DEVICE FOR DRAWING FILAMENTS TO FORM A NONWOVEN FABRIC
20230203726 · 2023-06-29
Inventors
Cpc classification
Y02P70/62
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
D04H3/033
TEXTILES; PAPER
D04H3/04
TEXTILES; PAPER
International classification
Abstract
A device draws filaments to form a nonwoven fabric. The device has a nozzle carrier, the nozzle carrier having an elongated drawing channel, wherein the drawing channel comprises a filament inlet and a filament outlet, the drawing channel being provided on opposite sides with air nozzles generating a downward air flow, the air nozzles being connected to an air chamber on both sides of the nozzle carrier through an air channel, a rectification device being provided between the air channel and the air chamber, the rectification device having at least one rectification chamber, a rectification wall of the at least one rectification chamber being provided to be partially ventilated. The air flow is temporarily confined in a small space by the space restriction of the rectification chamber, and as air flows, the air flows out of the partially ventilated area, which acts as a “combing” of the air flow.
Claims
1. A device for drawing filaments to form a nonwoven fabric, comprising: a nozzle carrier having an elongated drawing channel, wherein the drawing channel comprises a filament inlet and a filament outlet, wherein the drawing channel has on its opposite sides an air nozzle generating a downward air flow, and wherein the air nozzle communicates with an air chamber on both sides of the nozzle carrier through an air channel, and a rectification device provided between the air channel and the air chamber; wherein air flow passes from the air chamber through the rectification device and enters the air channel through the air channel inlet; wherein the rectification device has at least one rectification chamber; and wherein a rectification wall of the at least one rectification chamber is provided to be partially ventilated.
2. The device as claimed in claim 1, wherein the ventilated area of at least one of the rectification walls is provided staggered from the ventilated area of another rectification wall.
3. The device as claimed in claim 2, wherein the rectification device has one rectification chamber; wherein the rectification chamber is provided with a ventilated area in a first position of the rectification wall thereof away from the air chamber corresponding to an air channel inlet; and wherein the rectification chamber has an air inlet at a position staggered from the first position of the rectification wall near the air chamber.
4. The device as claimed in claim 2, wherein the rectification device has two rectification chambers; wherein in the rectification chamber away from the air chamber, its rectification wall close to the air channel has an ventilated area in a first position corresponding to the air channel inlet; wherein the rectification wall between the two rectification chambers is provided with a ventilated area at a second position staggered from the first position; and wherein in the rectification chamber closest to the air chamber, its rectification wall close to the air chamber has an air inlet at a third position corresponding to the second position of the rectification wall.
5. The device as claimed in claim 4, wherein the rectification chamber is further provided with a honeycomb plate between the rectification chamber and the air channel.
6. The device as claimed in claim 5, wherein the honeycomb plate has a ventilation area with a size close to the area of the air channel inlet.
7. The device as claimed in claim 6, wherein the air chambers are plural and are placed side by side, and each of the air chambers is connected to an air duct through a connecting tube.
8. The device as claimed in claim 7, wherein the air chamber is provided with a deflector between an inlet port and an outlet port.
9. The device as claimed in claim 8, wherein the deflector has its first end fixed to a first side wall of the air chamber near the rectification chamber and extends in a horizontal direction, and a second end of the deflector is spaced from a second side wall of the air chamber opposite to the first side wall.
Description
DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022]
[0023] The nozzle carrier 1 is fixed in a machine frame not shown here and can be adjusted in the machine frame at a height above a web-forming belt. For example, the height of the nozzle carrier 1 relative to the web-forming belt is usually adjusted at the beginning of process.
[0024] The structure of the longitudinal beams 1.1 and 1.2 is substantially mirror-symmetrical. Each of the longitudinal beams 1.1 and 1.2 can be made in several parts in order to form the channels and openings required for air guidance. Thus, each longitudinal beam 1.1 and 1.2 has an air channel 6.1 and 6.2 which leads to the drawing channel 2. The air channels 6.1 and 6.2 each have an air channel inlet 17.
[0025] The rectification devices 15.1 and 15.2 are provided on the longitudinal beams 1.1 and 1.2 of the nozzle carrier 1. The rectification device 15.1 is connected both to the air chamber 8.1 and to the air channel 6.1. Thus, the rectification device 15.2 is arranged between the air chamber 8.2 and the air channel 6.2. The rectification device is used to adjust the turbulent air flow in order to create a gentle and consistent air flow.
[0026] As can be seen from
[0027] As can be seen in
[0028] The air chamber 8.2 in the longitudinal direction of the longitudinal beam 1.2 and the connection manner of the air chamber 8.2 with the connecting tube 9.2 and the air duct 7.2 are identical and mirror-symmetrical.
[0029] Thus, the process air (not shown here) for drawing the filament can be introduced on both sides of the drawing channel 2 through air nozzles 5.1 and 5.2 with the direction of airflow down the drawing channel 2. The air nozzle is preferably configured as a slit with a gap distance of 0.5-1.3 mm. The air ducts 7.1 and 7.2 are connected to a compressed air source not shown here. The process air is supplied from the air ducts 7.1 and 7.2 at an overpressure of 0.5 to 5 bar, preferably in the overpressure range of 1 to 3 bar.
[0030]
[0031] As shown in
[0032] The rectification wall 19 of the rectification chamber 27 is provided with a second position 23 corresponding to the third position 24, the third position 24 being opposite to the second position 23. The second position 23 is constituted as a ventilated area and the other positions of the rectification wall 19 are constituted as non-ventilated areas. The rectification wall 18 of the rectification chamber 26 is provided with a first position 22 staggered from the second position 23, again the first position 22 being constituted as ventilated and the first position 22 being in this embodiment located in the lower part of the rectification wall 18. A honeycomb plate 21 is mounted between the rectification chamber 26 and the air channel 6.1. The honeycomb plate 21 is likewise ventilated and has a ventilated area close to the area of the air channel inlet 17. The rectification device forces the process air flow to be adjusted in the rectification chamber by staggered setting of the ventilated positions, so that the process air flow is not a turbulent flow when entering the air channel inlet 17.
[0033] It is obtainable out of above mentioned description that rectifying walls of the rectifying chambers 26, 27 are in each case partially ventilated.
[0034] During the filament drawing process, the filament is continuously drawn into the drawing channel 2 through the filament inlet 3. Within the drawing channel 2, the filament is drawn by the process air and blown out together as a fiber stream through the filament outlet 4.
[0035]