The present invention relates to an air knife apparatus for removing moisture from a moving web, and a method for forming the air knife apparatus. In particular, the present invention pertains to a unitary air knife apparatus that removes moisture from both sides of a moving web, and a method for forming the unitary air knife apparatus.
During processing of a moving web of material, the web may be subjected to a variety of processing conditions, such as coating, curing, drying, stretching, converting, etc. An air knife assembly is often a part of a web processing line such as a horizontal wet-process circuit-making assembly line. The air knife assembly is frequently disposed along a section of the web processing line in order to sweep fluid off of a surface of the web, such as a circuit, and to dry the web by blowing hot air onto the surface of the web.
Current air knife assemblies, however, do not function as effectively and consistently as desired. First, they do not effectively remove moisture from the surface of the web. Therefore, when the web is dried by hot air, the remaining moisture on the web evaporates, resulting in a stain on the web. A web that contains a stain may be considered a defective product, resulting in a major source of yield loss. The failure to remove all the moisture is often due to a large distance between the air knife and the web, an inconsistent distance between the air knife and the web, or an inconsistent or improper angle of impingement of the air flow provided by the air knife.
Second, current air knife assemblies are difficult to remove for cleaning and difficult to replace after cleaning. To remove current air knife assemblies for cleaning, tools are often required. Therefore, because removal is an inconvenience, the air knife assembly may not be cleaned as often as it should be cleaned. Additionally, after removal, cleaning, and replacement, the air knife assembly may be replaced with misaligned angles and distances between the air knife and the web, leading to ineffective moisture removal.
In a first aspect, the present invention is directed to an air knife apparatus for removing moisture from the surface of a web. The air knife apparatus includes a top tube, a bottom tube, a connector and an air manifold. The top tube extends generally horizontally over a section of the web. The bottom tube is parallel to the top tube and is spaced a fixed distance below the top tube to define a web path therebetween. The top tube and the bottom tube have a plurality of openings for directing air onto top and bottom surfaces of the web, respectively. The connector and the air manifold are permanently attached to ends of the top tube and the bottom tube.
In a second aspect, the present invention is further directed to a method for forming an air knife apparatus. The method includes aligning a first pair of hollow elongated members in a parallel relationship, each hollow member having a first end and a second end and an interior air chamber, and a plurality of air outlet apertures extending linearly between the first end and the second end of each hollow member. Then, permanently affixing a common connector to the first end of each hollow member. Finally, permanently affixing a common manifold to the second end of each hollow member, the manifold having a cavity therein which is in fluid communication with the interior air chambers of both of the hollow members, with the hollow members being spaced apart a distance sufficient to define a non-contacting web flow path therebetween.
In a third aspect, the present invention is further directed to a method for simultaneously drying moisture on both major surfaces of a moving web that is traversing a web processing path. The method includes directing a top air drying curtain at the top surface of the web from a top air nozzle assembly, the top air drying curtain projecting in an upweb direction from a fixed distance from the top surface of the web. Then directing a bottom air drying curtain at the bottom surface of the moving web from a bottom air nozzle assembly, the bottom air drying curtain projecting in an upweb direction from a fixed distance from the bottom surface of the web. Finally, connecting the top and bottom air nozzle assemblies together to form a unitary air knife assembly having a horizontally aligned web travel path defined between the top and bottom air drying curtains of the top and bottom air nozzle assemblies, wherein the unitary air knife assembly is separably removable from the web processing path for service.
The above summary is not intended to describe each disclosed embodiment or every implementation of the present invention. The figures and the detailed description, which follow, more particularly exemplify illustrative embodiments.
The present invention will be further explained with reference to the drawing figures listed below, where like structure is referenced by like numerals throughout the several views.
While the above-identified drawing figures set forth one embodiment of the invention, other embodiments are also contemplated, as noted in the discussion. In all cases, this disclosure presents the invention by way of representation and not limitation. It should be understood that numerous other modifications and embodiments can be devised by those skilled in the art, which fall within the scope and spirit of the principles of the invention. The figures may not be drawn to scale.
The present invention is an air knife apparatus for removing moisture from a surface of a moving web.
The first top tube 14 and the second top tube 16 extend generally horizontally parallel to one another. The first bottom tube 18 and the second bottom tube 20 likewise extend generally horizontally parallel to one another. The first bottom tube 18 and the second bottom tube 20 are spaced at a fixed distance below the first top tube 14 and the second top tube 16 to define a web path 44 therebetween for the web 12. The first top tube 14, the second top tube 16, the first bottom tube 18 and the second bottom tube 20 are attached to the common connector 22 and the common air manifold 24. The common connector 22 and the common air manifold 24 are in turn, removably secured to the pair of mounting brackets 26 and 28. The mounting brackets 26 and 28 are secured relative to a web processing assembly that defines a web processing path traveled by the web 12. In one embodiment, the web path 44 is aligned to be generally horizontal along the web processing path. The common air manifold 24 has a cavity 30 therein for receiving air from a hose 31 connected to a pressurized air source (not shown). The cavity 30 transfers air to interior chambers 14a, 16a, 18a and 20a (
The web 12 moves past the air knife apparatus 10 in the direction indicated by arrows 25 in
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Mounting brackets 26 and 28 are secured to the web processing assembly by any suitable fastening means, such as by a friction fit or by mounting screws. Mounting brackets 26 and 28 are spaced apart laterally across the web flow path 44 at a width to suit the width of the web processing assembly. For example, typical web widths may be 8, 12, 14, 20 or 30 inches (2.03, 3.05, 3.56. 5.08 or 7.62 decimeters), and typical web thickness may be 2-3 mils (0.005-0.076 millimeters). The width of the mounting brackets 26 and 28 can be easily modified to suit different web processing assembly widths so that the air knife apparatus 10 can be used with various web processing assemblies.
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In one embodiment of the present invention, each of the top tubes 14 and 16 and each of the bottom tubes 18 and 20 is made from a stainless steel material such as 316 stainless steel. Also, each of the top tubes 14 and 16 and each of the bottom tubes 18 and 20 have an outside tube diameter of ⅜ inch (9.53 millimeters) and an inside tube diameter of 0.277 inch (7.036 millimeters). The vertical distance between the openings of the top tubes 14 and 16 and the top surface 12a of the passing web 12 is about ⅛ inch (3.175 millimeters). The vertical distance between the openings of the bottom tubes 18 and 20 and the bottom surface 12b of the passing web 12 is about ⅛ inch (3.175 millimeters). The common connector 22 and the common manifold 24 are made from a stainless steel material such as 316 stainless steel. Additionally, the mounting brackets 26 and 28 are made from a polymeric material such as polyvinyl chloride.
In one embodiment, each of the top tubes 14 and 16 and each of the bottom tubes 18 and 20 have 79 linearly aligned circular openings extending between its first end and its -second end, on an upstream side of the tube, for directing air onto the respective surface of the web 12. In one embodiment, the openings allow a sufficient amount of air to be directed onto the surface of the web 12 to achieve effective removal of moisture. In one embodiment, each of the linearly aligned openings is circular, having a diameter of about 1/32 inch (0.795 millimeters). These openings are spaced about ¼ inch (6.350 millimeters) apart, measuring from the center of one opening to the center of an adjacent opening. The openings of each of the tubes are oriented at an acute angle from as shallow as about five degrees (0.0873 radians), or even about eight degrees (0.1396 radians), relative to vertical. The openings could also be oriented at an acute angle up to about 12 degrees (0.2094 radians), or even about fifteen degrees (0.2618 radians), relative to vertical.
Although the present invention has been described with reference to preferred embodiments, workers skilled in the art will recognize that changes may be made in form and detail without departing from the spirit and scope of the invention.