Abstract:
The invention relates to a method for manufacturing a mineral fiber-containing composite and the novel mineral fiber-containing element produced by that method. The invention also relates to an apparatus suitable for carrying out the method of the invention.
Abstract:
A fiber blowing and filling machine comprising a hopper, a dispensing assembly located below the hopper, a drive assembly and a blower. The dispensing assembly comprises a housing having two longitudinally opposite apertures, namely, an air inlet aperture connected to the output of the blower and an exit aperture. The housing is equipped with a paddle mounted to a shaft that is above the apertures. The paddle is assembled from individual components, forming a plurality of vanes having flexible edges that contact the surfaces of the housing to create a pocket when the apertures are between a pair of the vanes. The fiber from the hopper flows into the housing and gets collected between a pair of the vanes, which rotate further to form the pocket. The fiber in the pocket is then blown out through the exit aperture by the air from the blower output.
Abstract:
A device on a spinning preparation machine, for example a tuft feeder, having a feed device comprising at least one slow-speed feed roller and a counter-element, for example a feed tray, with which fibre material can be supplied to a downstream transport device, has a driven transport element, for example a conveyor belt. In order to provide improved delivery from the feed device, or improved takeover by the downstream transport device, and to allow troublefree operation, for the purpose of determining setting values for the optimum speed of the transport element, a function between the measured values of the feed roller speed and the measured values of the transport speed is so determined that the fibre material lies on the moving surface of the transport element.
Abstract:
The instant invention is directed to an arrangement for forming a stable fiber web having high loft and high resilience. The arrangement includes a cabinet receiving opened and blended fibers connected with a fiber web forming chute which receives the opened and blended fibers from the cabinet. The forming chute includes a first and second wall and fiber contacting elements which assist in urging the fibers through and out an exit of the chute in an evenly distributed condition while forming the fiber web. The fiber contacting elements include a fiber inter-engaging device associated with at least one of the first and second walls, said inter-engaging device acting said outer fibers causing these fibers to inter-engage creating a stable outer surface over the fiber web.
Abstract:
An apparatus for making a fiber lap from a mass of fiber tufts includes a generally vertically extending feed chute having relatively wide first and second walls facing one another and relatively narrow third and fourth walls facing one another. The distance between the third and fourth walls defines the width of the feed chute. Each first and second wall has a mid region and flanking edge regions. The first and/or second wall is provided with air outlet openings in a bottom region. The apparatus further has a device for charging the feed chute with fiber tufts at a top portion thereof, and a device for withdrawing the fiber tufts from the feed chute as a fiber lap at a bottom portion of the feed chute. A plurality of side-by-side arranged elements are positioned in a series on the first wall at a bottom portion thereof along the wall width. The distance between any given element and the second wall defines the depth of the feed chute at the given element. The elements in the mid region have a first dimension measured parallel to the wall width, and the elements in the edge regions have a second dimension measured parallel to the wall width. The first dimension is greater than the second dimension, and the elements in the mid region are at a greater distance from the second wall than the elements in the edge regions of the first wall.
Abstract:
A fiber processing machine for forming a fiber lap from fiber tufts, includes a fiber feeding assembly which has a feed roll having a rotary axis; a carrier element extending adjacent and along the feed roll; and a feed tray array cooperating with the feed roll for drawing fiber material into a nip defined between the feed tray array and the feed roll and for discharging the fiber material from the nip. The feed tray array is composed of a series of individual feed trays lined up along the feed roll. Individual, separate rotary supports for mounting each feed tray on the carrier element provide for a pivotal motion of each feed tray in a plane generally perpendicular to the rotary axis of the feed roll.
Abstract:
In a fiber processing machine with a separating edge in which fibers as well as air are guided in a substantially predetermined transporting direction past the edge, trash particles are selectively removed from the fiber/air stream with the help of the edge. The adjustment of a separating element, in particular, the setting of the angular position of a separating surface and/or the penetration depth upstream from the separating surface is linked with an adaptation of the width of the eliminating gap. Also, at least one measure can be taken for eliminating, as far as possible, a pressure drop and/or air turbulences downstream (in the transporting direction) from the edge. Downstream from the edge, a flow pattern as laminar as possible is generated or maintained, respectively.
Abstract:
Apparatus for forming a lap of stock fibers, in particular for continuously loading a textile machine such as a card, the apparatus comprising a feed chimney (4) which is open at its top and bottom ends (4a, 4b) and which is provided with an air exhaust opening (9) of given section or with a plurality of air exhaust openings distributed over a given section. The exhaust opening(s) (9) opening out directly into an expansion chamber (13). The air inside the expansion chamber is taken up by suction via a air manifold chamber (18a) which is designed to have low pressure established therein, and which communicates with the expansion chamber (13) via an air takeup slot (14) which extends substantially over the entire width l of the section of the exhaust opening(s) (9) or via a plurality of air takeup openings which are distributed substantially over the entire width l of the section of the exhaust opening(s) (9).
Abstract:
A chute feed assembly for opening and moving fibers through a chute delivery system into an infeed chute for an opening station. The chute feed assembly includes a beater for opening the fibers which is drivable in a selected of two directions. The beater delivers the opened fibers into a fiber batt forming chute where they are formed into a fiber batt which is then delivered to further processing. The infeed air flow is assisted by providing non-friction chute surfaces to allow even fiber flow throughout the chute. Also, the air flows of densified air controlled across the fiber batt forming channel to provide for even fiber distribution of selected density. The assembly provides for all drive motors to be mounted outside the interior of the chute feed assembly reducing heat build-up within the chute feed assembly.
Abstract:
A fiber tuft feeder includes a first chute; a feed roller supported at the outlet end of the first chute; an opening roller adjoining the feed roller and being supported below the feed roller and receiving fiber tufts therefrom; a second chute extending downwardly from the opening roller; a densifying air stream generating arrangement for introducing an air stream into the second chute to densify the fiber tufts therein; and a guide arrangement for directing the densifying air stream to flow consecutively along the feed roller and the opening roller.