Condenser and turbine equipment
10190827 ยท 2019-01-29
Assignee
Inventors
- Jiro Kasahara (Tokyo, JP)
- Keigo Nishida (Tokyo, JP)
- Taichi Nakamura (Tokyo, JP)
- Katsuhiro Hotta (Tokyo, JP)
Cpc classification
F01K5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/1661
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K9/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01K5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A condenser includes a container into which steam is to flow, cooling pipes which are positioned inside the container and configured to cool the steam so as to form condensed water, at least one extraction pipe for extracting air included inside the container, at least one extraction hole which is defined in the extraction pipe and through which an interior of the at least one extraction pipe and an interior of the container communicate with each other, and a cylindrical cover which is configured with a gap spaced from the at least one extraction pipe and covers the at least one extraction hole so as to regulate an inflow of the condensed water into the at least one extraction hole. A plurality of the extraction holes are formed around the extraction pipe, and the cylindrical cover is radially outside the at least one extraction pipe with the gap spaced therebetween.
Claims
1. A condenser comprising: a container into which a condensable gas is to flow; cooling pipes which are positioned inside the container and configured to cool the condensable gas so as to form a condensate; an extraction air flow path for extracting a noncondensable gas included inside the container; at least one extraction hole which is defined in the extraction air flow path and through which an interior of the extraction air flow path and an interior of the container communicate with each other; and at least one cover which is configured with a gap spaced from the extraction air flow path and covers the at least one extraction hole so as to regulate an inflow of the condensate into the at least one extraction hole, wherein: the extraction air flow path is composed of an extraction box, the at least one extraction hole is defined in a side surface of the extraction box which is a vertical surface, the at least one cover includes an upper cover which protrudes from the side surface of the extraction box above the at least one extraction hole and covers the at least one extraction hole with a gap spaced from the side surface of the extraction box, and a lower cover which protrudes from the side surface of the extraction box below the at least one extraction hole and covers the upper cover with a gap spaced from the upper cover such that the upper cover ends before the lower cover, the lower cover extends beyond an end of the upper cover, and the lower cover includes a drain hole for discharging the condensate.
2. Turbine equipment comprising: a heater configured to heat a condensate to generate a condensable gas; a turbine configured to be rotated by the condensable gas generated in the heater; and the condenser according to claim 1 which is configured to condense the condensable gas discharged from the turbine.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
DESCRIPTION OF EMBODIMENTS
(6) Hereinafter, embodiments according to the present invention will be described in detail based on the drawings. Incidentally, the invention is not limited to the embodiments. In addition, components in the following embodiments include a component, which can be easily replaced by a person skilled in the art, or the substantially same component. Further, the components described below may be combined appropriately, and in the case of several embodiments, the embodiments may be combined with each other.
(7) First Embodiment
(8)
(9) Turbine equipment 1 of the first embodiment is steam turbine equipment which generates steam S as a condensable gas and rotates a turbine 6 using the generated steam S. The turbine equipment 1 is provided with a condenser 7 in order to lower the back pressure of the turbine 6. First, the turbine equipment 1 will be described with reference to
(10) The turbine equipment 1 includes a heater 5, the turbine 6, the condenser 7, a circulating pump 8, and a generator 9, which are connected by a circulating line L.
(11) The heater 5 is, for example, a boiler, and generates the steam S by heating water (condensed water) W. The condensed water, which is condensed in the condenser 7 described later, flows into the heater 5. In addition, the steam S generated in the heater 5 is supplied to the turbine 6 through the circulating line L.
(12) The turbine 6 is rotated by the steam S supplied from the heater 5. The turbine 6 is connected to the generator 9 and rotational power of the turbine 6 drives the generator 9 so that the generator 9 generates electrical power. The steam S discharged from the turbine 6 flows into the condenser 7 through the circulating line L.
(13) The condenser 7 condenses the steam S flowed therein from the turbine 6 to form the condensed water W so that the back pressure of the turbine 6 is lowered. Incidentally, the condenser 7 will be described later in detail. Then, the condensed water W generated in the condenser 7 is supplied to the circulating pump 8 through the circulating line L. The circulating pump 8 supplies the condensed water W supplied from the condenser 7 toward the heater 5.
(14) Accordingly, in the turbine equipment 1, the heater 5 heats the condensed water W to generate the steam S, and the turbine 6 is rotated by the generated steam S so that the generator 9 generates the electrical power. In addition, in the turbine equipment 1, the condenser 7 returns the steam S used in the turbine 6 into the condensed water W and the circulating pump 8 supplies the condensed water W to the heater 5.
(15) Next, with reference to
(16) As illustrated in
(17) The four cooling pipe groups 12 are arranged in a vertical direction and a horizontal direction. The cooling pipe groups 12 are configured to be disposed in parallel such that the longitudinal direction of a plurality of cooling pipes 25 (the axial direction of the pipe) is set to be the horizontal direction. At this time, the cooling pipe groups 12 are disposed such that the longitudinal direction of the cooling pipe 25 and the flowing direction of the steam S are perpendicular to each other.
(18) In addition, as illustrated in
(19) As illustrated in
(20) The extraction pipe 13 is formed to be a cylindrical pipe in which the air A flows, and a plurality of extraction holes 31 are formed around the extraction pipe. The plurality of the extraction holes 31 are formed with an adjustment performed depending on the pressure distribution of the interior of the condenser 7 in the longitudinal direction of the extraction pipe 13. That is, the air A can flow into the extraction pipe 13 more easily through the extraction hole 31, which is formed in a region in which pressure of the interior of the condenser 7 is high in the longitudinal direction of the extraction pipe 13, than through the extraction hole 31 which is formed in a region in which the pressure is low. For this reason, the extraction hole 31, which is formed in the region in which the pressure of the interior of the condenser 7 is high, is formed to be smaller than the extraction hole 31 which is formed in the region in which the pressure is low.
(21) As illustrated in
(22) In addition, the cylindrical cover 14 is formed with an opening portion 35 in the lower region thereof in the vertical direction. The opening portion 35 is formed to broaden to both sides in a circumferential direction with a center line I, which extends through a center P of the cylindrical cover 14 in the vertical direction. In addition, the opening portion 35 is formed to extend along the longitudinal direction of the cylindrical cover 14.
(23) Here, a line coupling the center P of the cylindrical cover 14 and one end portion of the opening portion 35 in the circumferential direction of the cylindrical cover 14 in a plane perpendicular to the cylindrical cover 14 is set to a first coupling line L1. In addition, a line coupling the center P of the cylindrical cover 14 and the other end portion of the opening portion 35 in the circumferential direction of the cylindrical cover 14 in a plane perpendicular to the cylindrical cover 14 is set to a second coupling line L2. When the angle formed by the first coupling line L1 and the second coupling line L2 is set to an opening angle , the opening angle is set to be in a range of 45120.
(24) In addition, the gap C between the extraction pipe 13 and the cylindrical cover 14 in a radial direction is formed such that a cross-sectional area of the flow path in a plane perpendicular to the flow path, which is formed between the extraction pipe 13 and the cylindrical cover 14 and in which the air A flows, is larger than a total opening area of the plurality of the extraction holes 31 formed in the extraction pipe 13.
(25) In the condenser 7 having the above configuration, when the steam S flows into the container 11 from the steam inlet portion 21 of the container 11, the steam S is condensed by the cooling pipe groups 12 to be the condensed water W. At this time, the cooling water supplied from the inlet water room 28 flows in the plurality of the cooling pipes 25 configuring the cooling pipe group 12. Then, the cooling water having flown in the cooling pipes 25 flows into the outlet water room 29. That is, the steam S is condensed to be the condensed water W through heat exchange with the cooling water flowing inside the cooling pipe.
(26) The condensed water W condensed by the cooling pipe groups 12 drips downward in the vertical direction. At this time, the condensed water W dripping above the extraction pipe 13 avoids the extraction pipe 13 by the cylindrical cover 14 to be guided to the lower portion of the container 11. For this reason, the condensed water W which is condensed is stored in the lower portion of the container 11. Then, the condensed water W stored in the lower portion of the container 11 effuses through the outlet port 24 toward the circulating pump 8.
(27) As described above, according to the first embodiment, although the condensed water W is generated by the cooling pipes 25, the cylindrical cover 14 can regulate the inflow of the condensed water W into the extraction holes 31, and thus clogging of the extraction holes 31 with the condensed water W can be suppressed. For this reason, the air A can be appropriately extracted through the extraction holes 31 depending on the pressure distribution in the longitudinal direction of the extraction pipe 13, and thus the performance of the extraction of the air A through the extraction pipes 13 can be maintained.
(28) In addition, according to the first embodiment, the inflow of the condensed water W into the extraction holes 31 can be suppressed with the simple configuration by covering the outside of the extraction pipe 13 with the cylindrical cover 14.
(29) In addition, according to the first embodiment, since the opening angle of the opening portion 35 can be set to an appropriate angle, the inflow of the condensed water W into the extraction pipes 13 can be suppressed while the air A is allowed to flow into the extraction pipes 13.
(30) In addition, according to the first embodiment, since it is possible to increase the flow rate of the air A flowing through the gap C between the extraction pipe 13 and the cylindrical cover 14 with respect to the extraction air amount of the air A absorbed into the extraction pipe 13 through the extraction holes 31, the pressure loss in the flow path between the extraction pipe 13 and the cylindrical cover 14 can be reduced.
(31) In addition, according to the first embodiment, since it is possible to preferably extraction the air A inside the condenser 7, the condensation of the steam S can be efficiently performed, and thus, a low-pressure state on the back pressure side of the turbine 6 can be preferably maintained. Accordingly, the work efficiency of the turbine 6 can be preferably maintained.
(32) Second Embodiment
(33) Next, with reference to
(34) Specifically, as illustrated in
(35) The extraction box 51 is formed in a hollow-box shape, and is provided on the outside of the side wall of the container 11. For this reason, the side wall of the container 11 is formed to be the side surface of the extraction box 51, and the side surface of the extraction box 51 is formed to be a vertical surface. The longitudinal direction of the extraction box 51 is set to be the horizontal direction, one end of the extraction box is connected to the suction device (not illustrated), and the suction device sucks the interior of the extraction box 51 to extract the air A inside the condenser 7.
(36) A plurality of extraction holes 53 are formed in the side surface of the extraction box 51. The plurality of extraction holes 53 are formed to be arranged with a predetermined gap spaced therebetween in the horizontal direction. As with the plurality of the extraction holes 31 of the first embodiment, the plurality of extraction holes 53 are formed with an adjustment performed depending on the pressure distribution of the interior of the condenser 7 in the longitudinal direction of the extraction box 51.
(37) The upper cover 56 is formed such that the upper cover protrudes from the side surface of the extraction box 51 above the extraction holes 53 toward the interior of the condenser 7 and extends downward in the vertical direction with a predetermined gap spaced from the side surface of the extraction box 51. Then, the upper cover 56 covers the plurality of the extraction holes 53 formed in the side surface of the extraction box 51.
(38) The lower cover 57 is formed such that the lower cover protrudes from the side surface of the extraction box 51 below the extraction holes 53 toward the interior of the condenser 7 and extends upward in the vertical direction with a predetermined gap spaced from the upper cover 56. Then, the lower cover 57 covers the upper cover 56. That is, the upper cover 56 and the lower cover 57 are formed to overlap with each other in the horizontal direction.
(39) At this time, the gap between the side surface of the extraction box 51 and the upper cover 56 and the gap between the upper cover 56 and the lower cover 57 are formed, as with that in the first embodiment, such that the cross-sectional area of the flow path in a plane perpendicular to the flow path, which is formed in each gap and in which the air A flows, is larger than the total opening area of the plurality of the extraction holes 53 formed in the side surface of the extraction box 51.
(40) In addition, the lower cover 57 is formed with a drain hole 61 for discharging the condensed water W stored in the lower cover 57. The condensed water W discharged through the drain hole 61 is stored in the lower portion of the container 11.
(41) As described above, according to the second embodiment, the plurality of the extraction holes 53 formed in the side surface of the extraction box 51 are covered with the upper cover 56 so that the inflow of the condensed water W into the extraction holes 53 can be suppressed.
(42) In addition, according to the second embodiment, since the upper cover 56 is covered with the lower cover 57, the air A flows between the lower cover 57 and the upper cover 56, then flows between the upper cover 56 and the side surface of the extraction box 51, and then flows into the extraction box 51 through the extraction holes 53. Thus, the inflow of the condensed water W into the extraction holes 53 can be more preferably suppressed by additionally providing the lower cover 57.
(43) In addition, according to the second embodiment, the drain hole 61 is formed in the lower cover 57 so that the condensed water W stored in the lower cover 57 can be discharged through the drain hole 61.
(44) Incidentally, although the upper cover 56 and the lower cover 57 are provided in the second embodiment, the lower cover 57 may be not provided as long as at least the upper cover 56 is provided.
REFERENCE SIGNS LIST
(45) 1 TURBINE EQUIPMENT
(46) 5 HEATER
(47) 6 TURBINE
(48) 7 CONDENSER
(49) 8 CIRCULATING PUMP
(50) 9 GENERATOR
(51) 11 CONTAINER
(52) 12 COOLING PIPE GROUP
(53) 13 EXTRACTION PIPE
(54) 14 CYLINDRICAL COVER
(55) 21 STEAM INLET PORTION
(56) 22 MAIN BODY
(57) 23 INLET PORT
(58) 24 OUTLET PORT
(59) 25 COOLING PIPE
(60) 26 TUBE SUPPORT PLATE
(61) 28 INLET WATER ROOM
(62) 29 OUTLET WATER ROOM
(63) 31 EXTRACTION HOLE
(64) 34 CONNECTION PIPE
(65) 35 OPENING PORTION
(66) 50 CONDENSER
(67) 51 EXTRACTION BOX
(68) 53 EXTRACTION HOLE
(69) 56 UPPER COVER
(70) 57 LOWER COVER
(71) 61 DRAIN HOLE
(72) S STEAM
(73) W CONDENSED WATER
(74) A AIR
(75) L CIRCULATING LINE
(76) C GAP
(77) I CENTER LINE
(78) L1 FIRST COUPLING LINE
(79) L2 SECOND COUPLING LINE