CN111964478B - Cross-flow type fog dissipation cooling tower - Google Patents
Cross-flow type fog dissipation cooling tower Download PDFInfo
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- CN111964478B CN111964478B CN202010818381.XA CN202010818381A CN111964478B CN 111964478 B CN111964478 B CN 111964478B CN 202010818381 A CN202010818381 A CN 202010818381A CN 111964478 B CN111964478 B CN 111964478B
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28C—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA COME INTO DIRECT CONTACT WITHOUT CHEMICAL INTERACTION
- F28C1/00—Direct-contact trickle coolers, e.g. cooling towers
- F28C1/16—Arrangements for preventing condensation, precipitation or mist formation, outside the cooler
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F25/00—Component parts of trickle coolers
- F28F25/02—Component parts of trickle coolers for distributing, circulating, and accumulating liquid
- F28F25/04—Distributing or accumulator troughs
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F25/00—Component parts of trickle coolers
- F28F25/02—Component parts of trickle coolers for distributing, circulating, and accumulating liquid
- F28F25/08—Splashing boards or grids, e.g. for converting liquid sprays into liquid films; Elements or beds for increasing the area of the contact surface
- F28F25/087—Vertical or inclined sheets; Supports or spacers
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- Engineering & Computer Science (AREA)
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- General Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- Heat-Exchange Devices With Radiators And Conduit Assemblies (AREA)
Abstract
The invention discloses a cross-flow type fog dispersal cooling tower, which belongs to the technical field of cooling tower equipment and comprises a water sowing basin and a filler below the water sowing basin; a water diversion part is arranged above the water sowing basin, and a water leakage hole is formed in the bottom surface of the water diversion part; a movable water diversion bottom plate is arranged in the water diversion part, and water diversion holes for adjusting the on-off state of the water leakage holes are formed in the water diversion bottom plate; the bottom surface of the water sowing basin is provided with water sowing holes corresponding to a channel of the filler below and a water leakage hole above; two adjacent water spreading holes in the water spreading basin are separated by a partition plate. The invention can eliminate the fog phenomenon generated by the operation of the cooling tower in the low-temperature environment, and has the advantages of small change to the original cooling tower, low modification cost, various operation modes and wide application range.
Description
Technical Field
The invention relates to the technical field of cooling towers, in particular to a cross-flow type fog dissipation cooling tower.
Background
When the cooling tower operates, the air entering the cooling tower and cooling water carry out heat and moisture exchange in the tower, the temperature of the cooling water is reduced, and partial moisture is lost due to evaporation; the air temperature rises and absorbs the evaporated water vapor to reach or approach a saturated state, and the evaporated water vapor is discharged into the air, which is most obvious in winter, and the cooling tower generates a plume phenomenon. On the one hand, a large amount of water resources are discharged into the air, and on the other hand, the fog phenomenon interferes with human life, for example, the nearby environment is covered by smoke, the surrounding ground is frozen, and the humidity of the surrounding air. The cross-flow cooling tower is generally applied to residential communities, hospitals, hotels, shopping malls and the like as a common civil cooling tower, is a cooling tower closer to the life of people relatively, and is important for the life of people by any point of progress in aspects of water resource saving and environmental improvement.
In recent years, a plurality of companies or scientific research units are vigorously invested in the research on water saving and fog dispersal of the cooling tower, and in the existing products, the cost is high and is often more than 3 times compared with the cost of the common cooling tower, so that the development of the industry is seriously hindered.
Disclosure of Invention
The invention aims to provide a cross-flow type fog dispersal cooling tower which can eliminate the fog phenomenon generated by the operation of the cooling tower in a low-temperature environment, and has the advantages of small change of the original cooling tower, low modification cost, various operation modes and wide application range.
In order to realize the purpose, the invention adopts the technical scheme that:
a cross-flow type fog dispersal cooling tower comprises a water sowing basin and a filler below the water sowing basin; a water diversion part is arranged above the water sowing basin, and a water leakage hole is formed in the bottom surface of the water diversion part; the on-off of the water leakage holes can be adjusted; the bottom surface of the water sowing basin is provided with water sowing holes corresponding to a channel of the filler below and a water leakage hole above; two adjacent water spreading holes in the water spreading basin are separated by a partition plate.
As a further improvement of the technical scheme, a movable water diversion bottom plate is arranged in the water diversion piece, and water diversion holes used for adjusting the on-off state of the water leakage holes are formed in the water diversion bottom plate.
As a further improvement of the technical scheme, the water distribution holes in the same row on the water distribution bottom plate are formed by a first water distribution hole and a second water distribution hole which are distributed at intervals; the first water dividing hole and the second water dividing hole are different in size.
As a further improvement of the technical scheme, the width of the first water dividing hole is larger than that of the water leakage hole; the second water dividing holes are the same in size as the water leakage holes.
As a further improvement of the technical scheme, the water leakage holes in the same row on the water diversion piece are formed by a first water leakage hole and a second water leakage hole which are distributed at intervals; the first water leakage hole and the second water leakage hole are different in size.
As a further improvement of the technical scheme, the width of the first water leakage hole is larger than that of the second water leakage hole; and the size of the second water leakage hole is the same as that of the water distribution hole.
As a further improvement of the technical scheme, a channel between the fillers is divided into a first channel area and a second channel area; the first channel area and the second channel area are distributed at intervals; the filler channel area corresponding to the upper water spreading hole is a first channel area; the first channel region and the second channel region are each formed by at least one layer of packing channels.
As a further improvement of the technical scheme, the filler is provided with a positioning card for keeping the fixed distance between the fillers.
As a further improvement of the technical scheme, the water leakage hole and the water distribution hole are both in a strip shape.
As a further improvement of the technical scheme, the water diversion bottom plate and the water diversion piece can enable the water leakage hole to be in three on-off states through the adjustment of the relative position, and the on-off states are respectively as follows:
the first method comprises the following steps: all the water leakage holes are communicated with the water distribution holes;
and the second method comprises the following steps: the first water dividing holes are communicated with the corresponding water leakage holes, and the second water dividing holes are partitioned by the bottom surface of the water dividing piece; or the first water leakage hole is communicated with the corresponding water distribution hole, and the second water leakage hole is isolated by the bottom surface of the water distribution bottom plate;
and the third is that: all the water leakage holes are completely isolated.
As a further improvement of the technical scheme, the filler is provided with a positioning card for keeping the fixed distance between the fillers.
The positioning clamp is comb-shaped, the clamping grooves are formed in the positioning clamp, and the distance between the clamping grooves is consistent with the distance between the filler pieces in the filler. The clamping groove is clamped on each filling piece, so that each filling piece is accurately kept, and the gap between each two filling pieces corresponds to the sowing hole formed in the sowing basin.
As a further improvement of the technical scheme, the width of the filler is not less than that of the water sowing basin. The region that all is the filler to arrange in broadcast basin cooling space, broadcast basin condensation zone below promptly, and the region that the filler is in broadcast basin cooling space below is the filler cooling space, and the region that the filler is in broadcast basin condensation zone below is the filler condensation zone.
As a further improvement of the technical scheme, the water leakage hole and the water distribution hole are both in a strip shape.
As a further improvement of the technical scheme, at least one row of water leakage holes are formed in the bottom surface of the water diversion piece, and at least one water leakage hole is distributed in each row.
The invention has the beneficial effects that:
according to the environment and the requirement of the cooling tower in operation, in winter, when the cooling tower needs to operate according to water saving and fog dissipation, the position of the water diversion bottom plate is adjusted by diverting the circulating water through the change of the relative positions of the water diversion bottom plate and the water diversion part, so that the water leakage holes at the bottom of the water diversion part leak water at intervals, and meanwhile, the leaked water only flows into the corresponding positions of the water sowing basins, and the water sowing holes of the water sowing basins also sow water at intervals. The filler is arranged below, gaps exist among the fillers, and the fillers are named as a first channel area and a second channel area according to the position difference of the fillers and the positions of the water sowing holes; the first channel area and the second channel area are distributed at intervals; the first channel zone has spray water therein and the second channel zone has no spray water therein.
Under the action of a fan, dry and cold air in an external environment enters a tower through a filler and is exhausted out of the tower through the fan, and in the process that air flow passes through a first channel region, the dry and cold air and water carry out damp and heat exchange to evaporate the water into saturated hot air, the temperature of the air at the front section rises, the air at the rear section sends heat exchange to reduce the temperature of the saturated hot air, and water vapor is condensed; and in the process that the air flow passes through the second channel area, the moisture content of the air channel is kept unchanged, and the air is subjected to equal-humidity temperature rise. Wherein can take place heat exchange between first passageway district and the second passageway district, two kinds of air currents that the regional second passageway district of last first passageway comes out mix for humidity greatly reduced then discharges to the external environment through the fan in, reaches the efficiency of fog dispersal. The water flow condensed in the filler flows into the bottom basin of the cooling tower to be reused, so that the cooling tower achieves the effect of fog dissipation.
When the small water quantity non-fog-dissipation working condition is operated in winter, circulating water is shunted through the change of the relative positions of the water diversion bottom plate and the water diversion piece, the position of the water diversion bottom plate is adjusted, all water leakage holes at the bottom of the water diversion piece are completely communicated or closed, all water leakage holes uniformly flow into the water sowing basin, each water sowing hole of the water sowing basin is filled with water, and each filler below the water sowing hole is filled with water, so that the spraying density of the water sowing area tower is increased, and the risk of freezing the bottom cooling tower is reduced.
Drawings
FIG. 1 is a schematic view of the overall internal structure of the present invention;
FIG. 2 is a structural relationship diagram between the water diversion box and the filler of the water distribution bottom plate water planting basin in the invention;
FIG. 3 is a perspective view of the present invention;
FIG. 4 is an enlarged structural view of a portion A in FIG. 3;
FIG. 5 is a schematic structural view of the water diversion box;
FIG. 6 is an enlarged view of a part B of the water diversion box;
FIG. 7 is a schematic structural view of a water diversion bottom plate;
FIG. 8 is an enlarged view of a portion C of the water diversion bottom plate;
FIG. 9 is a schematic view showing the water leakage holes on the water diversion member being communicated at intervals;
FIG. 10 is a schematic view showing the water leakage holes on the water diversion member being all communicated;
FIG. 11 is a schematic view showing the water leakage holes on the water diversion member being completely blocked;
FIG. 12 is a schematic view of a structure of a watering pot;
FIG. 13 is a schematic view of a positioning card;
figure 14 is a psychrometric chart of humidity versus temperature in a cooling tower of the present invention.
In the figure: 3. a water collecting basin 4 and a fan; 5. a water inlet flange; 7. a filler; 8. a water sowing basin; 21. a water diversion member; 22. a water diversion bottom plate; 211. a water leakage hole; 212. a first water leakage hole; 213. a second water leakage hole; 221. water distribution holes; 222. a first water dividing hole; 223. a second water dividing hole; 45. a water sowing hole; 46. a partition plate.
Detailed Description
The following detailed description of the present invention is given for the purpose of better understanding technical solutions of the present invention by those skilled in the art, and the present description is only exemplary and explanatory and should not be construed as limiting the scope of the present invention in any way.
Referring to fig. 1 to 13, in one embodiment, a cross-flow type fog dispersal cooling tower comprises a water spreading basin 8 and a filler 7 below the water spreading basin; a water diversion part 21 is arranged above the water sowing basin 8, and a water leakage hole 211 is formed in the bottom surface of the water diversion part 21; the on-off of the water leakage holes 211 can be adjusted; the bottom surface of the water sowing basin 8 is provided with water sowing holes 45 corresponding to the channel of the filler 7 at the lower part and the water leakage hole 211 at the upper part; two adjacent water spreading holes 45 in the water spreading basin 8 are separated by a partition plate 46. Wherein the on-off state is three, is that the hole 211 that leaks leads to the state entirely, the hole 211 that leaks is the interval open mode, the hole 211 that leaks closes entirely respectively.
The water diversion member 21 is internally provided with a movable water diversion bottom plate 22, and the water diversion bottom plate 22 is provided with a water diversion hole 221 for adjusting the on-off state of the water leakage hole 211.
As shown in fig. 5-6, as a preferred embodiment of the present invention, when the size of the water leakage holes 211 on the water diversion member is all the same, the water diversion holes 221 on the same row on the water diversion bottom plate 22 are formed by a first water diversion hole 222 and a second water diversion hole 223 in a spaced distribution; the first and second water dividing holes 222 and 223 are different in size.
As shown in fig. 5 to 6, as a preferred embodiment of the present invention, the first water dividing hole 222 has a width larger than that of the water leakage hole 211; the second water shut-off hole 223 has the same size as the water leakage hole 211. The length of the first water dividing holes 222 is consistent with that of the water leakage holes 211, and the interval distance is also consistent.
In the above embodiment, by moving the position of the water diversion bottom plate 22 in the water diversion box, three on-off states of the water leakage hole can be generated: the first and second water dividing holes 222 and 223 are all communicated with the water leakage hole 211; the first water dividing holes 222 are communicated with every other water leakage hole 211; the water leakage holes 211 are completely blocked.
As shown in fig. 7-8, as a preferred embodiment of the present invention, when the water distribution holes on the water distribution bottom plate are all the same or equal in size, the water leakage holes 211 on the same row on the water distribution member 21 are formed by a first water leakage hole 212 and a second water leakage hole 213 which are distributed at intervals; the first and second water leakage holes 212 and 213 have different sizes.
As a preferred embodiment of the present invention, the first water leakage hole 212 has a width larger than that of the second water leakage hole 213; the second water leakage hole 213 has the same size as the water distribution hole 221. The lengths and the spacing distances of the water leakage holes and the water diversion holes are kept consistent.
As shown in fig. 9 to 11, as a preferred embodiment of the present invention, the passage between the packings 7 is divided into a first passage area and a second passage area; the first channel area and the second channel area are distributed at intervals; the packing passage area corresponding to the upper water-spreading holes 45 is a first passage area; the first channel region and the second channel region are each formed by at least one layer of packing channels.
The first channel area can also be called a spray water channel area, and the second channel area can also be called a non-spray water channel area; through the structural design of the water distribution piece, the water distribution bottom plate and the water sowing basin, the spraying water forms partitioned flow at intervals in the filler.
As shown in fig. 13, as a preferred embodiment of the present invention, the packing 7 is provided with a positioning clip 24 for keeping the distance between the packings 7 fixed.
The positioning clamp 24 is in a shape of a long strip plate, clamping grooves are uniformly formed in the plate to form a comb shape, and the distance between the clamping grooves is consistent with the distance between the filler pieces in the filler 7. The clamping groove is used for clamping each filler piece, so that each filler piece is accurately kept, and the gap between every two filler pieces corresponds to the sowing hole 45 formed in the sowing basin 8.
As a preferred embodiment of the present invention, the water leakage holes 211 and the water diversion holes 221 are both strip-shaped. The elongated holes are beneficial to the dispersion of water into a water film form to be discharged, and the heat exchange effect is improved. Can be rectangular holes or kidney-shaped holes.
As shown in fig. 9 to 11, as a preferred embodiment of the present invention, the water diversion bottom plate 22 and the water diversion member 21 can make the water leakage hole 211 in three on-off states by adjusting the relative positions, which are respectively:
as shown in fig. 10, the first: all the water leakage holes 211 are communicated with the water distribution holes 221;
as shown in fig. 9, the second: the first water dividing hole 222 is communicated with the corresponding water leakage hole 211, and the second water dividing hole 223 is separated by the bottom surface of the water dividing piece 21; or the first water leakage hole 212 is communicated with the corresponding water distribution hole 221, and the second water leakage hole 213 is isolated by the bottom surface of the water distribution bottom plate 22;
as shown in fig. 11, the third: all the water leakage holes 211 are completely blocked.
As a preferred embodiment of the invention, the width of the filling 7 is not less than the width of the watering basin 8. The heat exchange time of the water with the air can be improved.
As a preferred embodiment of the present invention, at least one row of water leakage holes 211 is formed on the bottom surface of the water diversion member 21, and at least one water leakage hole 211 is distributed in each row.
This invention includes fan 4 of cooling tower top, the basin 3 that catchments of bottom, the tower body both sides are provided with filler 7, be provided with the basin 8 of broadcasting above filler 7, it has into water flange 5 to design above the basin 8 of broadcasting, be equipped with branch water spare 21 in the basin 8 of broadcasting of flange 5 below of intaking, it is the U type to divide the water spare cross-section, the hole that leaks has been seted up to the bottom, be equipped with the bottom plate that divides water in dividing the water spare, divide and seted up the water diversion hole on the bottom plate, the board circulating water is after 5 inflow water flange 21 divide, divide the circulating water through the change of dividing bottom plate 22 and the relative position of branch water spare 21.
As shown in figure 1, partition plates 46 are arranged on two sides of each row of water sowing holes of the water sowing basin to separate each row of water sowing holes of the water sowing basin.
The top of the filler below the water sowing basin is provided with a filler positioning clamp, and a clamping groove on the filler positioning clamp accurately positions each piece of filler, so that the space between every two pieces of filler corresponds to the water sowing hole above the filler.
As shown in fig. 14, 83 is the state of the dry and cool outside air, 84 is the state of the dry and cool outside air after passing through the filler, 93 is the state of the dry and cool outside air after passing through the filler with water circulation, which can be seen in the figure as 100% saturation state, 94 is the state of 93 after passing through the filler condensation area, because the saturated air flow is cooled, the moisture content is reduced, part of the water vapor is condensed, and in the process of passing between the filler sheets without water circulation, the dry and cool outside air is not directly contacted with water or other air flows, but is heated by the circulating water and the wet and hot air at the other side by taking the filler as a medium, and the humidity is kept unchanged.
The 94 state air flow and the 84 state air flow are mixed into an integrated air flow 101 in the cooling tower after passing through the packing, the air flow 83 is connected with the air flow 101 by a straight line 111 on the psychrometric chart, if the connecting straight line 111 intersects with a 100% saturation curve, then the air flow 101 is mixed with the outside dry and cold air after leaving the cooling tower, and condensation phenomenon occurs, namely, plume is generated. Therefore, the invention is implemented with the aim that the air flow 101 is mixed with the outside dry and cold air after leaving the cooling tower under the action of the fan of the cooling tower, so that the condensation phenomenon does not occur.
It should be noted that, in this document, the terms "comprises," "comprising," or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus.
The principles and embodiments of the present invention are explained herein using specific examples, which are presented only to assist in understanding the method and its core concepts of the present invention. The foregoing is only a preferred embodiment of the present invention, and it should be noted that there are objectively infinite specific structures due to the limited character expressions, and it will be apparent to those skilled in the art that a plurality of modifications, decorations or changes may be made without departing from the principle of the present invention, and the technical features described above may be combined in a suitable manner; such modifications, variations, combinations, or adaptations of the invention using its spirit and scope, as defined by the claims, may be directed to other uses and embodiments.
Claims (5)
1. A cross-flow type fog dispersal cooling tower comprises a water spreading basin (8) and a filler (7) below the water spreading basin; it is characterized in that the preparation method is characterized in that,
a water diversion piece (21) is arranged above the water sowing basin (8), and a water leakage hole (211) is formed in the bottom surface of the water diversion piece (21); the on-off of the water leakage holes (211) can be adjusted; the bottom surface of the water sowing basin (8) is provided with water sowing holes (45) corresponding to the channel of the filler (7) at the lower part and the water leakage hole (211) at the upper part; two adjacent water spreading holes (45) in the water spreading basin (8) are separated by a partition plate (46);
a movable water diversion bottom plate (22) is arranged in the water diversion piece (21), and water diversion holes (221) for adjusting the on-off state of the water leakage holes (211) are formed in the water diversion bottom plate (22);
the channel of the filler (7) is divided into a first channel area and a second channel area; the first channel area and the second channel area are distributed at intervals along the direction vertical to the air inlet direction; the filling channel area corresponding to the upper water-spreading holes (45) is a first channel area; the first channel area and the second channel area are both formed by at least one layer of filler channel;
the water diversion bottom plate (22) and the water diversion piece (21) can enable the water leakage hole (211) to be in three on-off states through the adjustment of relative positions, and the three on-off states are respectively as follows:
the first method comprises the following steps: all the water leakage holes (211) are communicated with the water distribution holes (221);
and the second method comprises the following steps: the water distribution holes (221) in the same row on the water distribution bottom plate (22) are formed by a first water distribution hole (222) and a second water distribution hole (223) which are distributed at intervals along the direction vertical to the air inlet direction, the first water distribution hole (222) and the second water distribution hole (223) are different in size, the first water distribution hole (222) is communicated with the corresponding water leakage hole (211), and the second water distribution hole (223) is isolated by the bottom surface of the water distribution piece (21); or the same row of water leakage holes (211) on the water diversion piece (21) are formed by a first water leakage hole (212) and a second water leakage hole (213) which are distributed at intervals along the direction vertical to the air inlet direction, the first water leakage hole (212) and the second water leakage hole (213) are different in size, the first water leakage hole (212) is communicated with the corresponding water diversion hole (221), and the second water leakage hole (213) is isolated by the bottom surface of the water diversion bottom plate (22);
and the third is that: all the water leakage holes (211) are completely blocked.
2. The cross-flow mist elimination cooling tower of claim 1, wherein the first water diversion hole (222) is wider than the water leakage hole (211); the second water dividing hole (223) has the same size as the water leakage hole (211).
3. The cross-flow defogging and cooling tower according to claim 1, wherein the width of the first water leakage hole (212) is greater than that of the second water leakage hole (213); the size of the second water leakage hole (213) is the same as that of the water distribution hole (221).
4. The cross-flow type defogging and cooling tower according to claim 1, wherein the stuffing (7) is provided with a positioning clamp (24) for keeping the distance between the stuffing (7) fixed.
5. The cross-flow type fog dispersal cooling tower as claimed in claim 1, wherein said water leakage holes (211) and water diversion holes (221) are both elongated.
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CN202010818381.XA CN111964478B (en) | 2020-08-14 | 2020-08-14 | Cross-flow type fog dissipation cooling tower |
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CN111964476B (en) * | 2020-08-14 | 2021-10-26 | 湖南元亨科技股份有限公司 | Air-intake-adjustable cross-flow type fog-dissipation water-saving cooling tower |
CN111964477B (en) * | 2020-08-14 | 2021-10-26 | 湖南元亨科技股份有限公司 | Cross-flow type water-saving fog-dispersing cooling tower |
CN112797816A (en) * | 2021-02-03 | 2021-05-14 | 刘小江 | Heat exchange tower capable of adjusting direction of air outlet |
CN115540635A (en) * | 2022-09-16 | 2022-12-30 | 浙江万享科技股份有限公司 | Adjustable fog dispersal type cooling tower |
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DE102014105008B4 (en) * | 2014-04-08 | 2017-05-18 | Technische Universität Berlin | Liquid distributor and arrangement |
CN105455635A (en) * | 2014-08-29 | 2016-04-06 | 青岛海尔智能技术研发有限公司 | Electric kettle |
WO2017027022A1 (en) * | 2015-08-11 | 2017-02-16 | Wong Lee Wa | Power plant with multiple-effect evaporative condenser |
CN105333750A (en) * | 2015-11-26 | 2016-02-17 | 广州览讯科技开发有限公司 | Cross-flow type cooling tower capable of saving water and eliminating mist |
CN105605940A (en) * | 2016-03-14 | 2016-05-25 | 广州览讯科技开发有限公司 | Water-saving and fog-clearing crossflow type cooling tower |
CN206601054U (en) * | 2017-02-06 | 2017-10-31 | 埃希玛(中国)能源技术有限公司 | A kind of combined transverse flow cooling tower of anti-white cigarette |
CN111189332B (en) * | 2020-01-21 | 2021-04-27 | 浙江上风冷却塔有限公司 | Cross-flow cooling tower |
CN111964476B (en) * | 2020-08-14 | 2021-10-26 | 湖南元亨科技股份有限公司 | Air-intake-adjustable cross-flow type fog-dissipation water-saving cooling tower |
CN111964477B (en) * | 2020-08-14 | 2021-10-26 | 湖南元亨科技股份有限公司 | Cross-flow type water-saving fog-dispersing cooling tower |
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