Solar heat collection system and operation method thereof
10775079 ยท 2020-09-15
Assignee
Inventors
Cpc classification
F22G1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/77
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S50/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/44
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
F24S20/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/47
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
Y02E10/40
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
Y02E10/46
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
International classification
F24S23/77
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S50/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S20/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S20/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The time for steam generated in a low temperature heating device to reach a saturated steam temperature is reduced a low temperature heating device configured to heat supplied water by using heat of sunlight to generate steam; a steam separation device configured to separate two-phase water-steam fluid generated in the low temperature heating device into water and steam; and a high temperature heating device configured to heat the steam separated in the steam separation device by using heat of sunlight reflected by a plurality of heliostats to generate superheated steam.
Claims
1. A solar heat collection system comprising: a low temperature heating device configured to heat supplied water by using heat of sunlight to generate steam; a steam separation device configured to separate two-phase water-steam fluid generated in the low temperature heating device into water and steam; and a high temperature heating device configured to heat the steam separated in the steam separation device by using heat of sunlight reflected by a plurality of heliostats to generate superheated steam, wherein the low temperature heating device includes: a first heat collector including a plurality of first heat collecting tubes that are linearly disposed and a plurality of first reflective members that are linearly disposed in a longitudinal direction of the plurality of first heat collecting and configured to reflect the sunlight onto the plurality of first heat collecting tubes, the first heat collector being configured to focus light reflected from the plurality of first reflective members onto the plurality of first heat collecting tubes to heat water flowing in the plurality of first heat collecting tubes; and a second heat collector including a plurality of second heat collecting tubes that are linearly disposed in a plane, and configured to focus light reflected from at least a part of the plurality of heliostats to heat water flowing in the plurality of second heat collecting tubes, the first heat collector is disposed downstream in a water flow, the second heat collector is disposed upstream, and the first heat collector and the second heat collector are connected in series with each other, and the low temperature heating device further includes a flow channel switching mechanism configured to switch a flow channel of water between a first flow channel along which the water flows into the first heat collector through the second heat collector and a second flow channel along which the water bypasses the second heat collector and flows into the first heat collector.
2. The solar heat collection system according to claim 1 further comprising: a heliostat control device configured to control angles of the plurality of heliostats, wherein the heliostat control device controls the angle of each of the plurality of heliostats such that the sunlight is reflected onto the high temperature heating device and such that the sunlight is reflected onto the second heat collector for a predetermined period of time.
3. The solar heat collection system according to claim 2, wherein the flow channel switching mechanism switches the flow channel to the first flow channel for the predetermined period of time, and switches the flow channel from the first flow channel to the second flow channel after the predetermined period of time elapses.
4. The solar heat collection system according to claim 3, wherein the predetermined period of time is a period of time until the water supplied to the low temperature heating device reaches a saturated steam temperature.
5. An operation method of a solar heat collection system, the solar heat collection system including a low temperature heating device configured to heat supplied water by using heat of sunlight to generate steam, a steam separation device configured to separate two-phase water-steam fluid generated in the low temperature heating device into water and steam, and a high temperature heating device configured to heat the steam separated in the steam separation device by using heat of sunlight reflected by a plurality of heliostats to generate superheated steam, the low temperature heating device including a first heat collector disposed downstream in a water flow and a second heat collector disposed upstream and being connected with the first heat collector in series with each other, the first heat collector including a plurality of first heat collectin tubes that are linearly disposed and a plurality of first reflective members that are linearly disposed in a longitudinal direction of the plurality of first heat collecting tubes and configured to reflect the sunlight onto the plurality of first heat collecting tubes, the first heat collector being configured to focus light reflected from the plurality of first reflective members onto the plurality of first heat collecting tubes to heat water flowing in the plurality of first heat collecting tubes; and a second heat collector including a plurality of second heat collecting tubes that are linearly disposed in a plane, and configured to focus light reflected from at least a part of the plurality of heliostats to heat water flowing in the plurality of second heat collecting tubes, the operation method comprising: flowing water into the first heat collector through the second heat collector; reflecting sunlight onto the second heat collector by using at least a part of the plurality of heliostats for a predetermined period of time; and causing water to bypass the second heat collector and to flow into the first heat collector after the predetermined period of time elapses.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
First Embodiment
(10) Embodiments of the present invention will be described below with reference to the drawings.
(11) In
(12) In the description below, piping that connects components is expressed as line -. The represents a reference sign, and, for example, a line 2-3 represents piping that connects the low temperature heating device 2 and the steam separation device 3.
(13) As illustrated in
(14) The two-phase water-steam fluid introduced into the steam separation device 3 is separated into water and steam in the steam separation device 3. The separated saturated steam is sent to the high temperature heating device 4 through a line 3-4. The saturated steam introduced into the high temperature heating device 4 is further heated in the high temperature heating device 4 using heat of the sunlight 7 reflected by the heliostats 5 to generate superheated steam. The water separated in the steam separation device 3 is sent to the circulating pump 11 through a line 3-11. The water pressurized in the circulating pump 11 is sent to an inlet of the low temperature heating device 2 through a line 11-2.
(15) Next, the high temperature heating device 4 will be described in detail. The high temperature heating device 4 is a so-called tower type light focusing and heat collector device, and more specifically, includes a tower 9 having a predetermined height (approximately 30 m to 100 m) and a heat transfer tube panel 8 mounted on top of the tower 9. On the other hand, the large number of heliostats oriented in various directions are disposed on the ground surface, and a group of heliostats focus sunlight onto the high temperature heating device 4 (heat transfer tube panel 8) while following the movement of the sun 6 to generate superheated steam. The angle of each of the heliostats 5 is controlled by the control device 20. In addition, as described later, angles of a part of the group of heliostats 5 (reference sign 5a) are controlled by the control device 20 such that the heliostats 5a can reflect sunlight onto the low temperature heating device 2.
(16) Next, the low temperature heating device 2 will be described in detail. The low temperature heating device 2 is a so-called Fresnel type light focusing and heat collector device, and more specifically, includes a large number of flat or slightly curved light focusing mirrors 12, of which angles are slightly different from each other, and a group of heat transfer tubes 13 horizontally disposed in a plane a few meters above such a group of light focusing mirrors 12. The sunlight 7 is focused by the group of light focusing mirrors 12 for the group of heat transfer tubes 13 to heat the water passing through each of the heat transfer tubes 13 and thus to generate two-phase water-steam fluid.
(17) In some embodiments, a trough type light focusing and heat collector device, including light focusing mirrors extending in a trough shape and heat transfer tubes disposed above the inner circumferences of curved surfaces of the light focusing mirrors and focusing sunlight onto the heat transfer tubes using the light focusing mirrors to heat water passing through the heat transfer tubes and thus to generate steam, may be used instead of the low temperature heating device 2 including the Fresnel type light focusing and heat collector device.
(18) Next, control of the group of heliostats 5 by the control device 20 will be described. The control device 20 receives data from the temperature detector 15 that detects the steam temperature at an outlet of the low temperature heating device 2. For example, during a period (predetermined period) after the solar heat collection system 1 starts operating until the steam temperature detected at the temperature detector 15 reaches the saturated steam temperature, the control device 20 controls the angles of the heliostats 5a disposed closer to the low temperature heating device 2 among the group of heliostats 5 such that the heliostats 5a face the heat transfer tubes 13 of the low temperature heating device 2. This causes the heliostats 5a to reflect and focus the sunlight 7 onto the heat transfer tubes 13, resulting in a reduction in time of saturated steam generation by the low temperature heating device 2. When the steam temperature detected at the temperature detector 15 reaches the saturated steam temperature, the control device 20 controls the angles of the heliostats 5a directed to the low temperature heating device 2 such that the heliostats 5a face the high temperature heating device 4 (return to the original positions).
(19) Note that the angles of the heliostats 5a disposed closer to the low temperature heating device 2 among the group of heliostats 5 are controlled since the efficiency of focusing light onto the heat transfer tubes 13 of the low temperature heating device 2 is higher than the case where the angles of the heliostats remote from the low temperature heating device 2 are controlled.
(20) In this manner, saturated steam is not supplied to the high temperature heating device 4 until saturated steam is generated in the low temperature heating device 2, and the high temperature heating device 4 is held standby. Thus, all the group of heliostats 5 may not be necessarily used to focus the sunlight 7 onto the heat transfer tube panel 8 of the high temperature heating device 4. In this embodiment, a part of the heliostats 5a, excluding the heliostats 5 required for preheating of the high temperature heating device 4, are used to focus the sunlight 7 onto the low temperature heating device 2 to reduce the time for saturated steam generation by the low temperature heating device 2.
(21) The control device 20 receives data from a temperature detector 16 that detects the steam temperature at an outlet of the high temperature heating device 4. For example, after the solar heat collection system 1 starts operating and the steam temperature detected at the temperature detector 16 reaches a predetermined temperature (for example, 550 C.), the predetermined temperature can be maintained without directing all the heliostats 5 to the high temperature heating device 4 in a case where the flow rate of saturated steam from the low temperature heating device 2 does not reach the rated flow, depending on the number of heliostats 5 or solar radiation conditions.
(22) Accordingly, the angles of, for example, the heliostats 5a that are held standby and do not face the high temperature heating device 4 among the group of heliostats 5 are controlled such that the heliostats 5a face the heat transfer tubes 13 of the low temperature heating device 2. This causes the heliostats 5a to reflect and focus the sunlight 7 onto the heat transfer tubes 13, resulting in an increase in the flow rate of saturated steam generated in the low temperature heating device 2.
(23) When the steam temperature detected at the temperature detector 16 falls below a predetermined temperature (for example, 550 C.), the control device 20 controls the angles of the heliostats 5a directed to the low temperature heating device 2 such that the heliostats 5a face the high temperature heating device 4.
(24) Thus, in this embodiment, excluding the heliostats 5a for maintaining the steam temperature at the outlet of the high temperature heating device 4, a part of the heliostats 5 are used to focus the sunlight 7 onto the low temperature heating device 2 to increase the flow rate of saturated steam from the low temperature heating device 2.
(25) Next, advantageous effects of the present invention will be described by comparing with a known technology.
(26) As illustrated in
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(28) Next, various modifications of the low temperature heating device applicable to the present invention will be described with reference to the drawings.
(29) Furthermore, as illustrated in
(30) A low temperature heating device 2h illustrated in
Second Embodiment
(31) Next, a second embodiment of the present invention will be described.
(32) In this embodiment, the saturated steam generation system includes a first linear light focusing heat collector (first heat collector) 51 and a second linear light focusing heat collector (second heat collector) 52 as a low temperature heating device.
(33) The first linear light focusing heat collector 51 includes the multiple linearly disposed double vacuum-tube type heat collecting tubes (first heat collecting tube) 13 and the multiple light focusing mirrors (first reflective member) 12 disposed linearly in the longitudinal direction of the respective double vacuum tube type heat collecting tubes 13 (hereinafter referred to as heat collecting tubes 13) and reflecting sunlight onto the heat collecting tubes 13, and is configured to heat water flowing in each of the heat collecting tubes 13 by focusing light reflected from each of the light focusing mirrors 12 onto each of the heat collecting tubes 13. The multiple heat collecting tubes 13 are disposed in a plane a few meters above the group of light focusing mirrors 12. The number of heat collecting tubes 13 and the number of light focusing mirrors 12 may be determined as appropriate according to the specifications.
(34) The second linear light focusing heat collector 52 includes multiple double vacuum tube type heat collecting tubes (second heat collecting tube) 30. The multiple double vacuum tube type heat collecting tubes 30 (hereinafter, referred to as heat collecting tubes 30) are vertically disposed in a plane (panel shape) while each of the heat collecting tubes 30 is horizontally disposed. The heat collecting tubes 30 are connected in series, the multiple heat collecting tubes 30 disposed in a plane receive light reflected from heliostats 5a held standby, and then water flowing in the heat collecting tubes 30 is heated. Herein, the number of heat collecting tubes 30 may be determined as appropriate according to the specifications. Double vacuum tube type of heat collecting tubes having a tube outer diameter of 70 mm and a glass tube outer diameter of 125 mm, for example, are applicable to the heat collecting tubes 13 and the heat collecting tubes 30.
(35) The second linear light focusing heat collector 52 is installed in a space between the tower 9 and the heliostats 5. In this embodiment, the second linear light focusing heat collector 52 is mounted on a support structure of the tower 9 with consideration of the focal distance from the heliostats 5. However, the second linear light focusing heat collector 52 may be mounted on an additional support structure disposed in the space between the tower 9 and the heliostats 5.
(36) Additionally, in this embodiment, an auxiliary mirror (second reflective member) 55 is disposed on the rear side of the heat collecting tubes 30 (opposite the side on which the heliostats 5 are arranged) to increase the light focusing efficiency by secondarily reflecting the reflected light escaping through gaps between the heat collecting tubes 30. However, the auxiliary mirror may not be necessarily included.
(37) The first linear light focusing heat collector 51 and the second linear light focusing heat collector 52 are connected in series via two three-way valves 31 and 32 serving as flow channel switching mechanisms. The second linear light focusing heat collector 52 is disposed upstream in a water flow, and the first linear light focusing heat collector 51 is disposed downstream. More specifically, an inlet of the heat collecting tubes 30 is connected with an outlet of a circulating pump 11 via the three-way valve 31. Moreover, an outlet of the heat collecting tubes 30 is connected with an inlet of the heat collecting tubes 13 via the three-way valve 32. Furthermore, the three-way valve 31 and the three-way valve 32 are connected with each other via the ends of the remaining ports using piping. Additionally, a steam drum water thermometer 33 that measures the water temperature inside the steam drum 3 is disposed in the steam drum 3, and open and close signals based on the gauge reading of the steam drum water thermometer 33 are input to the two three-way valves 31 and 32.
(38) Operations of the solar heat collection system according to the second embodiment configured as above will now be described. When the solar heat collection system starts after sunrise, the saturated steam generation system starts first. Until the gage reading of the steam drum water thermometer 33 reaches a target temperature (for example, 300 C.), the three-way valve 31 is open in a direction that allows water serving as in-tube fluid to flow in a direction of an arrow A in
(39) When the circulating pump 11 is driven in this state, water sent out from the circulating pump 11 sequentially flows into the three-way valve 31, the heat collecting tubes 30, the three-way valve 32, the heat collecting tubes 13, and the steam drum 3, and then returns to the circulating pump 11. At this moment, the heat collecting tubes 30 are irradiated with reflected light 34 from the heliostats 5a on standby to increase the temperature of water inside the heat collecting tubes 30. The hot water is led to the heat collecting tubes 13, and the temperature of the hot water is further increased by light reflected from the light focusing mirrors 12 irradiated with the sunlight 7.
(40) After the gauge reading of the steam drum water thermometer 33 reaches the target temperature, saturated steam inside the steam drum 3 is ready to be supplied to the superheater 8. At the stage where the superheater 8 is irradiated with light reflected by the heliostats 5, the irradiation by the heliostats 5a held standby is switched from the heat collecting tubes 30 to the superheater 8 to generate superheated steam. Subsequently, the three-way valves 31 and 32 are switched to separate the fluid in the heat collecting tubes 13 and the fluid in the heat collecting tubes 30. In other words, the hot water sent out from the circulating pump 11 directly flows into the heat collecting tubes 13 in a direction of an arrow B in
(41) As described above, according to the second embodiment, the amount of heat collected by the entire low temperature heating device (linear light focusing heat collector) at startup of the solar heat collection system is increased, and thus saturated steam can be generated in the steam drum 3 faster than was previously possible. This results in a reduction in startup time.
(42) Moreover, the multiple heat collecting tubes 30 are disposed in an orthogonal plane between the tower 9 and the heliostats 5, and thus the heat collecting tubes 30 can be efficiently irradiated with light reflected from the heliostats 5a held standby, and in addition, the entire heat collecting tubes 30 can be efficiently irradiated with light reflected from the heliostats 5a held standby. This facilitates formation of a uniform heating state and control of local increases in temperature such as hot spots.
(43) As described above, in accordance with the solar heat collection system 1 according to embodiments of the present invention, water supplied to the low temperature heating device 2 can be heated using light reflected from the light focusing mirrors 12 of the low temperature heating device 2 and light reflected from the heliostats 5a held standby. This leads to a reduction in time required to generate saturated steam in the low temperature heating device 2. The operating ratio of the solar heat collection system 1 is thus improved. Moreover, even at high latitudes, utilization of the heliostats 5a held standby rectifies the imbalance of the amounts of collected heat between the low temperature heating device 2 and the high temperature heating device 4 caused according to the seasons, and thus prevents a reduction in light focusing efficiency.
(44) The present invention is not limited to the above-described embodiments, and includes various modifications. For example, the details of the above-described embodiments are for the purpose of intelligibly describing the present invention, and are not intended to limit the invention to those with all the configurations described above.
(45) For example, the three-way valves 31 and 32 are described only as an example combination of the flow channel switching mechanisms. Alternatively, for example, multiple flow rate adjustment valves may be disposed on a flow channel passing through the heat collecting tubes 30 and on a flow channel bypassing the heat collecting tubes 30.
(46) In this case, the flow rate of fluid (water) to be heated flowing in the heat collecting tubes 30 can be adjusted while the whole amount of fluid to be heated is flowing in the heat collecting tubes 13 by controlling the opening of each of the flow rate adjustment valves. This enables adjustment of operation in which, for example, the whole amount of fluid to be heated flows into the heat collecting tubes 13 and the heat collecting tubes 30 immediately after the solar heat collection system 100 starts up, and in which the flow rate of the fluid to be heated flowing in the heat collecting tubes 30 is gradually reduced with the passage of time after startup.
REFERENCE NUMERALS
(47) 1 Solar heat collection system 2 Low temperature heating device 3 Steam separation device/steam drum 4 High temperature heating device 5 Heliostat 5a Heliostat on standby 6 Sun 7 Sunlight 8 Heat transfer tube panel/superheater 26 9 Tower 10 Water supply pump 11 Circulating pump 12 Light focusing mirror 13 Heat transfer tube/heat collecting tube 15 Temperature detector 20 Control device (heliostat control device) 30 Double vacuum tube type heat collecting tube (second heat collecting tube) 31, 32 Three-way valve (flow channel switching mechanism) 55 Auxiliary mirror (second reflective member)