System for pelletizing solid refuse fuel
09662808 ยท 2017-05-30
Inventors
Cpc classification
B29C48/288
PERFORMING OPERATIONS; TRANSPORTING
B29B17/0412
PERFORMING OPERATIONS; TRANSPORTING
Y02E50/10
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
B29C48/693
PERFORMING OPERATIONS; TRANSPORTING
B29B17/0042
PERFORMING OPERATIONS; TRANSPORTING
B29B2017/0468
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
Y02E50/30
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
B29B2017/0089
PERFORMING OPERATIONS; TRANSPORTING
B29C48/38
PERFORMING OPERATIONS; TRANSPORTING
B29B13/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29B17/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a system for pelletizing Solid Refuse Fuel (SRF). The system includes: a first crusher that primarily crushes plastic waste; a vibration sieve plate-conveyer that transports plastic waste that is primarily crushed by the first crusher; a second crusher that secondarily crushes the primarily crushed plastic waste sieved by the vibration sieve plate-conveyer; a first rotational shaft equipped with a first screw that fuses and transports the plastic waste which is secondarily crushed by the second crusher; a filter unit that is combined with the first rotational shaft and which removes impurities by filtering the secondarily crushed plastic waste that is fused and transported by the first screw; a second rotational shaft equipped with a second screw that transports impurity-free plastic waste filtered by the filter unit; and a molding machine that molds the plastic waste transported by the second screw.
Claims
1. A system for pelletizing Solid Refuse Fuel (SRF), the system comprising: a first crusher that primarily crushes plastic waste introduced manually or by a conveyer belt; a vibration sieve plate-conveyer that transports the primarily crushed plastic waste discharged from the first crusher; a hopper that stores the primarily crushed plastic waste discharged from the vibration sieve plate-conveyer; a second crusher that is disposed under the hopper and secondarily crushes the primarily crushed plastic waste discharged from the hopper; a first rotational shaft that is disposed under the second crusher and is equipped with a first screw that fuses and transports the secondarily crushed plastic waste discharged from the second crusher; a filter unit that is combined with the first rotational shaft and removes impurities by filtering the secondarily crushed plastic waste that is fused and transported by the first screw; a second rotational shaft equipped with a second screw that transports impurity-free plastic waste that is filtered by the filter unit; and a molding machine that molds the impurity-free plastic waste transported by the second screw, wherein the first rotational shaft has a structure in which a hot wire is installed in the first rotational shaft and the first screw is installed on an outer surface of the first rotational shaft, thereby simultaneously fusing and transporting the secondarily crushed plastic waste processed by the second crusher, and wherein the second rotational shaft has a structure in which a cooling water pipe is installed in a portion of the second rotational shaft, thereby simultaneously transporting and cooling down the fused plastic waste transported by the first screw so that the fused plastic waste becomes gelled, and wherein: the filter unit is encased in a filter housing; the filter housing is provided with hollow protrusions; the hollow protrusions have respective fixing holes; and the filter unit is fixed to the first rotational shaft and second rotational shaft by bolts inserted in the fixing holes.
2. The system according to claim 1, wherein: the first rotational shaft and the second rotational shaft are spaced from each other; and the filter unit is installed between the first rotational shaft and the second rotational shaft.
3. The system according to claim 1, wherein: a first metallic filter, a second metallic filter, and a third metallic filter are spaced from each other in the filter unit; the first metallic filter has a first through hole through which the fused plastic waste that is fused and transported by the first screw combined with the first rotational shaft pass; the second metallic filter has a second through hole through which the fused plastic waste filtered by the first metallic filter passes; the third metallic filter has a third through hole through which the fused plastic waste filtered by the second metallic filter passes; an internal diameter of the second through hole of the second metallic filter is smaller than an internal diameter of the first through hole of the first metallic filter; and an internal diameter of the third through hole of the metallic filter is smaller than the internal diameter of the second through hole of the second metallic filter.
4. The system according to claim 1, further comprising a water tank that cools down the plastic waste that is molded into pellets by the molding machine.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objects, features and other advantages of the present invention will be more clearly understood from the following detailed description when taken in conjunction with the accompanying drawings, in which:
(2)
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DETAILED DESCRIPTION OF THE INVENTION
(6) A system for pelletizing Solid Refuse Fuel (SRF) according to the present invention will be described in detail below with reference to the accompanying drawings. Any specific description about functions or constructions that are well known in related arts will be omitted, when such a description is likely to obscure the gist of the present invention. The terms described below should be interpreted in consistent of their functions in the present invention. Terms are usually differently defined according to intension of a client, operator, or user or to custom. Therefore, the terms below should be interpreted as having meanings that are consistent with their meanings in the context of the relevant art and the present disclosure, and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
(7) Throughout the drawings, the same reference numerals will refer to the same or like parts.
(8)
(9) As illustrated in
(10) Herein, in the process in which the plastic waste is transported to be pelletized, the side at which the first crusher 210 is disposed is referred to as upstream and the side at which the molding machine 280 is disposed is referred to as downstream.
(11) The first rotational shaft 250, the filter unit 260, and the second rotational shaft 270 are encased in a filter housing 290. The filter housing 290 is covered by a casing 300. A first door 291 is installed in a portion of the top surface of the filter housing 290 so that the filter unit 260 can be installed into and removed from the inside of the filter housing 290. The door 291 is coupled to the filter housing 290 by coupling bolts 292.
(12) A second door 320 is installed in a portion of the casing 300, which corresponds to the first door 291. When installing or removing the filter unit 260, the second door 320 is first opened and the first door 291 is then opened. The second door 320 is coupled to the casing 300 by a known coupling means, for example, a bolt or hinge structure.
(13) The vibration sieve plate-conveyer 220 takes the form of a sieve plate that has wire meshes or perforations. The impurities that are adhered to the primarily crushed plastic waste that is crushed into the shards having a size of several to several tens centimeters by the first crusher 210 are detached from the primarily crushed plastic waste by vibration and then discharged through the meshes or perforations. The vibration sieve plate-conveyer 220 is provided with a well-known metal separator (for example, a magnetic separator not illustrated), so that an infusible material such as metallic particles that are mixed with the plastic waste that is primarily crushed by the first crusher 210 is removed.
(14) A hot wire 251 is installed in a hollow of the first rotational shaft 250, and the first screw 252 is installed on the outer surface of the first screw 252. This structure enables fusion and transportation of the secondarily crushed plastic waste that is crushed by the second crusher 240.
(15) A cooling water pipe 271 is installed in a portion of a hollow of the second rotational shaft 270. Because of this structure, the fused plastic waste that is transported by the first screw 252 is cooled down to be gelled while being transported by the second screw 272. The first rotational shaft 250 and the second rotational shaft 270 are spaced from each other, and the filter unit 260 is inserted between the first rotational shaft 250 and the second rotational shaft 270.
(16) The filter unit 260 is encased in the filter housing 261. The filter housing 261 has hollow protrusions 262 that have fixing holes. The filter unit 260 is fixed to the first rotational shaft 260 and the second rotational shaft 270 by bolts 263 inserted in the fixing holes.
(17) In the filter unit 260, a first metallic filter 264, a second metallic filter 265, and a third metallic filter 266 are inserted and fitted in such a manner that they are arranged at intervals. The first metallic filter 264 has a first through hole through which the plastic waste that is fused and transported by the first screw 252 of the first rotational shaft 250 can pass. The second metallic filter 265 has a second through hole through which the fused plastic waste that is primarily filtered by the first metallic filter 264 can pass. The third metallic filter has a third through hole through which the fused plastic waste that is secondarily filtered by the second metallic filter 265 can pass. The internal diameter of the second through hole formed in the second metallic filter 265 is smaller than that of the first through hole formed in the first metallic filter 264. The internal diameter of the third through hole formed in the third metallic filter 266 is smaller than that of the second through hole formed in the second metallic filter 265. Therefore, the impurities that are adhered to the plastic waste, which is fused and transported by the first screw 252, are primarily, secondarily, and thirdly filtered out by the filter unit 260. The impurities that are primarily, secondarily, and thirdly filtered out remain on the first metallic filter 264, the second metallic filter 265, and the third metallic filter 266, and in a space within the filter housing 261. The impurities remaining in the filter housing 261 are removed by separating and cleaning the filter unit 260.
(18) The second crusher 240 is connected to a first motor 330 via an appropriate intervention means such as a gear or a chain gear. The first rotational shaft 250 is connected to a second motor 340 via an appropriate intervention means.
(19) The molding machine 280 is fixed to the housing using a fixing frame 281 and fixing bolts 282. Therefore, the molding machine 280 can be unfixed from the housing as necessary. The gelled plastic waste that passes out through the molding machine 280 is cut into molded objects having a predetermined shape by a blade that is rotated by a motor (not illustrated). The cut gelled plastic waste is introduced into the water tank 310 to be cooled down and becomes pellets. Since the molding machine 280 is removable, it can be replaced with a different type of molding machine.
(20) Water that passes out through the cooling water pipe 271 installed in the hollow of the second rotational shaft 270 is returned to the water tank 310 to be reused.
(21) Hereinafter, operation of the system for pelletizing SRF according to the present invention will be described.
(22) First, plastic waste, especially thermoplastic resin, is collected and introduced into the first crusher 210 manually or by a conveyer belt. Thus, the plastic waste is primarily crushed into shards having a size of several to several tens centimeters by the first crusher 210.
(23) The plastic waste that is primarily crushed is discharged into the vibration sieve plate-conveyer 220 that is equipped with a metal separator and takes the form of a sieve plate having wire meshes or perforations. Metallic impurities mixed with the primarily crushed plastic waste are removed by the metal separator while being transported by the vibration sieve plate-conveyer 220. The vibration of the vibration sieve plate-conveyer 220 causes the impurities that are adhered to the primarily crushed plastic waste to be primarily removed through the meshes or perforations.
(24) Then, the plastic waste from which the impurities are removed is transported by the vibration sieve plate-conveyer 220 and supplied to the hopper 230.
(25) The plastic waste that is supplied to the hopper 230 is secondarily crushed into shards of plastic having a size of several millimeters to several centimeters by the second crusher 240 that is attached to a lower end of the hopper 230.
(26) The secondarily crushed plastic waste is transported to the first rotational shaft 250 that is disposed under the second crusher 240 and equipped with the first screw 252 wherein the first rotational shaft 250 is also equipped with the hot wire 251 in the inside thereof. Therefore, the secondarily crushed plastic waste is fused by the first rotational shaft 250 and the fused plastic waste is transported downstream by the first screw 252.
(27) The plastic waste transported downstream passes through the filter unit 260 that is composed of the first metallic filter 264, the second metallic filter 265, the third metallic filter 266, and the filter housing 261 that encases those filters therein. Impurities in the fused plastic waste are secondarily removed while the fused plastic waste passes through the filter unit 260.
(28) The fused plastic waste that is filtered by the filter unit 260 is transported to the second rotational shaft 270 equipped with the second screw 272. Since the inside of the second rotational shaft 270 is provided with the water pipe 271, the fused plastic waste is cooled down to be gelled while being transported downstream by the second screw 272.
(29) The gelled plastic waste that passes out through the molding machine installed outside the housing 290 is cut into plastic pieces having a predetermined shape by a blade that is rotated by a motor, and the cut plastic pieces are introduced into the water tank 310 to be cooled down to become pellets.
(30) The process of removing the filter unit 260 from the system will be described below.
(31) First, operation of the system for pelletizing SRF according to the present invention is stopped. Next, the second door 320 of the casing 300 and the first door 291 of the housing 290 are sequentially opened. Next, the coupling bolt 292 screwed in the second rotational shaft 270 is unscrewed and pulled out.
(32) Next, the fixing bolts 282 screwed in the fixing frame 281 are unscrewed and pulled out so that the molding machine 280 and the fixing frame 281 can be separated from the housing 290.
(33) Next, the second rotational shaft 270 is pulled backward so that the second rotational shaft 270 is separated from the filter unit 260. Next, the coupling bolt 292 screwed in the first rotational shaft is unscrewed. Next, the filter unit 260 is pulled out. In this way, the filter unit 260 can be removed from the housing 290. The removed filter unit 260 is disassembled to remove impurities therein. After that, the filter unit 260 is reassembled and reused.
(34) The process of reassembling the filter unit 260 is performed in reverse order. Accordingly, a description about the reassembling process will be omitted.
(35) The system for pelletizing SRF according to the preferred embodiment primarily filters out metallic impurities mixed in or adhered to waste plastic using the vibration sieve plate-conveyer equipped with the metal separator and then secondarily filters out the impurities using the filter unit. For this reason, the system according to the preferred embodiment can recycle plastic waste without using water. Therefore, the system can prevent water pollution, reduce water treatment cost, treat a larger amount of raw material compared to a wet process in which water is used, reduce environmental pollution attributable to plastic waste, and reduce operation cost. Furthermore, since the system has a simple structure and the filter unit can be reused after removal of residue thereon because the filter unit is removable from the system, the system has improved durability and incurs decreased production cost.
(36) Although the present invention is described with reference to a preferred embodiment, the preferred embodiment should not be construed as limited thereto but be described for illustrative purposes. Accordingly, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims. Accordingly, all modifications, alterations, and adjustments without departing from gist of the technical spirit of the present invention may fall within the scope of the present invention.