MECHANISM FOR MIXING SUPERCRITICAL FLUID AND POLYMER RAW MATERIAL MELT
20180345546 ยท 2018-12-06
Inventors
Cpc classification
B29B7/7414
PERFORMING OPERATIONS; TRANSPORTING
B29C45/02
PERFORMING OPERATIONS; TRANSPORTING
B29C45/1816
PERFORMING OPERATIONS; TRANSPORTING
B29C44/3423
PERFORMING OPERATIONS; TRANSPORTING
B29C45/581
PERFORMING OPERATIONS; TRANSPORTING
B29C44/3442
PERFORMING OPERATIONS; TRANSPORTING
B29C48/92
PERFORMING OPERATIONS; TRANSPORTING
B29C44/348
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/1722
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C44/42
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A mechanism for mixing a supercritical fluid and a polymer raw material melt provided by the present invention includes a hot-melting unit, a mixing unit, and a supercritical fluid supplying unit. The mixing unit, independently of the hot-melting unit, receives a polymer melt from the hot-melting unit and a supercritical fluid from the supercritical fluid supplying unit, respectively, and mixes the polymer melt and the supercritical fluid into a homogenous single-phase solution. The hot-melting unit is provided with a pushing member for pushing a polymer raw material. The mixing unit is provided with a mixing rotor for mixing the polymer melt and the supercritical fluid.
Claims
1. A mechanism for mixing a supercritical fluid and a polymer raw material melt, comprising: a hot-melting unit, having a hollow pressing cartridge, wherein a first feeding passage and a first discharging passage are disposed at two ends of the pressing cartridge, respectively, and communicates with a hollow interior of the pressing cartridge and the external space of the pressing cartridge, respectively; a pushing member is disposed in the pressing cartridge between the first feeding passage and the first discharging passage, and is used to push, toward the first discharging passage, a polymer raw material entering the hollow interior of the pressing cartridge through the first feeding passage; a mixing unit, having a hollow mixing cartridge, wherein a second feeding pass age and a second discharging passage are disposed at two ends of the mixing cartridge, respectively, and the second feeding passage communicates with the first discharging passage, such that the polymer raw material pushed out of the first discharging passage enters a hollow interior of the mixing cartridge through the second feeding passage; a mixing rotor is disposed in the mixing cartridge between the second feeding passage and the second discharging passage, and is rotatable in the mixing cartridge, so as to agitate the polymer raw material accommodated in the mixing cartridge; a supercritical fluid supplying unit, disposed on the mixing unit and spaced from the hot-melting unit, such that the external supercritical fluid is introduced into the hollow interior of the mixing cartridge, and together with the polymer raw material in the mixing cartridge, is agitated by the mixing rotor and mixed into a homogenous single-phase solution.
2. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 1, wherein the supercritical fluid supplying unit has a gas transfer passage, disposed on the mixing cartridge and communicating with the hollow interior of the mixing cartridge, and used to form a flow passage through which the external supercritical fluid enters the mixing cartridge.
3. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 2, wherein the gas transfer passage is disposed adjacent to the second feeding passage.
4. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 3, wherein the mixing rotor has a column-like body, rotatably disposed in the mixing cartridge; a first groove portion is annularly arranged on the periphery of the column-like body at one end adjacent to the second feeding passage, and is adjacent to the second feeding passage and the gas transfer passage.
5. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 4, wherein the mixing rotor further comprises a second groove portion, annularly arranged on the periphery of the column-like body at the other end adjacent to the second discharging passage.
6. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 5, wherein the first groove portion and the second groove portion are arc-shaped portions of different curvatures.
7. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 6, wherein the first groove portion and the second groove portion are separated from each other.
8. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 1, wherein the pushing member is a screw, rotatably disposed in the pressing cartridge.
9. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 1, further comprising a metering unit, receiving the single-phase solution discharged from the second discharging passage.
10. The mechanism for mixing a supercritical fluid and a polymer raw material melt according to claim 9, wherein the metering unit has a hollow metering cartridge, a hollow inner space thereof communicating with the second discharging passage and used to accommodate the single-phase solution; and a discharging member, slidably disposed in the hollow inner space of the metering cartridge, and used to discharge the single-phase solution accommodated in the metering cartridge out of the metering cartridge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0024] A preferred embodiment of the present invention is described in detail below with reference to the accompanying drawings.
[0025] Firstly, referring to
[0026] As shown in
[0027] Thereby, an external solid polymer raw material can enter the pressing cartridge inner space (211) from the feeding hopper (25) through the first feeding passage (22), and is pushed with rotation of the pushing member (24) to move toward the first discharging passage (23). The polymer raw material is heated into a flowable melt by hot-melting during the movement, and flows out from the first discharging passage (23). The technical content of hot-melting is known in the prior art, and the description thereof is omitted herein.
[0028] The mixing unit is similar to a conventional injection pressing cartridge, extrusion pressing cartridge, blending device or the like that is capable of achieving melt-mixing in which different fluids are mixed into a homogenous solution. In the present embodiment, as shown in
[0029] The supercritical fluid supplying unit (40) has a supplying system (not shown) for turning inert gases such as carbon dioxide or nitrogen gas into supercritical fluids, and flowing passages for supercritical fluids are formed by using pipeline technology such as pipes and valves. However, since the supercritical state-forming technology and transfer technology of the gases are known in the prior art and are not technical features of the present invention, the descriptions thereof are omitted herein. Technologies related to the technical features of the present invention are described herein. As shown in
[0030] Through the configuration of the above components, a polymer melt obtained after hot-melting by the hot-melting unit (20) enters the mixing cartridge inner space (311) through the second feeding passage (32) under a pushing force provided by the pushing member (24), while an external supercritical fluid also enters the mixing cartridge inner space (311) through the gas transfer passages (41), such that the polymer melt and the supercritical fluid are agitated and mixed into a homogenous single-phase solution in the mixing cartridge inner space (311) with rotation of the mixing rotor (34), and then flow out for use through the second discharging passage (33).
[0031] To enable the polymer melt and the supercritical fluid to mix uniformly in the mixing cartridge space (311), the mixing rotor (34) further includes a column-like body (341) in the shape of a straight cylinder, rotatably disposed in the mixing cartridge (31). A first groove portion (342) is annularly arranged on the periphery of the column-like body (341) at one end adjacent to the second feeding passage (32) and the gas transfer passages (41). A second groove portion (343) is annularly arranged on the periphery of the column-like body (341) at the other end adjacent to the second discharging passage (33). Therefore, when the column-like body (341) rotates, the polymer melt and the supercritical fluid are agitated by the first groove portion (342) and the second groove portion (343), so as to achieve a desired mixing effect.
[0032] Further, the first groove portion (342) and the second groove portion (343) may have a plurality of grooves of different curvatures, respectively, as shown in
[0033] In addition, as shown in
[0034] It should be noted that, conventionally, the single-phase solution is fed into an inner chamber of a mold for molding, and although in the present embodiment, the single-phase solution is fed into the metering unit (50) for measurement and a predetermined amount of the single-phase solution is then filled into an external mold through a feeding pas sage communicating with the connecting passage (52), the present invention is not limited thereto. In industrial utilization, the metering unit can be omitted, and the single-phase solution obtained after mixing by the mixing unit (30) is directly fed into an external mold for molding. The feeding can be performed continuously or in batches or performed by means of injection or extrusion. These implementations are all based on the main technical features of the present invention, and all fall within the implementing aspects of the present invention.
[0035] In effect, by using the structure in which the mixing unit (30) is separated from the hot-melting unit (20), the rotation speed of the pushing member (24) and the rotation speed of the mixing rotor (34) do not interfere with each other, and may be appropriately selected according to different purposes of hot-melting and mixing, so as to achieve an optimal hot-melting effect and an optimal mixing effect. Compared with the structure in the prior art in which the mixing unit (30) and the hot-melting unit (20) are associated with each other, the technical content provided by the present invention has the advantage of more flexibility in industrial utilization.
[0036] In addition, for the purposes of hot-melting, pressing and pushing a solid polymer raw material, the pushing member (24) usually has a large groove depth to achieve the pressing and pushing effect on the polymer, and for homogeneous mixing between the polymer melt and the supercritical fluid, it is advantageous to enable the polymer melt and the supercritical fluid to sufficiently flow relative to each other. Therefore, the groove depth of the first groove portion (342) and the second groove portion (343) of the mixing rotor (34) is smaller than the groove depth of the pushing member (24), to realize dispersion and micromixing, thereby achieving a better mixing effect. However, the groove depths and shapes may vary according to raw materials and conditions, and shall not be used to limit the present invention.
[0037] Further, to avoid undesired backflows between the mixing unit (30) and the hot-melting unit (20), as shown in
[0038] Similarly, to avoid backflows between the mixing unit (30) and the metering unit (50), as shown in
[0039] Moreover, to ascertain operating conditions such as pressure and temperature in the mixing unit (30), as shown in
[0040] Accordingly, the mechanism for mixing a supercritical fluid and a polymer raw material melt provided by the present invention achieves separation of the hot-melting and mixing processes in industrial utilization, resulting in convenience in use, and enables easy homogeneous mixing of a single-phase solution, providing a molded foam with a desired forming quality.
LIST OF REFERENCE NUMERALS
[0041] (10) mechanism for mixing a supercritical fluid and a polymer raw material melt, (20) hot-melting unit, (21) pressing cartridge, (211) pressing cartridge inner space, (22) first feeding passage, (23) first discharging passage, (24) pushing member, (25) feeding hopper, (26) discharging end member, (30) mixing unit, (31) mixing cartridge, (311) mixing cartridge inner space, (32) second feeding passage, (33) second discharging passage, (34) mixing rotor, (341) column-like body, (342) first groove portion, (343) second groove portion, (35) sensor, (40) supercritical fluid supplying unit, (41) gas transfer passage, (50) metering unit, (51) metering cartridge, (511) inner metering space, (52) connecting passage, (61) first check valve, (62) second check valve