METHOD FOR RECYCLING PLASTIC
20220134604 ยท 2022-05-05
Assignee
Inventors
Cpc classification
B29B17/02
PERFORMING OPERATIONS; TRANSPORTING
Y02W30/62
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
B29B17/0412
PERFORMING OPERATIONS; TRANSPORTING
B29B2017/042
PERFORMING OPERATIONS; TRANSPORTING
B29C41/04
PERFORMING OPERATIONS; TRANSPORTING
Y02W30/52
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
B29B2017/0279
PERFORMING OPERATIONS; TRANSPORTING
B29B2017/0203
PERFORMING OPERATIONS; TRANSPORTING
B29C41/003
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29B17/02
PERFORMING OPERATIONS; TRANSPORTING
B29B17/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for recycling plastic such as plastic toys includes grinding the plastic into plastic pieces, sorting the plastic pieces based on type of plastic, sorting the plastic pieces based on colour, after sorting of the plastic pieces, shredding the sorted plastic pieces into plastic flakes, and processing the plastic flakes into a recycled good by means of rotational moulding. During the rotational moulding, a micronized plastic is added.
Claims
1. A method for recycling plastic, wherein the method comprises: grinding the plastic into plastic pieces; sorting the plastic pieces based on type of plastic; sorting the plastic pieces based on colour; after sorting of the plastic pieces, shredding the sorted plastic pieces into plastic flakes; washing the plastic pieces and/or plastic flakes, wherein the step of washing is performed after grinding of the plastic into plastic pieces; and processing the plastic flakes into a recycled good by means of rotational moulding, wherein, during the rotational moulding, a micronized plastic is added.
2. The method according to claim 1, wherein the sorting of the plastic pieces based on colour comprises of subdividing the plastic pieces into groups according to a colour, wherein each group comprises plastic pieces having substantially the same colour as each other.
3. The method according to claim 2, wherein the colour of the plastic pieces is determined by means of spectral imaging.
4. The method according to claim 3, wherein the spectral imaging comprises multispectral and/or hyperspectral imaging.
5. The method according to claim 3, wherein the spectral imaging is near-infrared, NIR, spectroscopy.
6. The method according to claim 1, wherein the dimensions of the plastic flakes are such that a maximum section D.sub.1 thereof is smaller than 20 mm.
7. The method according to claim 1, wherein the step of shredding comprises a plurality of shredding steps.
8. The method according to claim 1, wherein the micronized plastic is a thermoplastic powder.
9. The method according to claim 1, wherein the dimensions of the plastic pieces are such that a maximum section D.sub.2 thereof is greater than 50 mm.
10. A recycling system for recycling plastic, comprising: a grinding device configured to grind the plastic into plastic pieces; a first sorting device configured to sort the plastic pieces based on type of plastic; a further sorting device configured to sort the plastic pieces based on colour; a shredding device configured to, after sorting of the plastic pieces, shred the sorted plastic pieces into plastic flakes; and a processing device configured to process the plastic flakes into a recycled good by means of rotational moulding, wherein a micronized plastic is added during the rotational moulding.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0025] The above and other advantageous features and objectives of the invention will become more apparent and the invention better understood with reference to the following detailed description when read in combination with the accompanying figures, in which:
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DETAILED EMBODIMENTS
[0034] The invention will now be further described with reference to exemplary embodiments shown in the figures. The same or similar elements are designated in the figures with the same reference numeral.
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[0041] According to an embodiment of the method for recycling plastic, the step 100 comprises of grinding the plastic into plastic pieces 600. In a preferred embodiment the plastic is plastic toys. It will be apparent to the skilled person that the grinding of the plastic can be performed by means of different types of grinding device, use can for instance be made of a horizontal or vertical hammer mill and so on. Step 100 is particularly performed by a grinding device wherein the plastic is ground into plastic pieces 600 with a desired minimum size. The minimum size of plastic pieces 600 corresponds to a maximum section D2 of the plastic pieces 600, such that this is preferably greater than 50 mm, preferably greater than 75 mm, more preferably greater than 100 mm. An advantage hereof his based on the insight that plastic, and particularly plastic toys, often comprise components which are made from different colours. The plastic components, which are coupled or attached to each other, can be detached from each other in simple manner by the grinding. A further advantage is that because the plastic pieces comprise a determined minimum size, the step 300 of sorting the plastic pieces by colour can thus take place rapidly and thoroughly.
[0042] Step 200 of the method comprises of sorting the plastic pieces 600 based on type of plastic. It will be apparent to the skilled person that the sorting of the plastic pieces 600 based on type can be carried out by means of different techniques. The plastic pieces can thus for instance be sorted based on density in order to thus obtain the desired material type of plastic. According to a preferred embodiment of the method, the plastic pieces are sorted by means of an optical Near-Infrared, NIR, sorting device.
[0043] Step 300 of the method comprises of sorting the plastic pieces 600 based on colour of the plastic pieces. According to a preferred embodiment, the step 300 is performed by an optical sorting device. The colour of the plastic pieces is preferably determined by means of spectral imaging. Spectral imaging is imaging which makes use of one or more wavelength bands in the electromagnetic spectrum. A normal camera typically captures light across three wavelength bands in the visible spectrum, red, green and blue, RGB. Spectral imaging comprises a wide variety of techniques that go beyond RGB. Spectral imaging can map the infrared spectrum, the visible spectrum, the ultraviolet spectrum, x-rays or a combination of the above spectra. The spectral imaging preferably comprises multispectral and/or hyperspectral imaging. An advantage of multispectral and/or hyperspectral imaging is that image data can be collected in visible and non-visible wavelength bands simultaneously. A further advantage is that use can be made of illumination from outside the visible range, or of optical filters for capturing a specific spectral range. Multispectral imaging typically relates to the capturing of at least three wavelength bands to about ten wavelength bands. Hyperspectral imaging typically relates to the capturing of hundreds of wavelength bands. A resolution of each wavelength band, and a width thereof, can be adjusted depending on the application. The spectral imaging is preferably Near-Infrared, NIR, spectroscopy. NIR spectroscopy makes use of infrared, IR, radiation. This IR radiation is directed at the plastic piece to be examined. The plastic piece lets through a part of this radiation, absorbs a part, and can reflect this radiation. From this, a spectrum is created which shows which wavelengths were absorbed or conversely let through. The materials and/or colours in question can then be determined based on this spectrum, since each molecule will absorb this radiation in a different way. NIR spectroscopy provides the advantage that it can be used both for sorting by type of plastic of the plastic pieces and for sorting by colour of the plastic pieces. A further advantage of NIR spectroscopy is that the colour can be determined rapidly and accurately in advantageous manner.
[0044] Step 400 of the method comprises, after sorting of the plastic pieces, of shredding the sorted plastic piece into plastic flakes. The step 400 of shredding must be performed after steps 200 and 300. The shredding can be performed by different shredding devices. The shredding device can be similar to the grinding device of step 100. Alternatively, the shredding device can differ from the grinding device of step 100 in that the plastic pieces are shredded into plastic flakes, wherein the plastic flakes have dimensions with a maximum section D1. The maximum section D1 is preferably smaller than 20 mm, more preferably smaller than 12 mm, still more preferably smaller than 10 mm, most preferably smaller than 8 mm. In an embodiment the size of the plastic flakes can be verified 450 by means of a screen (shown in
[0045] Step 500 of the method comprises of processing plastic flakes into a recycled good by means of rotational moulding, wherein a micronized plastic is added during the rotational moulding. In a first processing step the flakes are placed in a mould of a rotational moulding device. Depending on the object of the recycled good, a desired quantity of micronized plastic is added. By rotating the rotational moulding device the plastic flakes will mix with the micronized plastic. The mould is rotated in an oven or, in an alternative embodiment, can also comprise heating elements itself. When the mould is heated, the micronized plastic will melt and form the bond between the plastic flakes. The mould rotates along two mutually perpendicular axes, whereby the melted material is pressed against the mould wall and takes on the shape of the mould. A recycled good is thus obtained. Research has shown that in some cases the use of plastic flakes results in recycled goods with poor structural properties. Because the molecules cannot move relative to each other, bonds can no longer be created during recycling of the plastic. Owing to the rotational moulding, the wall thickness of the recycled good can be determined and the melted micronized plastic will surround the plastic flakes during the rotational moulding, whereby an improved structural integrity of the recycled good is obtained.
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[0047] In an alternative embodiment the size of the plastic flakes can be verified 450 by means of a screen after the step 400 of the shredding into plastic flakes. When the size of a plastic flake or a plurality of plastic flakes does not meet requirements, they can once again undergo the step 400 of shredding so as to ultimately comply with the predetermined size, as described with reference to
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[0055] The skilled person will appreciate based on the above description that the invention can be embodied in different ways and based on different principles. The invention is not limited to the above described embodiments. The above described embodiments and the figures are purely illustrative and serve only to increase understanding of the invention. The invention will not therefore be limited to the embodiments described herein, but is defined in the claims.