Induction heated roll apparatus
10779364 ยท 2020-09-15
Assignee
Inventors
Cpc classification
International classification
Abstract
The present invention uniformly cools a roll body and/or an induction heating mechanism by gas without complicating the configuration around the roll body. An induction heated roll apparatus includes a roll body having a hollow part, an induction heating mechanism disposed in the hollow part to subject the roll body to induction heating, and a cooling mechanism to cool the roll body and/or the induction heating mechanism by generating a gas flow in a clearance between the roll body and the induction heating mechanism. The cooling mechanism includes a suction port disposed on one axial end side of the roll body that communicates with the clearance, an exhaust port disposed on an opposite axial end side of the roll body that communicates with the clearance, and a suction mechanism coupled to the exhaust port that sucks the gas in the clearance from the exhaust port.
Claims
1. An induction heated roll apparatus comprising: a roll body having a hollow part; an induction coil disposed in the hollow part and designed to cause the roll body to be subjected to induction heating; and a cooling mechanism designed to cool the roll body and/or the induction coil by generating a gas flow in a clearance part between the roll body and the induction coil, wherein the cooling mechanism comprises: a suction port disposed on one axial end side of the roll body and designed to communicate with the clearance part; a plurality of exhaust ports disposed on an outer radial surface of a drive shaft at an opposite axial end side of the roll body and designed to communicate with the clearance part, or formed in a flange part of a journal part of the roll body and designed to communicate with the clearance part; and a suction mechanism, including a motor fan, a blower, a gas flow amplifier or a pump, coupled to the plurality of exhaust ports and designed to suck gas in the clearance part from the plurality of exhaust ports, wherein the plurality of exhaust ports are rotatably coupled to the suction mechanism.
2. The induction heated roll apparatus according to claim 1, wherein a plurality of the suction ports are disposed near the journal part on the one axial end side.
3. The induction heated roll apparatus according to claim 2, wherein the suction ports are disposed at equal intervals in a circumferential direction at the journal part on the one axial end side.
4. The induction heated roll apparatus according to claim 1, wherein the suction port is provided with a filter for removing foreign matter in the gas to be sucked.
5. The induction heated roll apparatus according to claim 1, wherein the suction mechanism comprises a stationary body disposed on a stationary side so as to cover the plurality of exhaust ports, and a suction device coupled to the stationary body and designed to suck the gas in the clearance part from the plurality of exhaust ports.
6. The induction heated roll apparatus according to claim 5, wherein the plurality of exhaust ports are disposed on an outer circumferential surface of the drive shaft on the opposite axial end side, and wherein the stationary body is disposed on the drive shaft on the opposite axial end side so as to cover the plurality of exhaust ports with a bearing interposed therebetween.
7. The induction heated roll apparatus according to claim 5, further comprising a support shaft to support the induction coil, and wherein the stationary body is designed to support the opposite axial end side of the support shaft.
8. The induction heated roll apparatus according to claim 5, wherein the suction device is integrally disposed on the stationary body with no piping interposed therebetween.
9. The induction heated roll apparatus according to claim 8, wherein the suction device is a gas flow amplifier.
10. The induction heated roll apparatus according to claim 1, further comprising a support shaft to support the induction coil, wherein one axial end of the support shaft is supported on the roll body with a bearing interposed therebetween, and wherein an opposite axial end of the support shaft is supported on a member disposed on a stationary side.
11. The induction heated roll apparatus according to claim 1, further comprising a support shaft to support the induction coil, wherein the support shaft is supported through a bearing on each of both axial end sides of the roll body, and wherein the bearing disposed on the opposite axial end side of the roll body is disposed axially further outside than the plurality of exhaust ports.
12. The induction heated roll apparatus according to claim 1, further comprising: a supply mechanism designed to supply the gas to the suction port, wherein the supply mechanism comprises supply piping to supply the gas to the suction port, and a joint member to connect the supply piping and the suction port.
13. The induction heated roll apparatus according to claim 1, further comprising: a circulating passage designed to permit communication between the suction port and the plurality of exhaust ports outside of the roll body so as to return the gas sucked from the plurality of exhaust ports by the suction device to the suction port; and a heat exchanger disposed in the circulating passage and designed to cool the gas.
14. The induction heated roll apparatus according to claim 1, wherein the roll body comprises a jacket chamber enclosing a two-phase gas-liquid heating medium therein and extending in an axial direction.
15. The induction heated roll apparatus according to claim 1, wherein the cooling mechanism is designed to adjust a flow rate of the gas flowing through the clearance part.
16. The induction heated roll apparatus according to claim 1, wherein an outer circumferential surface of the induction coil of the induction heating mechanism is coated with an insulating varnish.
17. The induction heated roll apparatus according to claim 1, wherein an insulating pipe being smaller than an inner circumferential diameter of the roll body is secured to an outer circumference of the induction heating mechanism, and wherein the clearance part is formed between the roll body and the insulating pipe.
18. The induction heated roll apparatus according to claim 1, wherein an inner surface of the roll body is coated with an antirust material.
19. The induction heated roll apparatus according to claim 1, wherein a rugged structure is formed on an inner surface of the roll body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE EMBODIMENTS
First Embodiment
(19) An induction heated roll apparatus 100 in a first embodiment is intended to be used in, for example, a continuous heat treatment process of a continuous material, for example, sheet materials or web materials, such as plastic films, papers, fabrics, unwoven fabrics, and metal foils, as well as wire rods (yarn materials).
(20) Specifically, as illustrated in
(21) The roll body 2 includes a shell part 21 having a cylindrical shape, and a pair of journal parts 22 respectively disposed on both ends of the shell part 21. Each of the journal parts 22 includes a flange portion 221 to cover an end opening of the shell part 21, and a hollow drive shaft 222 formed integrally with the flange portion 221. The drive shafts 222 are respectively rotatably supported on blocks 51 and 52 with bearings 41 and 42, such as rolling bearings, interposed therebetween. The roll body 2 is designed to be rotated by a driving force applied from the outside by a rotation drive mechanism, such as a motor (not illustrated).
(22) The shell part 21 of the roll body 2 is provided with a plurality of jacket chambers 21A that extend in a longitudinal direction (axial direction) and enclose a two-phase gas-liquid heating medium therein. The jacket chambers 21A are spaced apart from each other, for example, at equal intervals, in the entire circumferential direction. A surface temperature of the shell part 21 is made uniform by latent heat transfer of the two-phase gas-liquid heating medium enclosed within the jacket chambers 21A.
(23) The induction heating mechanism 3 includes a cylindrical iron core 31 having a cylindrical shape, an induction coil 32 being wound on an outer circumferential surface of the cylindrical iron core 31, and support shafts 331 and 332 each supporting the cylindrical iron core 31 and the induction coil 32. The support shafts 331 and 332 are respectively disposed on both ends of the cylindrical iron core 31. The support shafts 331 and 332 are individually inserted into the drive shaft 222 and are respectively rotatably supported on the drive shaft 222 with bearings 61 and 62, such as rolling bearings, interposed therebetween. Thus, the induction heating mechanism 3 is held in a stationary state with respect to the roll body 2 in the inside of the roll body 2 being rotated. A lead wire L1 is coupled to the induction coil 32, and an AC power source (not illustrated) for applying an AC voltage is coupled to the lead wire L1 with a power regulating apparatus (not illustrated) interposed therebetween.
(24) With the induction heating mechanism 3, an alternating magnetic flux occurs upon application of the AC voltage to the induction coil 32, and the alternating magnetic flux passes through the shell part 21 of the roll body 2. An induced current occurs in the shell part 21 due to the passage of the alternating magnetic flux, and the shell part 21 generates Joule heat by the induced current.
(25) The induction heated roll apparatus 100 of the present embodiment includes a cooling mechanism 7 that cools the roll body 2 and the induction heating mechanism 3 by generating a gas flow in a clearance part X1 between the roll body 2 and the induction heating mechanism 3. The gas that is a cooling medium in the present embodiment is air that is atmospheric gas in an installation space of the roll body 2. Alternatively, the gas may be nitrogen gas or the like by changing the atmospheric gas into, for example, nitrogen gas or the like.
(26) As illustrated in
(27) Specifically, the cooling mechanism 7 includes a suction port 71, an exhaust port 72, and a suction mechanism 73. The suction port 71 is disposed on one axial end side of the roll body 2 and communicated with the clearance part X1. The exhaust port 72 is disposed on the opposite axial end side of the roll body 2 and communicated with the clearance part X1. The suction mechanism 73 is coupled to the exhaust port 72 and designed to suck the gas in the clearance part X1 from the exhaust port 72.
(28) As illustrated in
(29) As illustrated in
(30) As particularly illustrated in
(31) The cover body 731 has an approximately cylindrical shape and is disposed outside the outer circumferential surface of the drive shaft 222 having the exhaust ports 72 formed therein. An inner circumferential surface of the cover body 731 and the outer circumferential surface of the drive shaft 222 form an exhaust space X2 for outwardly exhausting the gas exhausted from the exhaust ports 72. The cover body 731 is provided with a connection port P1 designed to connect the connecting duct 733, and the exhaust space X2 is communicated with the connection port P1. The cover body 731 is disposed through two bearings 91 and 92 on the drive shaft 222 so as to cover the exhaust ports 72. The bearings 91 and 92 are disposed so as to axially hold the exhaust ports 72 therebetween. The cover body 731 is disposed axially further outside than the block 52 in the drive shaft 222. The cover body 731 is secured to the stationary side so as not to rotate together with the drive shaft 222.
(32) A rotary transformer 10 is disposed axially outside the drive shaft 222 provided with the cover body 731. The rotary transformer 10 transmits a detection signal of a temperature sensor T1 (refer to
(33) The suction device 732 is designed to suck the gas in the clearance part X1 from the connection port P1 of the cover body 731 with the exhaust space X2 interposed therebetween. The suction device 732 is, for example, a motor fan, a blower, or a suction pump. The suction device 732 is disposed on the stationary side. An exhaust duct (not illustrated) is coupled to the exhaust port P2 of the suction device 732. The exhaust port P2 in the exhaust duct is disposed in, for example, an external space (for example, outdoors) being different from the installation space of the induction heated roll apparatus 100. The suction device 732 may be disposed in the external space, and the suction device 732 disposed in the external space and the connection port P1 of the cover body 731 may be coupled to each other by the connecting duct 733. The suction device 732 is designed so that a suction force is changeable by changing, for example, the number of revolutions. This makes it possible to adjust a flow rate of the gas flowing through the clearance part X1. Alternatively, a flow rate adjustment mechanism, such as a flow rate adjustment valve, may be disposed in the connecting duct.
(34) When suction is started by the suction device 732 in the above configuration, the gas in the clearance part X1 is sucked from the exhaust port 72, and external gas around the roll body 2 is sucked from the suction ports 71 into the clearance part X1. The gas sucked from the suction ports 71 flows through the interior of the clearance part X1 and is then exhausted from the exhaust ports 72. Because the bearing 62 is located axially further outside than the exhaust ports 72, most of the high-temperature gas is exhausted from the exhaust ports 72 before coming into contact with the bearing 62, thus making it possible to prevent the bearing 62 from being positively subjected to the high-temperature gas.
(35) A shielding structure 11, such as a shielding plate, is disposed between the bearing 62 and the exhaust ports 72 on the opposite axial end side. The shielding structure 11 makes it difficult for the high-temperature gas to come into contact with the bearing 62 on the opposite axial end side. It is also possible to prevent the external gas from being sucked from the bearing 62 because ventilation resistance on the bearing 62 side is increased.
(36) Similarly, a shielding structure 12, such as a shield plate, is disposed inside the bearings 91 and 92 disposed between the cover body 731 and the drive shaft 222. The shielding structure 12 makes it difficult for the high-temperature gas to come into contact with the bearings 91 and 92. It is also possible to prevent the external gas from being sucked from the bearings 91 and 92.
(37) Furthermore, in the present embodiment, the following treatments are applied to portions with which the external gas sucked from the suction ports 71 comes into contact. That is, an outer circumferential surface of an induction coil 32 with which the external gas comes into contact is coated with a heat-resistant insulating varnish, such as a polyimide-based, silicone-based, or epoxy-based one. Specifically, the heat-resistant insulating varnish is applied to the outer circumferential surface of the induction coil 32. An inner surface of the roll body 2 with which the external gas comes into contact is coated with a heat-resistant material. Specifically, a heat-resistant paint or an antirust paint is applied to, or a plating process for antirust is applied to the inner surface of the roll body 2.
Effect of First Embodiment
(38) With the induction heated roll apparatus 100 thus configured, the suction mechanism 73 is coupled to the exhaust ports 72 disposed on the opposite axial end side of the roll body 2. By sucking the gas from the exhaust ports 72, the external gas is sucked from the suction ports 71 disposed on the one axial end side of the roll body 2 and flows through the clearance part X1 between the roll body 2 and the induction heating mechanism 3. Here, the clearance part X1 between the roll body 2 and the induction heating mechanism 3 has the approximately cylindrical shape, so that the external gas sucked from the suction ports 71 flows uniformly in the circumferential direction. It is therefore possible to uniformly cool the roll body 2 and the induction heating mechanism 3. Here, since the gas warmed by flowing through the clearance part X1 is actively sucked by the suction port 73 and exhausted, the roll body 2 and/or the induction heating mechanism 3 can be cooled more evenly. Additionally, the circumferential structure of the roll body 2 for the purpose of obtaining the major effect of uniformly cooling the roll body 2 needs only to dispose the suction mechanism 73 on the opposite axial end side of the roll body 2. Hence, the configuration around the roll body 2 does not become complicated.
(39) Besides the above, with the present embodiment, the high-temperature gas is exhausted to an appropriate place, such as outdoors, so that no high-temperature gas is exhausted into the installation space of the roll body 2, by disposing the exhaust duct in the suction mechanism 73. This not only prevents the high-temperature gas from threatening the safety of the operator, but also prevents adverse effects on the continuous heat treatment process of the continuous material.
(40) Meanwhile, an investigation was conducted on temperature drop characteristics of the roll body due to a difference in air volume (a flow rate of air exhausted from the exhaust ports, namely, a flow velocity of the air in the clearance part X1). The roll body has a diameter of 250 mm and an axial length of 1400 mm. An ambient temperature was 20 C., and a cooling start temperature of the roll body was 200 C. A surface temperature of the roll body was measured when the roll body was cooled in a state in which the number of revolutions of the roll body was set to 90 rpm. Time elapsed until the surface temperature of the roll body was lowered to 30 C. was measured by setting the air volume to 7 m.sup.3/min, 4 m.sup.3/min, 1 m.sup.3/min, and natural cooling (0 m.sup.3/min).
(41) The results are presented in
(42) A load having a higher temperature than a necessary operating temperature may enter the roll body 2 (heated roll). Therefore, a roll temperature may increase even when an electric input is discontinued. In this case, it is difficult to make high-precision temperature control only by cooling due to the gas flow. Hence, there is a method of precisely controlling to a desired temperature by carrying out heat extraction slightly exceeding the heat input of the load, and then inputting only an amount of heat corresponding to an excess thereof by induction heating. The heat control by cooling under flow volume adjustment as described above is effective for making this control.
(43) Even during cooling, the uniformity of temperature distribution in the shell part 21 of the roll body 2 is extremely important when the load operation is being carried out. The shell part 21 of the roll body 2 includes the jacket chambers 21A enclosing the two-phase gas-liquid heating medium therein. It is therefore possible to improve temperature uniformity in the axial direction of the shell part 21 of the roll body 2 during the cooling operation.
(44) Moreover, the suction ports 71 are disposed at the journal part 22 on the axial one end side. It is therefore possible to ensure mechanical strength of the journal part 22 and also uniformly suck the gas in the circumferential direction of the clearance part X1 while reducing suction resistance.
Second Embodiment
(45) An induction heated roll apparatus in a second embodiment is described below. Members identical or corresponding to those in the first embodiment are identified by the same reference numerals.
(46) The induction heated roll apparatus 100 of the second embodiment is mainly different from the first embodiment in support form of support shafts 331 and 332 of an induction heating mechanism 3.
(47) Specifically, in the induction heated roll apparatus 100, as illustrated in
(48) When suction is carried out from exhaust ports 72 by a suction mechanism 73 in the above configuration, not only the gas in a clearance part X1 between a roll body 2 and the induction heating mechanism 3 is sucked, but also the external gas may be sucked from a clearance between the drive shaft 222 and the support shaft 332 on the opposite axial end side, and from a rotary transformer 10. Therefore, a rotary seal 14 is disposed between an inner circumferential surface of the drive shaft 22 and an outer circumferential surface of the support shaft 332 in the present embodiment. Alternatively, the rotary seal 14 may be disposed between an inner circumferential surface of the stator housing 103 of the rotary transformer 10 and an outer circumferential surface of the drive shaft 222.
(49) When suction is started by a suction device 732 in the above configuration, the gas in the clearance part X1 is sucked from exhaust ports 72, and the gas around the roll body 2 is sucked from suction ports 71 into the clearance part X1. On this occasion, because the rotary seal 14 is disposed closer to the opposite axial end side than the exhaust ports 72, it is possible to prevent the external gas from being sucked from the opposite axial end side. The gas sucked from the suction ports 71 flows through the interior of the clearance part X1 and is then exhausted from the exhaust ports 72. Because any bearing (the bearing 62 in the foregoing embodiment) is not disposed on the opposite axial end side in the interior of the roll body 2, no high-temperature gas comes into contact with the bearing.
Effect of Second Embodiment
(50) In addition to the effect of the first embodiment, the induction heated roll apparatus 100 thus configured produces the following effect. That is, the support shaft 332 on the opposite axial end side is supported on a block 13 on the stationary side. Therefore, the bearing that can be subjected to the high-temperature gas is eliminated to prevent damage to the bearing due to the high-temperature gas, thereby preventing corotation of an induction coil 32 and the roll body 2.
Third Embodiment
(51) An induction heated roll apparatus in a third embodiment is described below. Members identical or corresponding to those in the first and second embodiments are identified by the same reference numerals.
(52) As illustrated in
(53) Specifically, in the induction heated roll apparatus 100, the cover body 731, the stator housing 103, and the support shaft block 13 are made of a common cylindrical member 15 that is a stationary body. A side circumferential wall of the cylindrical member 15 is disposed on a drive shaft 222 with two bearings 91 and 92 interposed therebetween. Space between the two bearings 91 and 92 serves as an exhaust space X2. A connection port P1 designed to connect a suction device 732 is disposed between the two bearings 91 and 92 on the side circumferential wall. A stator 102 of a rotary transformer 10 is disposed at a position opposed to a rotor 101 of the rotary transformer 10 on an inner circumferential surface of the side circumferential wall. A support shaft 332 extends through a bottom wall of the cylindrical member 15, and the support shaft 332 is secured to the bottom wall. Bottom here refers to the ends of a closed cylindrical shape. The cylindrical member 15 is secured to a stationary side by a member (not illustrated). The member on the stationary side is designed to prevent rotation of the cylindrical member 15 and axially slidably support the roll body 2 and the like in order to allow their thermal elongation.
Effect of Third Embodiment
(54) In addition to the effects of the first and second embodiments, the induction heated roll apparatus 100 thus configured is capable of simplifying the configuration on the opposite axial end side of the roll body 2 and decreasing the number of components because the cover body 731, the stator housing 103, and the support shaft block 13 are made of the common cylindrical member 15.
Other Modified Embodiments
(55) The present invention is not limited to the foregoing embodiments.
(56) For example, as illustrated in
(57) In this case, a gas flow amplifier designed to receive a compressed gas from a compressed gas source and suck the gas from an exhaust port may be used as the suction device 732. With this configuration, there is no need to separately prepare, for example, a ventilator or a blower when the compressed gas source exists at an installation location of the induction heated roll apparatus 100 in a factory or the like.
(58) Although the cover body 731, the stator housing 103, and the support shaft block 13 are integrally formed together in the third embodiment, just the cover body 731 and the stator housing 103 may be integrally formed together. In this case, the support shaft 332 on the opposite axial end side is supported by the support shaft block 13. In the configuration of the first embodiment, the cover body 731 and the stator housing 103 may be integrally formed together.
(59) When the cover body 731 and the stator housing 103 or the like are integrally formed together, the connection port P1 may be disposed axially further outside (a bottom wall side) than the stator 102 of the rotary transformer 10 in the common cylindrical member 15 as illustrated in
(60) In the configuration in
(61) In each of the foregoing embodiments, the exhaust ports 72 are disposed on the outer circumferential surface of the drive shaft 222 of the journal part 22. The exhaust ports 72 may be disposed on the flange part 221 of the journal part 22 as in the case with the suction ports 71 in the foregoing embodiments. In this case, an annular cover body 731 is disposed so as to oppose to the flange part 221.
(62) In each of the foregoing embodiments, the suction ports 71 are disposed at the flange part 221 of the journal part 22 on the one axial end side. Besides this, a variety of changes can be made if it is a position at which it is possible to supply the gas to one axial end side of the clearance part X1.
(63) For example, as illustrated in
(64) Alternatively, as illustrated in
(65) Still alternatively, as illustrated in
(66) Moreover, as illustrated in
(67) When the induction heated roll apparatus 100 is installed in a harmful atmosphere containing a corrosive gas and a combustible gas, the induction heated roll apparatus 100 may further include a supply mechanism 18 designed to supply gas to the suction port 71 as illustrated in
(68) It is conceivable to configure the supply mechanism 18 so as to include supply piping 181 to supply the gas to the suction port 71, and a joint member 182 to connect the supply piping 181 and the suction port 71. The supply piping 181 is coupled to a connection port P3 disposed in the joint member 182. In the configuration in
(69) The joint member 182 has an approximately cylindrical shape disposed outside the outer circumferential surface of the drive shaft 222 provided with the suction port 71. An inner circumferential surface of the joint member 182 and the outer circumferential surface of the drive shaft 222 form an introduction space X3 designed to introduce the gas into the suction port 71. The joint member 182 is provided with a connection port P3 designed to connect the supply piping 181, and the introduction space X3 is communicated with the connection port P3. The joint member 182 is disposed on the drive shaft 222 so as to cover the suction port 71 by interposing therebetween two bearings 191 and 192 disposed so as to hold the suction port 71 therebetween in the axial direction. The joint member 182 is secured to the stationary side so as not to rotate together with the drive shaft 222. The bearing 61 and the bearings 191 and 192 are preferably provided with a shielding structure, such as a shielding plate, in order to avoid suction of the gas in the harmful atmosphere.
(70) Alternatively, the induction heated roll apparatus 100 may further include a circulating passage CP and a heat exchanger HE as illustrated in
(71) The circulating passage CP illustrated in
(72) Further, in the induction heated roll apparatus 100, an insulating pipe 34 being smaller than inner circumferential diameter of the roll body 2 may be secured to the outer circumference of the induction heating mechanism 3, and the clearance part X1 may be formed between the roll body 2 and the insulating pipe 34 as illustrated in
(73) Furthermore, as illustrated in
(74) Although the cover body 731 and the cylindrical member 15 in the foregoing embodiments have the cylindrical shape, both may have, besides the cylindrical shape, any polygonal cylindrical shape, such as a rectangular cylinder, as long as it covers the outer circumference of the drive shaft 222.
(75) Besides the above, it will be understood that the present invention is not limited to the foregoing embodiments, and various modifications may be made without departing from the spirit and scope of the present invention.
DESCRIPTION OF THE REFERENCE CHARACTERS
(76) 100 induction heated roll apparatus 2 roll body 21 shell part 21A jacket chamber 22 journal part 222 drive shaft 3 induction heating mechanism 31 induction coil 331, 332 support shaft X1 clearance part 7 cooling mechanism 71 suction port 8 filter 72 exhaust port 73 suction mechanism 731 cover body (stationary body) 732 suction device 61, 62 bearing 91, 92 bearing 13 block (support shaft block) 15 cylindrical member (stationary body) 18 supply mechanism 181 supply piping 182 joint member