FUMING ENCLOSURE WITH SELECTIVE HEATING APPARATUS
20180245848 ยท 2018-08-30
Assignee
Inventors
Cpc classification
F27M2003/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A fuming enclosure including a heating element and a moveable support or barrier. The heating element may heat a receptacle containing a volatile component. The moveable support or barrier is moveable between a first position, in which the volatile component is not heated by the heating element, and a second position, in which the volatile component is heated by the heating element. The moveable support or barrier may be moveable while maintaining the enclosure sealed. The moveable support or barrier may be automatically moveable. A fuming enclosure with a one-way seal configured to prevent fumes from escaping the enclosure and allow volatile component to flow through the seal into the enclosure while the enclosure is sealed.
Claims
1. A fuming enclosure in which the fumes of a volatile component may be circulated, said fuming enclosure comprising: a. outer walls defining an enclosure having a sealed interior; b. a heating element positioned within said interior, said heating element operable to be energized to heat a receptacle containing a volatile component to a specified temperature when said receptacle is positioned in contact with at least a portion of said heating element; and c. a moveable support positioned within said interior, said support configured to hold said receptacle within said interior in a non-contact position such that the receptacle is not in contact with the heating element, and configured to move said receptacle to a contact position such that the receptacle is in contact with said heating element while maintaining the enclosure sealed.
2. The enclosure of claim 1, wherein said moveable support is configured to move said receptacle to the contact position with said heating element after said heating element has been energized.
3. The enclosure of claim 1, wherein said enclosure additionally comprises at least one door providing access to said interior, said at least one door operable to be locked to prevent access to said interior when said heating element is energized and said moveable support is configured to move said receptacle to the contact position while said at least one door is locked.
4. The enclosure of claim 1, wherein said moveable support is operable to be manually moved by a user from outside said enclosure via an actuator extending through said outer walls.
5. The enclosure of claim 1, wherein said moveable support is operable to automatically move said receptacle to the contact position upon at least a portion of said heating element reaching a pre-selected temperature.
6. The enclosure of claim 5, wherein said moveable support is electro-mechanically controlled by a microprocessor.
7. The enclosure of claim 6, wherein said microprocessor is in communication with said heating element and said moveable support such that said microprocessor directs movement of said moveable support upon said heating element reaching a pre-selected temperature.
8. The enclosure of claim 1, wherein said moveable support comprises a platform having an upper surface that supports said receptacle above said heating element in the non-contact position, said moveable support operable to be removed from underneath said receptacle to cause the receptacle to drop onto at least a portion of the heating element in the contact position.
9. The enclosure of claim 1, wherein said moveable support comprises a moveable arm that holds said receptacle in the non-contact position and is operable to move said receptacle to the contact position.
10. The enclosure of claim 1, wherein said moveable support has a first surface facing said heating element in the non-contact position and a second surface facing said receptacle in the non-contact position and wherein said moveable support comprises an insulating material that inhibits heat flow from said first surface to said second surface.
11. The enclosure of claim 1, wherein said enclosure is a fingerprint processing cabinet and said volatile component comprises cyanoacrylate.
12. The enclosure of claim 1, wherein said enclosure is configured to enable a user to elect to manually position said receptacle in contact with said heating element before said heating element is energized or to utilize said moveable support to position said receptacle in the contact position after said heating element is energized.
13. An apparatus for selectively heating a volatile component in a sealed fuming enclosure, said apparatus comprising: a heating element having a heating surface capable of heating a receptacle containing a volatile component to a pre-selected temperature when the receptacle is placed in contact with said heating surface; and a moveable support configured to hold said receptacle in a non-contact position such that the receptacle is not in contact with the heating surface, and configured to automatically position said receptacle in a contact position such that the receptacle is in contact with said heating surface.
14. The apparatus of claim 13, wherein said moveable support comprises a moveable platform that supports said receptacle away from said heating surface in the non-contact position and is moved to deliver said receptacle in the contact position upon the heating surface reaching a pre-selected temperature.
15. The apparatus of claim 14, wherein said moveable platform has an upper surface that supports said receptacle above said heating surface in the non-contact position and is operable to be removed from underneath said receptacle to cause the receptacle to drop onto the heating surface in the contact position.
16. The apparatus of claim 13, wherein said moveable support comprises a moveable arm that holds said receptacle in the non-contact position and is automatically moved to deliver said receptacle in the contact position upon the heating surface reaching a selected temperature.
17. The apparatus of claim 13, wherein said moveable support is electro-mechanically controlled by a microprocessor.
18. The apparatus of claim 17, wherein said microprocessor is in communication with said heating element and said moveable support such that said microprocessor directs movement of said moveable support upon said heating element reaching a pre-selected temperature.
19. The apparatus of claim 13, wherein said moveable support has a first surface facing said heating surface in the non-contact position and a second surface facing said receptacle in the non-contact position and wherein said moveable support comprises an insulating material that inhibits heat flow from said first surface to said second surface.
20. A fuming enclosure in which the fumes of a volatile component may be circulated, said fuming enclosure comprising: a. outer walls defining an enclosure having a sealed interior; b. a heating element positioned within said interior, said heating element operable to be energized to heat a receptacle containing a volatile component to a specified temperature; and c. a moveable barrier positioned within said interior, said barrier configured to be positioned in a blocking position between said receptacle and said heating element in such a manner as to inhibit the transfer of heat from said heating element to said receptacle and to be moved to a non-blocking position that does not inhibit the transfer of heat from said heating element to said receptacle while maintaining the enclosure sealed.
21. The enclosure of claim 20, wherein said barrier is configured to be moved to said non-blocking position after said heating element has been energized.
22. The enclosure of claim 20, wherein said enclosure additionally comprises at least one door providing access to said interior, said at least one door operable to be locked to prevent access to said interior when said heating element is energized and said barrier is configured to be moved to said non-blocking position while said at least one door is locked.
23. The enclosure of claim 22, wherein said enclosure is a fingerprint processing cabinet and said volatile component comprises cyanoacrylate.
24. The enclosure of claim 22, wherein said enclosure is configured to enable a user to elect to manually position said receptacle adjacent said heating element without the moveable barrier positioned therebetween before said heating element is energized or to utilize said moveable barrier to inhibit the transfer of heat to the receptacle after said heating element is energized.
25. The enclosure of claim 20, wherein said moveable barrier is operable to be manually moved by a user from outside said enclosure via an actuator extending through said outer walls.
26. The enclosure of claim 20, wherein said moveable barrier is operable to be automatically moved to the non-blocking position upon at least a portion of said heating element reaching a pre-selected temperature.
27. The enclosure of claim 26, wherein said moveable barrier is electro-mechanically controlled by a microprocessor.
28. The enclosure of claim 27, wherein said microprocessor is in communication with said heating element and said moveable barrier such that said microprocessor directs movement of said moveable barrier upon said heating element reaching a pre-selected temperature.
29. An apparatus for selectively heating a volatile component in a closed fuming enclosure, said apparatus comprising: a heating element having a heating surface capable of heating a receptacle containing a volatile component to a specified temperature; and a moveable barrier configured to be positioned in a blocking position between said receptacle and said heating surface in such a manner as to inhibit the transfer of heat from said heating surface to said receptacle and to be automatically moved to a non-blocking position that does not inhibit the transfer of heat from said heating surface to said receptacle upon said heating surface reaching a pre-selected temperature.
30. The apparatus of claim 29, wherein said moveable barrier supports said receptacle above said heating surface in the blocking position.
31. The apparatus of claim 29, wherein said barrier is electro-mechanically controlled by a microprocessor.
32. The apparatus of claim 31, wherein said microprocessor is in communication with said heating element and said moveable barrier such that said microprocessor directs movement of said moveable barrier upon said heating element reaching a pre-selected temperature.
33. The apparatus of claim 29, wherein said moveable barrier has a first surface facing said heating surface in the blocking position and a second surface facing said receptacle in the blocking position and wherein said moveable barrier comprises an insulating material that inhibits heat flow from said first surface to said second surface.
34. A fuming enclosure in which the fumes of a volatile component may be circulated, said fuming enclosure comprising: a. outer walls defining an enclosure having a sealed interior; b. a heating element positioned within said interior, said heating element operable to be energized to heat a receptacle containing a volatile component to a specified temperature when said component is positioned within said receptacle; and c. a one-way seal operable to receive a conduit extending through a portion of said outer walls from outside said enclosure into said interior adjacent said receptacle, said seal configured to prevent the flow of material from within said interior to the outside of said enclosure and to permit the flow of said volatile component through said conduit into said receptacle within said interior while maintaining the enclosure sealed.
35. The enclosure of claim 34, wherein said enclosure additionally comprises at least one door providing access to said interior, said at least one door operable to be locked to prevent access to said interior when said heating element is energized, and said seal is configured to permit the flow of volatile component through said conduit into said receptacle within said interior while said at least one door is locked.
36. The enclosure of claim 34, wherein said seal is configured to allow a user to manually insert said conduit through said seal and dispense said volatile component through the conduit into the receptacle while maintaining the enclosure sealed.
37. The enclosure of claim 34, wherein said seal is operable to permit the flow of said volatile component through said conduit into said receptacle after said heating element is energized.
38. The enclosure of claim 37, wherein said seal is operable to permit the flow of said volatile component through said conduit into said receptacle after said heating element has reached a pre-selected temperature.
39. The enclosure of claim 38, wherein said seal is electro-mechanically controlled by a microprocessor.
40. The enclosure of claim 39, wherein said microprocessor is in communication with said heating element and said seal such that said microprocessor directs operation of said seal upon said heating element reaching a pre-selected temperature.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENT
[0029] A fuming enclosure in accordance with one embodiment of the invention disclosed herein is identified generally as 10 in
[0030] As described in detail herein, fuming enclosure 10 is operable to heat a volatile component either using a conventional method, in which the volatile component is placed in contact with a heating element before the heating element is heated to a desired temperature, or a microburst method, in which the volatile component is placed in contact with a heating element that has already been heated to a desired temperature. When used with the microburst method, fuming enclosure 10 is designed to automatically place the volatile component in contact with the heating element when the heating element reaches the desired temperature while maintaining the enclosure 10 sealed to enhance safety, precision control, and repeatability. It is within the scope of the invention, however, for an operator to manually place the volatile component in contact with the heating element.
[0031] Referring to
[0032] Top wall 26, bottom wall 28, side wall 32, rear wall 34, and interior wall 36 enclose an equipment chamber 46, within which is positioned heating apparatus 14, humidification system 16, recirculation system 18, exhaust system 20, and portions of control system 22. Front wall 24 includes a pair of openings and corresponding access doors 48 and 50. Access door 48 is moveable between a closed position, in which it seals equipment chamber 46 and an open position, in which it provides access to humidification system 16 allowing a user to add water to the system. Access door 50 is moveable between a closed position, in which it seals equipment chamber 46 and an open position, in which it provides access to heating apparatus 14 allowing a user to position a volatile component in the heating apparatus 14. Interior wall 36 includes a recirculation opening 52 to place interior 42 in fluid communication with recirculation system 18, a humidification opening 54 to place interior 42 in fluid communication with humidification system 16, and a fuming opening 56 to place interior 42 in fluid communication with heating apparatus 14. Interior wall 36 also preferably includes an exhaust inlet (not shown) that is positioned behind fuming opening 56 to place interior 42 in fluid communication with exhaust system 20. Rear wall 34 preferably includes an exhaust outlet (not shown) to place exhaust system 20 in fluid communication with the atmosphere surrounding the fuming enclosure 10.
[0033] Heating apparatus 14, shown in
[0034] The heating element 64 has a heating surface that is operable to be energized to heat a receptacle 70 containing a volatile component to a specified, pre-selected temperature when the receptacle 70 is positioned in contact with or is close to the heating element 64. Heating element 64 is preferably heated with electricity and is capable of heating to a temperature between approximately 37 to 315 degrees Celsius in 1 degree increments.
[0035] Frame 68 includes four legs, one of which is identified as 72 in
[0036] Moveable support 66 is moveable from a non-contact position shown in
[0037] Insulating material 88 inhibits heat flow from first surface 90 to second surface 92, which is advantageous to prevent the undesired heating of a volatile component in receptacle 70 when heating element 64 is energized and moveable support 66 is in the non-contact position. Insulating material 88 preferably prevents the temperature of second surface 92 from increasing more than 15 degrees Celsius when heating element 64 is energized. Insulating material 88 is preferably selected from the group consisting of calcium silicate, silica ceramic, polytetrafluoroethylene, monolithic aerogel, and laminates and combinations of any of the foregoing. In certain embodiments, insulating material 88 may include a laminate comprising calcium silicate and polytetrafluoroethylene, a laminate comprising silica ceramic and polytetrafluoroethylene, and/or a laminate comprising polytetrafluoroethylene and monolithic aerogel.
[0038] With the insulating material 88 positioned between the heating element 64 and the volatile component in receptacle 70 when the receptacle 70 is in the non-contact position, the moveable arm 66 acts as a moveable barrier. The moveable arm 66 or barrier is moveable between the non-contact, or blocking position, in which the moveable arm 66 inhibits the transfer of heat from the heating element 64 to the receptacle 70, and the contact, or non-blocking position, in which the moveable arm 66 does not inhibit the transfer of heat from the heating element 64 to the receptacle 70 while the interior 42 and equipment chamber 46 remain sealed. Although in the embodiments shown in
[0039] The mounting portion 84b of moveable arm 84 is mounted to a rotating assembly that includes a post 94 and a plate 96. Post 94 extends upward through an opening in top surface 74 of frame 68. Post 94 is rotatable within the opening in top surface 74. A fastener 98 is received by a threaded opening in post 94 to mount moveable arm 84 to post 94. A washer 100 is positioned between fastener 98 and moveable arm 84, and a spacer 102 is positioned between moveable arm 84 and top surface 74. Plate 96 is joined to post 94 and includes a slot 104 that receives a pin 106. The pin 106 is joined to and extends upward from a pull shaft 108. Pin 106 is preferably a screw that is received within a threaded opening of pull shaft 108, but may be joined to pull shaft 108 in any manner. Pull shaft 108 is supported by openings in heating enclosure 58 and front wall 24. The openings are preferably sealed to prevent fumes and contaminants from entering or existing the heating enclosure 58 and fuming enclosure 10. A knob 110 is mounted to an end of pull shaft 108 adjacent an exterior side of front wall 24, as shown in
[0040] An electromechanical solenoid 118 is mounted to a portion of heating enclosure 58 above pull shaft 108. Solenoid 118 includes a rod 120 that is moveable between the extended position shown in
[0041] When pull shaft 108 is in the non-contact position shown in
[0042] Although fuming enclosure 10 is shown with a pull shaft 108 that moves the moveable support 66, another type of actuator may be used to move the moveable support 66. Further, rather than using solenoid 118 to move the pull shaft 108 and moveable support 66 from the non-contact position to the contact position, fuming enclosure 10 may include structure for manually moving the pawl 124 upward out of engagement with slot 128.
[0043] Humidification system 16 is positioned within equipment chamber 46 above heating apparatus 14. Humidification system 16 includes a humidifier 130, shown in
[0044] Recirculation system 18 is positioned within equipment chamber 46 above humidification system 16. Recirculation system 18 includes a recirculation blower 134 (
[0045] Exhaust system 20 (
[0046] Control system 22 (
[0047] Microprocessor 140 is electrically coupled to solenoid 118 for controlling movement of pull shaft 108 and moveable support 66 from the non-contact position shown in
[0048] An alternative embodiment of heating apparatus 200 for use with fuming enclosure 10 is shown in
[0049] Moveable arm 216 is moveable between the non-contact position shown in
[0050] First section 216a of moveable arm 216 may extend outside of the side wall 12 (
[0051] Another alternative embodiment of heating apparatus 300 for use with fuming enclosure 10 is shown in
[0052] An opening 316 is formed in the side of heating enclosure 302. A one-way seal 318 is received by opening 316 and prevents air, fumes, and contaminants within the heating enclosure 302 from passing through opening 316 to the exterior of the fuming enclosure 10. Seal 318 includes a cylindrical base 320 that is positioned outside of the heating enclosure 302 and a conical section 322 that extends from the cylindrical base 320 into heating enclosure 302. The end of conical section 322 includes a slit 324 that is naturally biased to a closed position, as shown in
[0053] Seal 318 and conduit 326 may be operated manually or automatically. In manual operation, a user preferably fills conduit 326 with a volatile component, inserts the conduit 326 through the slit 324, and then dispenses the volatile component 328 into the receptacle 314. The user may dispense the volatile component 328 into the receptacle 314 either before the heating element 306 is energized or after the heating element 306 reaches a desired temperature. The user may dispense the volatile component 328 physically by, for example, squeezing a bulb on the end of the conduit 326. Alternatively, if the seal 318 and conduit 326 are electrically coupled to a dispensing system, such as a metering pump, user may manually initiate the dispensing of volatile component 328 through the conduit 326 by activating the dispensing system. Seal 318 is configured to allow a user to manually insert conduit 326 through the seal 318 and dispense the volatile component 328 through the conduit 326 into the receptacle 314 while doors 38, 48, and 50 are locked and sealed.
[0054] If the seal 318 and conduit 326 are operated automatically, preferably, seal 318 and conduit 326 are electrically connected to microprocessor 140 so that microprocessor 140 can automatically control the dispensing of volatile component 328 through the seal 318 and conduit 326. In one embodiment, conduit 326 may be connected to an automated dispensing system including a metering pump. The automated dispensing system may be electrically connected to microprocessor 140 so that microprocessor 140 can send instructions to activate and deactivate the automated dispensing system as desired. For example, the microprocessor 140 may send instructions to activate the automated dispensing system to pump volatile component 328 through seal 318 and conduit 326 into receptacle 314 when the heating element 306 reaches a specified, pre-selected temperature. After a desired amount of volatile component is pumped into receptacle 314, the microprocessor 140 may send instructions to deactivate the automated dispensing system. When operated automatically, seal 318 permits the flow of volatile component 328 through conduit 326 into the receptacle 314 within heating enclosure 302 while doors 38, 48, and 50 are locked and sealed and heating element 306 is energized and has reached a pre-selected temperature.
[0055] In operation, as shown in
[0056] In the traditional method, moveable arm 66 is moved to the contact position shown in
[0057] At step 406, control system 22 instructs humidification system 16 to begin raising the relative humidity level within interior 42 until the desired relative humidity level is reached as sensed by relative humidity sensor 144. Control system 22 also instructs recirculation system 18 to blow air through the humidification system 16 to assist in raising the relative humidity level within interior 42. Once the desired relative humidity level within interior 42 is reached, which is preferably around 80%, control system 22 instructs humidification system 16 to shut off. Control system 22 then instructs heating element 64 to begin heating at step 408. Heating element 64 energizes and begins heating receptacle 70 and the volatile component placed therein. At step 410, the volatile component within receptacle 70 begins to change phase from a solid or liquid to a gas as it is heated. Recirculation system 18 blows through heating apparatus 14 to distribute the heated volatile component fumes throughout interior 42. Heating element 64 increases in temperature until heating element temperature sensor 146 senses that the desired heating element temperature has been reached at step 412, which is preferably between 37 to 315 degrees Celsius. At this time, control system 22 manages power to the heating element 64 to maintain heating element at a user-desired pre-selected temperature. As the recirculation system 18 distributes the volatile component fumes through interior 42, the fumes react with latent fingerprints on the objects placed within interior 42 to make the fingerprints visible at step 414.
[0058] After the heating element 64 has been energized for a desired heating cycle run time, control system 22 instructs exhaust system 20 to turn on and exhaust all of the volatile component fumes from within interior 42 at step 416. Once all of the volatile component fumes have been exhausted from interior 42, the user may open door 38 to retrieve the items from within interior 42.
[0059]
[0060] Referring back to
[0061] As an alternative to the microburst method described above, moveable arm 66 may be a moveable barrier that is positioned between receptacle 70 and heating element 64 in a blocking position. Then, at step 432, the control system 22 sends a signal to the moveable barrier to move it into a non-blocking position, in which the receptacle 70 is placed adjacent the heating element 64 in a position where the heating element 64 can heat the volatile component within receptacle 70 and cause it to change phase from solid or liquid to gas. In the non-blocking position, the receptacle 70 does not necessarily need to be in direct contact with heating element 64.
[0062]
[0063] Use of fuming enclosure 10 in either the traditional method or the microburst method protects personnel from exposure to volatile component fumes and the risk of being burned by heating element 64 because the doors 38, 48, and 50 may all be shut, locked, and sealed before heating element 64 is energized. The doors 38, 48, and 50 preferably remain locked and sealed until exhaust system 20 has completed its exhaust cycle and exhausted substantially all of the fumes from interior 42.
[0064] If fuming enclosure 10 includes the alternative embodiment of heating apparatus 200, shown in
[0065] If fuming enclosure 10 includes the alternative embodiment of heating apparatus 300, shown in
[0066] From the foregoing it will be seen that this invention is one well adapted to attain all ends and objectives herein-above set forth, together with the other advantages which are obvious and which are inherent to the invention.
[0067] Since many possible embodiments may be made of the invention without departing from the scope thereof, it is to be understood that all matters herein set forth or shown in the accompanying drawings are to be interpreted as illustrative, and not in a limiting sense.
[0068] While specific embodiments have been shown and discussed, various modifications may of course be made, and the invention is not limited to the specific forms or arrangement of parts and steps described herein, except insofar as such limitations are included in the following claims. Further, it will be understood that certain features and subcombinations are of utility and may be employed without reference to other features and subcombinations. This is contemplated by and is within the scope of the claims.