Hot Air Nozzle and its Production Method
20170336098 ยท 2017-11-23
Assignee
Inventors
Cpc classification
International classification
Abstract
The invention is directed to a nozzle for a hot air device used in the electronic assembly industry to melt solder or heat shrink-wrap insulators. The nozzle provides a uniform temperature environment and suppresses the occurrence of local excess heating.
Claims
1. A hot air nozzle for use with a hot air blowing device or system, the hot air nozzle comprising: a convection box secured to a connection cylinder extending from a baffle plate and an insertion cylinder removeably secured to a hot air blowing device; wherein said convection box includes an end wall and side walls defining a convection space, said end wall having at least one air inlet orifice and spaced apart exhaust ports whereby hot air exhausting from said convection space impinges upon said baffle plate positioned opposing said end wall and spaced apart by a length of said connection cylinder.
2. The hot air nozzle of claim 1, wherein said connection cylinder further comprises: an outer cylinder and an inner cylinder that projects into the outer cylinder.
3. The hot air nozzle of claim 2, wherein said connection cylinder further comprises: said outer cylinder made from the same piece as said end wall of the convection box and said inner cylinder is made from the same piece as the baffle plate.
4. The hot air nozzle of claim 3, wherein said outer cylinder is formed by a burring process and said inner cylinder is formed by a deep drawing or stamping of a metal plate process.
5. The hot air nozzle of claim 2, wherein said inner cylinder further comprises a generally cup shaped structure with the bottom of the cup shaped structure cut to form at least one hole for the passage of hot air to the convection box.
6. The hot air nozzle of claim 2 wherein said outer cylinder is securely affixed to said inner cylinder.
7. The hot air nozzle of claim 2 wherein said outer cylinder is removably affixed to said inner cylinder.
8. The hot air nozzle of claim 1 wherein said convection box is removably secured to said connection cylinder whereby a plurality of convection boxes having various sizes and shapes may be secured to a common connection cylinder.
9. A hot air nozzle for use with a hot air blowing device or system, the hot air nozzle comprising: a convection box having an end wall having a hot air inlet and side walls extending from said end wall; a connection cylinder; a baffle plate; and an insertion cylinder, said insertion cylinder attached at its distal end to said baffle plate, said insertion cylinder configured to be attached securely to said hot air blowing device; wherein said connection cylinder extends between said baffle plate and said convection box whereby exhaust ports formed in said end wall of said convection box are oppositely disposed to said baffle plate whereby hot air exhausting from said convection box impinges upon said baffle plate.
10. The hot air nozzle of claim 9, wherein said connection cylinder further comprises: an inner cylinder integrally formed with said baffle plate; and an outer cylinder integrally formed with said end wall of said convection box, said outer cylinder having an inner diameter sized to fit over said inner cylinder.
11. The hot air nozzle of claim 9, wherein said convection box is removably secured to said connection cylinder.
12. A process for fabricating a hot air nozzle for use with a hot air blowing device or system, the process comprising: cutting a metal plate to form an end wall and side walls, cutting holes in said end wall, forming a cylindrical flange extending from said end wall, and bending said sidewalls at their intersection with the edges of the end wall to form a convection box having an end wall having a hot air inlet and side walls extending from said end wall; forming a baffle plate including a cup shaped axial cylinder; and forming an insertion cylinder and attaching said insertion cylinder at its distal end to said baffle plate; fitting said cylindrical flange of said end wall of said convection box over said cup shaped axial cylinder of said baffle plate.
13. The process of claim 12 wherein said step of forming said baffle plate comprises a deep draw or stamping process.
14. The process of claim 12 wherein said step of forming a cylindrical flange extending from said end wall comprises a burring process.
15. The process of claim 12 wherein said baffle plate is formed from steel or aluminum.
16. The process of claim 12 wherein said convection box is formed from steel or aluminum.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION OF THE INVENTION
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[0013] As it may be seen from the cross section of
[0014] The connection cylinder 36 is formed by inserting the inner cylinder 62 into the outer cylinder 60. The inner cylinder 62 and the outer cylinder 60 may be integrated by welding or press fitting. Alternatively, the inner cylinder 62 and the outer cylinder 60 may be made detachable, so that convection boxes 32 having various sizes and shapes may be used with a common insertion cylinder 40 and baffle plate 38. Preferably, the hot air nozzle 30 is made in three pieces, the convection box 32 including the outer cylinder 60, the baffle plate 38 including the inner cylinder 62, and the insertion cylinder 40. It should be noted that while the convection box 32 depicted and described herein is formed in the shape of an open-ended cube, the convection box 32 may be formed to define other shapes, including cylinders and elongated rectangles configured to fit over the various shapes of electrical circuit components.
[0015] To illustrate the fabrication process,
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[0018] The spacing between the opposing faces of the end wall 50 of the convection box 32 and the baffle plate 38 created by the length of the connection cylinder 36 allows the heated air to exhaust from the convection box 32 through the exhaust ports 56 and the exhausting hot air flow impinges on the baffle plate 38 and is thereby deflected radially outward so as to avoid injuring the user's hand holding the handle section 12 at the insulated grip 16. Preferably, the baffle plate 38 is slightly larger than the end wall 50. Due to the height of the side walls 52, the hot air is exhausted sufficiently above the work surface and the electrical components mounted thereupon to avoid damaging the surrounding circuitry.
[0019] In operation, the convection box 32 defines a convection space. The convection box 32 is placed over the surface of the substrate to be heated with the distal edges of the side walls abutting the surface of the substrate, for example a printed circuit board (PCB), and the peripheral side walls 52 prevent the hot air from flowing onto surrounding electric components. The shape of the end wall 50 is preferably the same as the shape defined by the distal edges of the side walls. Hot air enters the convection box 32 via the holes 64 and 66. The hot air is convected in the convection space exhausting through the exhaust ports 56. Therefore, electronic components adjoining the targeted component are not exposed to thermal energy of the hot air. Hot air from the hole is convected in the convention space and the thermal energy is transmitted to the targeted element properly.
[0020] The convection space in the convection box 32 extends from the holes 64 and 66 to the peripheral side walls 52 and the surface of the workpiece. As a result, hot air provides thermal energy to the targeted electronic component uniformly without causing excessive low temperature or high temperature locally. The user can dismount electrical components with high reliability.
[0021] To transmit thermal energy to a heated object such as a solder connection, an electronic element or a substrate, it is preferable to circulate hot air uniformly inside a nozzle's convection box. The present invention provides a convection box having a simple structure which can convect hot air in a confined space bounding the object to be heated. Those skilled in the art will readily appreciate that the disclosure herein is meant to be exemplary and actual parameters, shapes and materials depend upon the specific application for which the present invention is intended. The foregoing embodiments are presented by way of example while the scope of the invention is defined by the appended claims and equivalents thereto.