Claims
- 1. An apparatus for electrostatically forming a continuous mat of directionally oriented lignocellulosic particles and depositing them on a movable mat-receiving surface in a direction substantially transverse to the length dimension of the mat-receiving surface, comprising:
- an orienting zone having means establishing a first directional electric field substantially transverse to the length dimension of the movable mat-receiving surface for electrostatically orienting a multitude of lignocellulosic particles passing therethrough in the direction of the electrical field, the means configured to minimize the basis weight distribution of the lignocellulosic material deposited on the mat-receiving surface; and
- a mat-receiving surface positioned beneath the orienting zone receiving the aligned lignocellulosic particles thereon to form a mat.
- 2. The apparatus of claim 1 wherein the mat-receiving surface is an electrically conductive surface maintained at ground potential movable in a direction parallel to its length dimension and wherein the machine includes an electrically non-conductive transfer surface positioned between the orienting zone and the mat-receiving surface to receive the aligned lignocellulosic particles thereon to form a mat thereof for transfer to the mat-receiving surface, and means producing a directional electrical field immediately above the mat formed on the transfer surface substantially transverse to the direction of movement of the mat-receiving surface.
- 3. An apparatus for forming a continuous mat of directionally oriented lignocellulosic particles and depositing them on a mat-receiving surface, the mat of particles oriented and deposited on the mat-receiving surface in a direction substantially transverse to the direction of movement of the mat-receiving surface, comprising:
- an electrically insulated transfer surface receiving a multitude of lignocellulosic particles thereon in overlapping relation to form a mat, the transfer surface having a discharge end,
- a mat-receiving surface positioned adjacent the discharge end of the transfer surface receiving the particles deposited on the transfer surface to form a mat thereof,
- means for moving the mat-receiving surface beneath the transfer surface to receive the mat thereon,
- means for causing an electrical current to flow within the mat formed on the transfer surface to produce a directional electrical field substantially transverse to the direction of movement of the mat-receiving surface tending to align the longer dimension of the particles making up the mat in the direction of the electrical field,
- an orienting zone positioned above the transfer surface having means establishing a directional electrical field substantially parallel to the direction of the electrical field produced immediately above the mat formed on the transfer surface and substantially transverse to the direction of movement of the mat-receiving surface for aligning the longer dimension of the particles making up the mat before their deposition on the transfer surface, the means configured to minimize the basis weight distribution of the lignocellulosic material deposited on the mat-receiving surface, and
- means for transferring the aligned mat from the transfer surface to the mat-receiving surface.
- 4. The apparatus of claim 3 wherein the orienting zone includes a plurality of vertically extending, spaced-apart, electrically conductive plates, with adjacent plates charged with different electrical potentials providing an electrical field therebetween for electrostatic alignment of the particles to be deposited on the transfer surface, the plates being in parallel alignment with each other and extending substantially in the direction of movement of the mat-receiving surface, but at an angle thereto sufficient to minimize the effect of electrode location on weight distribution of particles over the mat area.
- 5. The apparatus of claim 4 wherein the conductive plates have a plurality of planar sections aligned parallel to the direction of movement of the mat-receiving surface and offset from each other such that no planar section aligns with another planar section in the same vertical plane extending in the direction of movement of the mat-receiving surface so as to distribute the effect of the electrical potentials on the plates upon the particles passing between the plates over the area of the mat and to balance the distribution of particles over the area of the mat.
- 6. The apparatus of claim 4 wherein the length dimension of the conductive plates has the configuration of a chevron.
- 7. The apparatus of claim 4 wherein the length dimension of the conductive plates has the configuration of a double chevron.
- 8. The apparatus of claim 3 wherein the means for transferring the aligned mat is an electrically insulated transfer belt for moving the mat along the transfer surface to discharge the formed mat onto the mat-receiving surface.
- 9. The apparatus of claim 8 wherein the transfer surface has electrically conductive elements embedded therein, with each element vertically aligned with the lower edges of one of the conductive plates.
- 10. The apparatus of claim 5 wherein adjacent plates are spaced apart a substantially uniform distance measured transverse to the direction of movement of the mat so that a substantially uniform field strength is maintained between adjacent plates.
- 11. The apparatus of claim 3 wherein the orienting zone includes a plurality of vertically extending, spaced-apart, electrically conductive plates, with adjacent plates charged with different electrical potentials providing an electric field therebetween for electrostatically aligning particles deposited on the mat, said plates having a plurality of planar sections aligned parallel to the length dimension of the mat-receiving surface and laterally offset from each other such that no planar section aligns with another planar section in the same vertical plane extending parallel to the length dimension of the mat-receiving surface so as to distribute the effect of the electrical potentials on the plates over the area of the mat formed beneath the plates and to balance the distribution of particles over the area of the mat.
- 12. The apparatus of claim 9, including an electrically non-conductive nosepiece secured to the discharge end of the transfer surface around which the transfer belt is trained, the nosepiece including a plurality of spaced, electrically conductive elements embedded therein across the width thereof parallel to the direction of movement of the transfer belt, with adjacent elements having different electrical potentials impressed thereon and providing an electrical field substantially transverse to the direction of movement of the transfer belt to maintain the orientation of the particles making up the mat as the mat is transferred from the transfer belt to the mat-receiving surface.
- 13. An apparatus for forming a multilayered mat of directionally oriented lignocellulosic particles, each layer made up of particles oriented in a direction substantially transverse to the direction of orientation of the particles making up the adjacent contiguous mat, comprising:
- a movable mat-receiving surface,
- a first orienting zone above the mat-receiving surface having first means establishing a first directional field extending parallel to the direction of movement of the mat-receiving surface for electrostatically aligning a multitude of lignocellulosic particles passing therethrough in the direction of the first directional field for deposit as a first mat of aligned particles on the mat-receiving surface, and
- a second orienting zone above the mat-receiving surface downstream from the first orienting zone having second means establishing a second directional field extending substantially transverse to the direction of movement of the mat-receiving surface for electrostatically aligning a multitude of lignocellulosic particles passing therethrough in the direction of the second electric field for deposit as a second mat over the first formed mat on the mat-receiving surface, the second means configured to minimize the basis weight distribution of the lignocellulosic material deposited on the mat-receiving surface.
- 14. The apparatus of claim 13, including respective electrically insulated transfer surfaces, one positioned beneath each orienting zone to receive the lignocellulosic particles thereon for transfer to the mat-receiving surface.
- 15. The apparatus of claim 14, including respective electrically insulated transfer belts trained about each transfer surface to move the respective aligned mats formed thereon onto the mat-receiving surface.
Parent Case Info
This is a division of application Ser. No. 230,691, filed Feb. 2, 1981 now U.S. Pat. No. 4,347,202.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
4111294 |
Carpenter et al. |
Sep 1978 |
|
4113812 |
Talbott et al. |
Sep 1978 |
|
Divisions (1)
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Number |
Date |
Country |
Parent |
230691 |
Feb 1981 |
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