Integrated basement ventilation apparatus
10605471 ยท 2020-03-31
Assignee
Inventors
Cpc classification
F24F11/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B30/54
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
F04D25/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/166
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/705
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F8/99
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/0001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F7/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/33
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F7/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F6/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F2007/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24F11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F6/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an integrated basement ventilation apparatus, and more particularly, to an integrated basement ventilation apparatus which can improve a basement ventilation apparatus and thereby perform an adiabatic cooling using latent heat when air is supplied, and in a case of outbreak of fire, forcibly close a damper closed or opened by itself as air is exhausted, and allow general automatic control depending on a local air condition in a basement structure and which can control an increase in temperature in the basement structure at a low cost and enhance a fire safety, and in particular, can suppress the fire early and significantly enhance the quality of air in the basement structure, thereby significantly enhancing condition and maintenance of whole facilities.
Claims
1. An integrated basement ventilation apparatus comprising: an air supply fan installed, along an air supply duct of a basement structure having a plurality of floors, in an air supply inlet of each floor of the basement structure; an air exhaust fan installed in an air exhaust outlet of each floor of the basement structure while facing an air exhaust duct of the basement structure; and a plurality of connecting fans supported on a ceiling of each floor of the basement structure to form a plurality of air flow paths from the air supply fan to the air exhaust fan, wherein at least one of the air supply fan and the air exhaust fan is additionally provided with a plurality of spray nozzles which suck in water by means of negative pressure generated due to air blowing to finely spray the water, wherein the plurality of spray nozzles are provided radially equidistantly spaced from each other along a periphery of a discharge port of the at least one of the air supply fan and the air exhaust fan, and a water supply pipe is connected to each spray nozzle.
2. The integrated basement ventilation apparatus according to claim 1, wherein the air supply fan and the air exhaust fan includes a cylindrical fan supported in a polygonal column-shaped frame.
3. The integrated basement ventilation apparatus according to claim 2, wherein the at least one of the air supply fan and the air exhaust fan is additionally provided with a fire-fighting damper which is opened or closed depending on an operation of the at least one of the air supply fan and the air exhaust fan and which is able to be forcedly closed by a temperature-dependently operated fuse.
4. The integrated basement ventilation apparatus according to claim 1, wherein the connecting fans are supported on the ceiling of the basement structure through aim angle-adjusting means controllable with respect to two or more axes.
5. An integrated basement ventilation apparatus comprising: an air supply fan installed, along an air supply duct of a basement structure having a plurality of floors, in an air supply inlet of each floor of the basement structure; an air exhaust fan installed in an air exhaust outlet of each floor of the basement structure while facing an air exhaust duct of the basement structure; and a plurality of connecting fans supported on a ceiling of each floor of the basement structure to form a plurality of air flow paths from the air supply fan to the air exhaust fan, wherein at least one of the air supply fan and the air exhaust fan is additionally provided with a plurality of spray nozzles which suck in water by means of negative pressure generated due to air blowing to finely spray the water, wherein the at least one of the air supply fan and the air exhaust fan includes a filtering net disposed to face a discharge port of the at least one of the air supply fan and the air exhaust fan, the filtering net including a plurality of concentric circle-shaped pipes, and linear connecting pipes intersecting each other at a center of the plurality of concentric circle-shaped pipes and connecting the plurality of concentric circle-shaped pipes with each other, and wherein the plurality of spray nozzles are provided on the plurality of concentric circle-shaped pipes and the linear connecting pipes, and a water supply pipe is connected to each spray nozzle.
6. The integrated basement ventilation apparatus according to claim 1, wherein the air supply fan is additionally provided with anion generators, and supplied air is mixed with anions.
7. An integrated basement ventilation apparatus comprising: an air supply fan installed, along an air supply duct of a basement structure having a plurality of floors, in an air supply inlet of each floor of the basement structure; an air exhaust fan installed in an air exhaust outlet of each floor of the basement structure while facing an air exhaust duct of the basement structure; and a plurality of connecting fans supported on a ceiling of each floor of the basement structure to form a plurality of air flow paths from the air supply fan to the air exhaust fan, wherein the at least one of the air supply fan and the air exhaust fan is additionally provided with a fire-fighting damper which is opened or closed depending on an operation of the at least one of the air supply fan and the air exhaust fan and which is able to be forcedly closed by a temperature-dependently operated fuse, wherein the fire-fighting damper comprises: a plurality of blades horizontally arranged in multiple stages, each of which has an rotation shaft penetrating a frame of the fire-fighting damper and rotatably supported by the frame and is provided with a weight; a connecting link which integrally connects link arms each fixed to one side of the rotation shaft of each blade and keeps degrees of opening of the plurality of blades the same; a lock plate which is rotatably supported on other side of any one of a plurality of rotation shafts of the plurality of blades and has a catch hook formed at one side of the lock plate and an angle control ring of ring shape formed over a predetermined circumferential section; a catch element which is fixed to an end of the rotation shaft supporting the lock plate and is rotated integrally with the rotation shaft supporting the lock plate and which protrudes in a normal direction, corresponding to the angle control ring; a fuse which engages the catch hook of the lock plate to restrain a rotation of the lock plate while remaining in a solid state below a predetermined temperature and which is molten to allow the rotation of the lock plate when the predetermined temperature is exceeded; and elastic elements for resiliently rotating the lock plate.
8. The integrated basement ventilation apparatus according to claim 7, wherein the plurality of blades are bent at an end portion opposite to the weight and thus deflect a horizontal flow of air upwards, and the plurality of blades are gradually longer as they are disposed closer to a bottom of the frame.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(13) TABLE-US-00001 Description of reference numerals 1: basement structure 10: air supply shaft 20: air exhaust shaft 100: air supply fan 110: spray nozzle 120: frame 130: cylindrical fan 131: discharge port 140: anion generator 200: air exhaust fan 210: fire-fighting damper 220: frame 211: blade 211a, 211b: rotation shaft 211c: weight 212: connecting link 212a: link arm 213: lock plate 213a: catch hook 213b: angle control ring 214: catch element 215: fuse 215a: fuse end 216: elastic element 300: connecting fan 310: aim angle-adjusting means 410: sensor 500: guiding fan
BEST MODES FOR CARRYING OUT THE INVENTION
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(15) Further,
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(17) Furthermore,
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(20) Finally,
(21) The integrated basement ventilation apparatus of the present invention has primary technical features that it includes air supply fans (100), air exhaust fans (200), connecting fans (300) and a controller (not illustrated) connected to these fans in a wired or wireless manner, as illustrated in
(22) In the following, an exemplary embodiment of the present invention will be described in detail with reference to the attached drawings.
(23) The integrated basement ventilation apparatus of the present invention includes an air supply fan (100) installed in an air supply inlet of each floor along an air supply shaft (10) of the basement structure (1); an air exhaust fan (200) installed in an air exhaust outlet in each floor while facing an air exhaust shaft (20) of the basement structure (1); a plurality of connecting fans (300) supported on a ceiling of each floor of the basement structure (1) to form a plurality of air flow paths from the air supply fan (100) to the air exhaust fan (200); and a controller receiving electrical signals from the sensors (410) evenly distributed in the ceiling of each floor of the basement structure (1) for generally controlling the air supply fan (100), the air exhaust fan (200) and the plurality of connecting fans (300).
(24) First, in the basement structure (1) formed in the basement of apartment or high-rise building, the air supply shaft (10) for supplying of air and the air exhaust shaft (20) for exhausting of air are each vertically formed as illustrated in
(25) In this connection, an air supply inlet is formed in each floor in the air supply shaft (10), and the air is supplied from the air supply shaft (10) through the air supply inlet to an internal space of the basement structure (1). The air supply inlet is provided with the air supply fan (100) to perform a forced air supply.
(26) The air supply fan (100) includes a cylindrical fan (130) supported in an approximately rectangular column-shaped frame (120) as illustrated in
(27) In particular, the present invention is characterized in that it includes spray nozzles (110) that suck in water by means of negative pressure generated due to the air blowing to finely spray the water.
(28) That is, in the present invention, a plurality of the spray nozzles (110) are provided radially equidistantly spaced from each other along a periphery of a discharge port (131) of the cylindrical fan (130) as illustrated in
(29) Thus, the plurality of spray nozzles (110) provided along the periphery of the discharge port (131) and directed inwards spray the water in the form of fine particles.
(30) Similarly, in the present invention, a plurality of the spray nozzles (110) are provided in a filtering net (150) consisting of a plurality of concentric circle-shaped pipes (151) and cross-shaped pipes (152) as illustrated in
(31) Thus, the plurality of spray nozzles (110) spray the water in the form of fine particles from the filtering net (150) positioned in front of a frame (120) of the air supply fan (100).
(32) In the present invention, any one of the above-described two types of the spray nozzles (110) may be selected and applied to the air supply fan (100), however, it is preferable that the later mentioned type of the spray nozzle (110) is applied to the connecting fan (300) described below.
(33) According to the above-described configuration, the water is suctioned basically proportional to an air flow rate and sprayed in the form of fine particles without the use of a separate drive. The water thus sprayed lowers a temperature of the injected supplied air by means of latent heat of vaporization, thereby achieving an adiabatic cooling.
(34) Thereby, the adiabatic cooling of the basement structure (1) can be carried out with no need to construct a separate cooling cycle, and thus a great economical advantage is obtained in ventilating the basement structure (1).
(35) Secondarily, particles of the water sprayed in the form of fine particles as described above adhere to foreign matter such as dust and then descend together with it, thereby also having a function of filtering the foreign matter.
(36) In addition, the supplied air containing the sprayed water may be also used for early fire suppression.
(37) Further, the water supply pipe connected to the spray nozzle (110) may be controlled not to carry out the above-mentioned adiabatic cooling if necessary, for example, when the temperature of external air is lowered.
(38) Further, interior air of the basement structure (1) may be kept more pleasant by additionally providing anion generators (140) toward the discharge port (131) of the air supply fan (100) as illustrated in
(39) Such anion generators (140) are preferably positioned adjacent corners as illustrated in the figure so that the anions are naturally mixed with the supplied air by the blowing.
(40) In this connection, it is preferable to construct the air supply fan (100) by horizontally and vertically stacking a plurality of small-capacity fans, rather than by a single large-capacity fan. For example, it is also possible to construct the air supply fan by horizontally and vertically stacking the plurality of small-capacity fans in four columns and two rows, as illustrated in
(41) Next, an air exhaust outlet is formed in each floor in the air exhaust shaft (20), and the air is exhausted from the internal space of the basement structure (1) through the air exhaust outlet to the air exhaust shaft (20). The air exhaust fan (200) is provided in such an air exhaust outlet to carry out a forced exhaust.
(42) In this connection, guiding fans (500) may be additionally provided in the air exhaust shaft (20) between the floors to make the flow of the exhaust air more smooth, as illustrated in
(43) The air exhaust fan (200) also has a cylindrical fan (230) disposed in an approximately rectangular column-shaped frame (220) as illustrated in
(44) In particular, the present invention is further characterized in that the air exhaust fan (200 includes the fire-fighting damper (210) which is opened or closed depending on whether the fan operates or not and which can be forcedly closed through a temperature-dependently operated fuse (215).
(45) That is, in the present invention, as illustrated in
(46) Firstly, the blades (211) define a wall when vertically oriented as illustrated in
(47) In this connection, the rotation shafts (211a, 211b) are protrudingly formed on both sides of each blade (211), respectively, as illustrated in
(48) Further, each blade (211) is provided with the weight (211c) as illustrated in
(49) In particular, the blades (211) are directional, and thus are opened only when the air is blown from the air exhaust fan (200) in a forward direction (i.e., from left to right in
(50) In this connection, the link arms (212a) are fixed to the rotation shafts (211a) of the blades (211), respectively and rotated integrally with the rotation shafts, as illustrated in
(51) Further, the lock plate (213) having the catch hook (213a) formed therein is rotatably supported on the rotation shaft (211b) of the blade (211), as illustrated in
(52) The lock plate (213) is of approximately disk shape and the angle control ring (213b) is integrally formed on one side of the lock plate.
(53) The angle control ring (213b) is in the form of a partially cut ring as illustrated in
(54) The catch element (214) is positioned within the open section of such an angle control ring (213b) to limit the angle of rotation of the ring.
(55) Further, the catch element (214) is fixedly fastened to an end of the rotation shaft (211b) of the blade (211) and the catch element (214) is integrally rotated with the rotation shaft (211b). The catch element (214) protrudes in a normal direction with respect to the rotation shaft (211b) and is positioned within the open section of the angle control ring (213b).
(56) In this connection, reference numeral 217 designates a bearing in
(57) Further, the fuse (215) is fixed to the frame (220) and engages the catch hook (213a) of the lock plate (213) to selectively restrain the rotation of the lock plate (213).
(58) Such a fuse (215) internally contains metal having a relatively low melting point such as lead etc.
(59) In this connection, when a predetermined temperature has been exceeded in a case of outbreak of fire, a fuse end (215a) axially moves inwards, thereby allowing the rotation of the lock plate (213).
(60) Finally, the lock plate (213) is supported so that it can be resiliently rotated in a counterclockwise direction in
(61) According to such a configuration, in the fire-fighting damper (210), the catch element (214) is usually positioned within the open section of the angle control ring (213b) of the lock plate (213), thereby allowing the rotation of the blade (211) in the range of approximately 90 degrees, as illustrated in
(62) Therefore, when the air exhaust fan (200) operates, the plurality of blades (211) are horizontally opened by the blowing as illustrated in
(63) Thereby, when the air exhaust fan (200) operates, the blades are opened, and when the air exhaust fan (200) is stopped, the blades are closed and thus prevent backflow of polluted air from the air supply shaft (20) to the room.
(64) Then, in a case of outbreak of fire, the fuse end (215a) of the fuse (215) moves inwards and thus the lock plate (213) engaging the fuse end (215a) at the catch hook (213a) is rotated in the counterclockwise direction by the elastic elements (216) as illustrated in
(65) As a result, the catch element (214) positioned within the open section of the angle control ring (213b) is forcedly rotated in the counterclockwise direction by the closed section, thereby forcibly rotating the blade (211) through the rotation shaft (211b) to which the catch element (214) is fixed, and thus all of the blades (211) are vertically oriented, thereby forming a fire-fighting wall as illustrated in
(66) Therefore, when the fire breaks out, the fire can prevented from spreading to another floor by the fact that the plurality of blades (211) form the fire-fighting wall.
(67) In such a case, the elastic coefficient of the elastic elements (216) is very high, and therefore the blades (211) are not opened even if the air exhaust fan (200) blows the air.
(68) Although not illustrated, it is also possible to additionally provide the air supply fan (100) with the above-described fire-fighting damper (210) if necessary, thereby preventing heat resulting from the fire breaking out in another floor from coming into the room along with the supplied air.
(69) In addition, the blades (211) are bent at an end portion opposite to the weight (211c) as illustrated in
(70) Thereby, when the blades (211) are kept horizontal by the blowing of the air exhaust fan (200), advantageously the exhaust air flows along the bent blades (211) and then is naturally directed upwards in the air exhaust shaft (20) even without separate vanes.
(71) Further, by making the blades (211) gradually longer from top to bottom, the exhaust air can flow more smoothly since positions at which the flow of exhaust air is deflected after taking the blades (211) vary depending on levels of the blades.
(72) As mentioned above, it is preferable that the bent blades (211) are applied only to the air exhaust fan (200), and blades (not illustrated) provided to the air supply fan (100) are advantageously straight in section.
(73) In this connection, it is preferable to construct the air exhaust fan (200) by horizontally and vertically stacking a plurality of small-capacity fans, rather than by a single large-capacity fan, as is the case with the air supply fan (100) described above. For example, it is also possible to construct the air exhaust fan by horizontally and vertically stacking the plurality of small-capacity fans in four columns and two rows, as illustrated in
(74) Next, the connecting fans (300) are supported on a ceiling of each floor of the basement structure (1) without the use of separate frames as illustrated
(75) In particular, the aim angle-adjusting means (310) for supporting the connecting fan (300) on the ceiling can rotate the connecting fan (300) 360 degrees as illustrated in
(76) Although not illustrated, the above-described spray nozzle may be applied to the connecting fan (300).
(77) Finally, the controller (not illustrated) is connected to the above-described air supply fan (100), air exhaust fan (200) and connecting fan (300), respectively, in a wired or wireless manner, and at the same time also is connected to the sensors (410) disposed on the ceiling of each floor of the basement structure (1) while evenly distributed, as illustrated in
(78) The sensors (410) can complexly detect at least one of a temperature, humidity, concentration of harmful gas and amount of fine dust from the air of the basement structure (1) and transmits a detected value as electrical signal to the controller.
(79) Thereby, the controller can basically operate the air supply fan (100), the connecting fan (300) and the air exhaust fan (200) to detect the polluted air in the basement structure (1) by itself and carry out a forced ventilation. In particular, for a local pollution in the basement structure (1) detected by the sensors (410), the controller can control nearby connecting fans (300) on a relevant air flow path to operate in association with the air supply fan, the connecting fan and the air exhaust fan.
(80) Thereby, the controller (400) can keep the temperature, humidity, concentration of harmful gas and amount of fine dust in the entire or local area of the basement structure (1) below a set reference value.
(81) Hereinafter, referring to
(82) In the integrated basement ventilation apparatus of the present invention configured as above, the controller checks the quality of interior air by the sensors (410) evenly distributed in the basement structure (1) as illustrated in
(83) If a full ventilation is required for the inside of the basement structure (1), all of the air supply fan (100), connecting fan (300) and air exhaust fan (200) are operated to form a plurality of air flow paths in the basement structure (1), whereby the full ventilation is achieved.
(84) In contrast, if a local ventilation is required for the inside of the basement structure (1), only the connecting fans (300) near a pollution-detected area may be selectively operated together with the operations of the air supply fan (100) and air exhaust fan (200) to form a certain air flow path, thereby carrying out the ventilation.
(85) In addition, an amount of blowing may be controlled to be increased or decreased depending on a detected degree of pollution of interior air.
(86) Further, the air supply fan (100) is provided with the spray nozzles (110) and the anion generators (140). The spray nozzle (110) sprays the water in the form of fine particles depending on the supply of air to achieve the adiabatic cooling by means of latent heat of vaporization. Therefore, hot external air is prevented from directly flowing into the basement structure (1) in an area of high-temperature or in the summer, without constructing a separate cooling cycle, and additionally, the fine particles of the water adhere to the foreign matter and descend together with it.
(87) Further, the anions can be incorporated into the supplied air by the anion generators (140) provided in the air supply fan (100), whereby the inside of the basement structure (1) can be kept more pleasant.
(88) Further, although not illustrated, a fire-fighting function may be provided by adding a fire-fighting damper to the air supply fan (100).
(89) In addition, the air exhaust fan (200) is provided with the fire-fighting damper (210). The fire-fighting damper is usually automatically opened by the blowing of exhaust air. When the air exhaust fan (200) does not operate, the fire-fighting damper is closed by the weights (211c), thereby preventing backflow of the polluted air from the air exhaust shaft (20).
(90) In particular, when the fire breaks out, the fire-fighting damper (210) is forcedly closed through the fuse (215), thereby preventing the spread of fire to other floors without the use of a separate electrical source.
(91) By applying such a fire-fighting damper to the air supply fan (100), the fire can be also prevented from spreading to a relevant floor.
(92) Further, in the present invention, the plurality of connecting fans (300) are installed on the ceiling of the basement structure (1) through the aim angle-adjusting means (310) controllable with respect to two or more axes and at the same time the plurality of sensors (410) are evenly distributed. Therefore, when a local air pollution occurs, the connecting fans (300) are operated so as to cover a relevant area without a need to run the whole ventilation apparatus, whereby the polluted interior air can be discharged to the outside only by means of a specific air flow path.
(93) In addition, each connecting fan (300) is also provided with spray nozzles (not illustrated) and thus the water can be additionally supplied in the form of fine particles to the air flow path.
(94) In particular, when the fire breaks out in the basement structure (1) as illustrated in
INDUSTRIAL APPLICABILITY
(95) Therefore, the integrated basement ventilation apparatus of the present invention has the following outstanding advantages.
(96) First, when the air is supplied, the adiabatic cooling is carried out by means of latent heat of vaporization through the spray nozzles (110) of the air supply fan (100) and/or spray nozzles of the connecting fans (300), and thus an increase in internal temperature of the basement structure can be prevented at a low cost in an area of high-temperature or in the summer, without constructing or operating a separate cooling cycle, and an effect of removal of foreign matter is also obtained.
(97) Second, the air exhaust fan (200) and/or air supply fan (100) is provided with the fire-fighting damper, and the damper is opened or closed by itself depending on whether the air supply fan (100) and/or the air exhaust fan (200) operates or not, thereby preventing the backflow of air, and when the fire breaks out, the damper is forcedly closed to prevent the spread of fire to another floor, thereby enhancing a fire safety.
(98) Third, a general automatic control is possible depending on a local air condition in the basement structure, and therefore, when a full or local pollution occurs in the basement structure (1), a local ventilation for a relevant area is possible and thus, contrary to prior art, the whole system does not need to be operated, and particularly, early fire suppression is possible and the quality of air in the basement structure is significantly enhanced, therefore, condition and maintenance of whole facilities can be significantly enhanced.