustion engine.
18. The apparatus of claim 10, wherein the exhaust outflow downward opening is a lateral flow spreader configured to spread out the flow of hot exhaust gases over a road surface.
19. A method of melting ice under a vehicle, comprising: operating an internal combustion engine over an icy road surface; selecting a downward direction for exhaust flow on a bi-directional exhaust diverter connected to the internal combustion engine; and melting ice on the icy road surface using the exhaust flowing downward from the bidirectional exhaust diverter to the icy road surface.
20. The method of claim 19, wherein selecting a downward direction for exhaust flow includes operating a remotely-located control cable connected to a selector arm so as to obstruct an exhaust outflow rearward opening, thereby directing exhaust flow through an exhaust outflow downward opening.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Many additional features and advantages of the present invention will become apparent from reading the following detailed description, when considered in conjunction with the drawings.
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] Directing attention now to the drawings,
[0027] Exhaust diverter 100 is a bi-directional exhaust flow director that directs exhaust emissions from a combustion engine that powers vehicle 10. When exhaust diverter 100 is in normal mode, exhaust flow is not diverted downward, and passes through diverter 100 to tailpipe 102 to exit vehicle 10 in a normal rearward direction. By contrast, when the exhaust diverter 100 is used to melt ice on the road surface below the vehicle 10, exhaust flow is diverted away from the tailpipe 102, so it can be directed downward towards ice on the road, the heat carried by the exhaust flow melting the ice.
[0028] Directing attention to
[0029] Again referring to
[0030] In some embodiments, diverter plate 110 is affixed to rotating arm 111 in an angular relationship such that diverter plate 110 obstructs one of two exit paths for exhaust flow within exhaust diverter 100, namely exhaust flow rearward and exhaust flow downward. Rotating arm 111 is connected to selector arm 106, typically in an angular relationship.
[0031] As shown in
[0032] Directing attention to
[0033] Directing attention to
[0034] The diverter plate 110 is held in place by tension on the cable of 107, which pulls on the selector arm 106, which pivots about rotating arm 111. As shown, diverter plate 110 is a simple flap-type valve that directs gas flow, and seats in one of two positions so as to effectively seal off one conduit against exhaust flow, and direct it towards and open the other conduit.
[0035] While an ice-melting exhaust diverter has been illustrated and described in detail in the embodiments described herein, various modifications can be made to these embodiments without departing from the spirit and scope as set forth in the following claims.