DRYING NOZZLE
20190293349 ยท 2019-09-26
Inventors
Cpc classification
F26B21/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B13/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F26B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention is about a drying system to be applied on the central drum of a flexographic machine. The dryer is made of two concentric cylinders: the outer one having a slotor several slots with different thicknessesthe inner one having a slot with a trapezoid shape. By adjusting the relative position of the trapeze and the outer slot sets the effective size of the vent, which determines the air flow coming out of the dryer. This results in a simple and reliable way of configuring the drying of the print.
Claims
1. Drying nozzle for gassing a running printing substrate web (30) in a rotary printing machine, comprising a hollow nozzle body (10; 10, 10), which has a nozzle slot (12) extending transversely to the direction of travel of the printing substrate web (30), characterized in that the nozzle body (10; 10, 10) has an inner pipe (16) and an outer pipe (14) enclosing the inner pipe, which in their circumferential wall have at least one outlet opening (24, 26), and in that the nozzle slot (12) is formed by an overlapping zone of the outlet openings (24, 26) of the inner pipe and of the outer pipe and it can be adjusted by changing the angular position of the inner pipe relative to the outer pipe.
2. Drying nozzle according to claim 1, wherein the inner pipe (16) and the outer pipe (14) are cylindrical, and the inner pipe is rotatably supported inside the outer pipe.
3. Drying nozzle according to claim 1 or 2, wherein a first of the two pipes, the inner pipe (16) and the outer pipe (14), has a slot-shaped outlet opening (26), and the second of the two pipes has an outlet opening (24) extending over a larger circumferential angle as a slot-shaped outlet opening (26) and tapers in one direction.
4. Drying nozzle according to claim 3, wherein the slot-shaped outlet opening (26) is formed in the outer pipe (14).
5. Drying nozzle according to one of the preceding claims, in which at least one of the two pipes, the inner pipe (16) and the outer pipe (14), has a plurality of separate outlet openings (26), differing in width, distributed over the circumference.
6. Drying nozzle according to claim 2, wherein the inner pipe (16) and the outer pipe (14) each has a slot-shaped outlet opening (24, 26).
4. The drying nozzle of claim 3, wherein the slot-shaped outlet opening (26) is formed in the outer pipe (14).
5. The drying nozzle of claim 1, in which at least one of the two pipes, the inner pipe (16) and the outer pipe (14), has a plurality of separate outlet openings (26), differing in width, distributed over the circumference.
6. The drying nozzle of claim 2, wherein the inner pipe (16) and the outer pipe (14) each has a slot-shaped outlet opening (24, 26).
Description
[0013] Shown are:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019] The drying nozzle shown in
[0020] In the example shown, the outer pipe 14 is open at both ends, while the inner pipe 16 is closed at the ends by end walls 18. One of the end walls 18 carries an axle stub 20 that protrudes from the open end of the outer pipe 14 and thus allows the inner pipe 16 to rotate inside the outer pipe 14. The other end wall of the inner pipe 16 in
[0021] In the circumferential wall of the inner pipe 16, an outlet opening 24 is formed in trapezoidal shape in development, which at the base extends almost over the entire length of the inner pipe 16, but tapers in the circumferential direction A slot-shaped outlet opening 26 is formed in the circumferential wall of the outer pipe 14, the length of which approximately corresponds to the length of the trapezoidal outlet opening 24 at the base thereof and the width of which defines the width of the nozzle slot 12. This nozzle slot is formed by the overlapping zone between the outlet openings 24 and 26 and can thus be varied in its length (in the axial direction of nozzle body 10) by twisting the inner pipe 16 relative to the outer pipe 14. In this case, the axle stub 20 can serve as a rotary handle, to which also a motorized rotary drive can optionally engage, so that an automatic adjustment of the width of the nozzle slot 12 is made possible.
[0022] The outer circumferential surface of the inner pipe 16 can contact the inner circumferential surface of the outer pipe 14 over entire surface so that practically no drying air can escape through a gap formed between the inner and outer pipe. In another embodiment, the inner pipe and the outer pipe may also be separated by spacers (not shown) so that the friction resistance is reduced during rotation of the inner pipe. However, the width of the gap formed between the inner pipe and the outer pipe by the spacers should be dimensioned such that the leakage flow escaping through this gap is negligible.
[0023] In
[0024]
[0025]
[0026] In this example, the outlet opening 24 of the inner pipe 16 extends over a circumferential angle of almost 90 and it can have approximately the same shape as in
[0027] The width of the nozzle slot 12 can thus be varied by rotating the outer pipe 14 (motor or by hand) such that one of the outlet openings 26 is directed onto the printing substrate web 30, in addition, by rotating the inner pipe 16, the length of the nozzle slot 12 can be varied in the direction transverse to the printing substrate web.
[0028]