Tube assembly for tubular heat exchanger, and tubular heat exchanger comprising same
11306943 · 2022-04-19
Assignee
Inventors
Cpc classification
F28D7/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/0026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D21/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24H9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The purpose of the present invention is to provide a tube assembly for a tubular heat exchanger and a tubular heat exchanger comprising the same, the tube assembly for a tubular heat exchanger being capable of enhancing efficiency in heat exchange between a heat medium and a combustion gas and also preventing high-temperature oxidation and the burn-out of a turbulator caused by the combustion heat of the combustion gas and preventing the deformation or damage of a tube which may occur in an environment with a high water pressure, thereby improving the durability thereof. The tube assembly for a tubular heat exchanger of the present invention, for achieving the purpose, comprises: a tube which is formed in a flat shape and enables a combustion gas generated in a combustion chamber to flow along the inside thereof and exchange heat with a heat medium which flows outside thereof; and a turbulator which is coupled to the inside of the tube and induces the generation of turbulence in the flow of the combustion gas.
Claims
1. A tube assembly for a tubular heat exchanger, comprising: a tube having a flat shape to allow a combustion gas generated in a combustion chamber to flow along an inside thereof and to exchange heat between the combustion gas and a heat transfer medium flowing there outside; and a turbulator combined with the inside of the tube and configured to induce turbulence to be generated in a flow of the combustion gas, wherein the turbulator comprises: an upper turbulator combined with an upper inside of the tube adjacent to the combustion chamber to come into surface contact with the tube to increase heat conductivity and induce turbulence to be generated in a flow of the combustion gas; and a lower turbulator combined with the inside of the tube below the upper turbulator to induce turbulence to be generated in a flow of the combustion gas; wherein the upper turbulator comprises a first part comprising a first tube contact surface having a shape corresponding to one side part of the tube and coming into surface contact with an inner surface of the one side part of the tube and comprises a second part comprising a second tube contact surface having a shape corresponding to the other side part of the tube and coming into surface contact with an inner surface of the other side part of the tube; wherein the upper turbulator comprises a first pressure support portion formed by bending a part of a first cut portion cut from the first tube contact surface and protruding toward the second tube contact surface and comprises a second pressure support portion formed by bending a part of a second cut portion cut from the second tube contact surface and protruding toward the first tube contact surface, and wherein a protruding end of the first pressure support portion comes into contact with the second tube contact surface, and a protruding end of the second pressure support portion passes through the first cut portion and comes into contact with an inner surface of the tube.
2. The tube assembly of claim 1, wherein a plurality of such first pressure support portions and a plurality of such second pressure support portions are provided to be spaced apart laterally and in a vertical direction, wherein an above-located first pressure support portion and a below-located first pressure support portion are provided in positions not overlapped with each other in a vertical direction, and wherein an above-located second pressure support portion and a below-located second pressure support portion are provided in positions not overlapped with each other in a vertical direction.
3. The tube assembly of claim 2, wherein the first pressure support portion and the second pressure support portion have a plate shape and include both large side surfaces arranged in parallel with the flow direction of the combustion gas.
4. The tube assembly of claim 1, wherein the turbulator comprises a plane portion dividing an internal space of the tube and disposed in a longitudinal direction of the tube and comprises a plurality of first guide pieces and a plurality of second guide pieces which are spaced apart along a longitudinal direction and alternately protrude from both side surfaces of the plane portion to be inclined.
5. The tube assembly of claim 4, wherein the first guide pieces are arranged on one side surface of the plane portion to be inclined toward one side, wherein the second guide pieces are arranged on the other surface of the plane portion to be inclined toward the other side, and wherein the combustion gas flowing into the first guide pieces and the second guide pieces is sequentially transferred to the second guide piece and the first guide piece arranged to be adjacent to an opposite side surface of the plane portion and alternately flows on both spaces of the plane portion.
6. The tube assembly of claim 5, wherein a heat transfer medium inlet end of the first guide piece is connected to one side end of the plane portion by a first connecting piece while a first communication hole, through which a fluid is communicated between the both spaces of the plane portion, is simultaneously provided among the one side end of the plane portion, the first connecting piece, and the first guide piece, and wherein a heat transfer medium inlet end of the second guide piece is connected to the other side end of the plane portion by a second connecting piece while a second communication hole, through which a fluid is communicated between the both spaces of the plane portion, is simultaneously provided among the other side end of the plane portion, the second connecting piece, and the second guide piece.
7. The tube assembly of claim 5, wherein the first guide piece and the second guide piece are formed by cutting and bending parts of the plane portion toward both sides of the plane portion, and wherein a fluid is communicated between the both spaces of the plane portion through cut parts of the first guide piece and the second guide piece.
8. The tube assembly of claim 1, wherein support pieces, which are located to be vertically spaced apart to come into contact with a front surface and a rear surface of the tube and protrude back and forth, are formed at an upper end part and a lower end part of the lower turbulator.
9. The tube assembly of claim 1, further comprising a pressure support portion formed inside the tube to support both opposite side surfaces of the tube against external pressure applied thereto.
10. The tube assembly of claim 9, wherein the pressure support portion comprises supports which protrude outward from the both side surfaces of the turbulator and come into contact with inner surfaces of the tube facing each other.
11. The tube assembly of claim 10, wherein the supports are formed by cutting and bending parts of a surface of the turbulator to both sides.
12. A tubular heat exchanger comprising: an external jacket which a heat transfer medium flows into or discharges from; a combustion chamber which is combined with an inside of the external jacket to form a flow path of the heat transfer medium between the external jacket and the combustion chamber and in which combustion of a burner is performed; and the tube assembly for the tubular heat exchanger according to claim 1.
13. The tubular heat exchanger of claim 12, wherein a plurality of such tubes are vertically installed so as to allow a combustion gas generated in the combustion chamber to flow downward, are spaced apart in a circumferential direction, and are radially arranged.
14. The tubular heat exchanger of claim 12, wherein a multistage diaphragm for guiding a flow of the heat transfer medium to alternately change a flow direction of the heat transfer medium to be inside or outside in a radial direction are provided to be vertically spaced apart in the external jacket, and a plurality of such tubes are inserted into and supported by the multistage diaphragm.
15. The tubular heat exchanger of claim 14, wherein the multistage diaphragm comprises an upper diaphragm, an intermediate diaphragm, and a lower diaphragm which have a plate shape, wherein the upper diaphragm and the lower diaphragm comprise an opening portion for a flow of the heat transfer medium in a central part thereof and an edge part to come into contact with an inner surface of the external jacket, and wherein the intermediate diaphragm has a shape in which a central part is blocked and an edge part is spaced apart from the inner surface of the external jacket to allow the heat transfer medium to flow therebetween.
16. The tubular heat exchanger of claim 14, wherein an upper tube sheet, into which upper end parts of the plurality of tubes are inserted, is combined with a lower end of the combustion chamber, and wherein a lower tube sheet, into which lower end parts of the plurality of tubes are inserted, is combined with a lower end of the external jacket.
Description
DESCRIPTION OF DRAWINGS
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(44) TABLE-US-00001 **Description of Reference Numerals** 1000: tubular heat exchanger 1000a: sensible heat exchanging portion 1000b: latent heat exchanging 1100: external jacket portion 1110: heat transfer medium inlet 1120: heat transfer medium outlet 1200: combustion chamber 1300: upper tube sheet 1600: upper diaphragm 1700: intermediate diaphragm 1800: lower diaphragm 1900: lower tube sheet 100: tube assembly 110: tube 120: turbulator 120-1: upper turbulator 130-1: lower turbulator 122-1, 125-1: pressure-support portions 123-1: guide portion 130-1-1 to 130-1-4: supporters
MODES OF THE INVENTION
(45) Hereinafter, components and operations according to an exemplary embodiment of the present invention will be described in detail as follows with reference to the attached drawings.
(46) Referring to
(47) Also, an upper tube sheet 1300 into which upper ends of the plurality of tubes are inserted is combined with a lower end of the combustion chamber 1200. A plurality of multistage diaphragms 1600, 1700, and 1800 for guiding a flow of the heat transfer medium to alternately switch a flow direction of the heat transfer medium to be inside or outside a radial direction are provided on outer surfaces of the tubes 1400 to be vertically spaced apart. A lower tube sheet 1900 into which lower ends of the plurality of tubes are inserted is combined with a lower end of the external jacket 1100.
(48) The plurality of tubes are installed in a vertical direction such that a combustion gas generated in the combustion chamber 1200 flows downward and installed while being spaced apart in a circumferential direction and radially arranged. A plurality of tubes may be additionally arranged in a central part among the plurality of radially arranged tubes.
(49) The external jacket 1100 has a cylindrical shape having open upper and lower parts. A heat transfer medium inlet 1110 is connected to one side of the lower part, and a heat transfer medium outlet 1120 is connected to one side of the upper part. The external jacket 1100 is configured to have a cylindrical shape so as to increase internal pressure performance.
(50) The combustion chamber 1200 includes a cylindrical combustion chamber body 1210 having open upper and lower parts and a flange portion 1220 formed on an upper end of the combustion chamber body 1210 and mounted on an upper end of the external jacket 1100. The combustion chamber body 1210 is disposed to be spaced apart inward from an inner surface of the external jacket 1100 such that a space S4 having a blister structure through which the heat transfer medium flows is provided between the combustion chamber body 1210 and the external jacket 1100.
(51) Referring to
(52) The multistage diaphragms 1600, 1700, and 1800 are combined with the outer surfaces of the tubes while being vertically spaced apart therefrom so as to switch the flow of the heat transfer medium and support the tubes.
(53) The multistage diaphragms 1600, 1700, and 1800 may include an upper diaphragm 1600, an intermediate diaphragm 1700, and a lower diaphragm 1800 which have a plate shape.
(54) Tube insertion holes 1610 are radially formed in the upper diaphragm 1600. An opening portion 1620 through which the tubes 1400 pass and the heat transfer medium flows is formed in a central part of the upper diaphragm 1600. An edge part of the upper diaphragm 1600 comes into contact with the inner surface of the external jacket 1100.
(55) A plurality of tube insertion holes 1710 and 1720 are formed in the intermediate diaphragm 1700. An area where the tube insertion holes 1710 and 1720 are not formed has a closed shape. An edge part of the intermediate diaphragm 1700 is spaced apart from the inner surface of the external jacket 1100 such that a flow path of the heat transfer medium is provided therebetween.
(56) The lower diaphragm 1800 has the same structure as that of the upper diaphragm 1600. Tube insertion holes 1810 are radially formed therein. An opening portion 1820 through which the tubes pass and the heat transfer medium flows is formed in a central part of the lower diaphragm 1800. An edge part of the lower diaphragm 1800 comes into contact with the inner surface of the external jacket 1100.
(57) The lower tube sheet 1700 seals the lower part of the external jacket 1100 and includes a plurality of tube insertion holes 1910 and 1920 into which lower ends of the tubes are inserted.
(58) Referring to
(59) The combustion gas generated in the combustion chamber 1200 flows downward along an internal space of the tubes.
(60) As an arrow shows in
(61) As the flow direction of the heat transfer medium is alternately switched inside or outside the radial direction, the flow path of the heat transfer medium increases such that efficiency of heat exchange increases and a flow speed of the heat transfer medium increases so as to prevent a boiling phenomenon caused by local overheating which may occur when the heat transfer medium stagnates.
(62) Hereinafter, embodiments of the tube assembly 100 for the tubular heat exchanger according to the present invention will be described.
First Embodiment
(63) Referring to
(64) The upper turbulator 120-1 includes tube contact surfaces 121-1 (121a-1 and 121b-1) coming into close contact with an inner surface of the tube 110-1, pressure support portions 122-1 (122a-1 and 122b-1) formed by bending parts cut from the tube contact surfaces 121-1 (121a-1 and 121b-1), and guide portions 123-1 (123a-1 and 123b-1).
(65) The tube contact surfaces 121-1 have a structure in which a first tube contact surface 121a-1, which comes into surface contact with an inner surface of one side part of the tube 110-1, is symmetrical to a second tube contact surface 121b-1 which comes into surface contact with an inner surface of the other side part of the tube 110-1.
(66) The pressure support portions 122-1 includes a first pressure support portion 122a-1 which is formed by cutting and bending a part of the first tube contact surface 121a-1 such that an outer surface of the second tube contact surface 121b-1 and an outer end of the part are collinear so as to support the other part of the tube 110-1 and includes a second pressure support portion 122b-1 which is formed by cutting and bending a part of the second tube contact surface 121b-1 such that an outer surface of the first tube contact surface 121a-1 and the part are collinear so as to support one part of the tube 110-1, both of which are components for preventing the tube 110-1 from being deformed and damaged by water pressure of the heat transfer medium.
(67) The guide portions 123-1 includes a first guide portion 123a-1 formed by cutting and bending a part of the first tube contact surface 121a-1 to face an inner space of the tube 100-1 and includes a second guide portion 123b-1 formed by cutting and bending a part of the second tube contact surface 121b-1 to face the inner space of the tube 100-1, both of which are components for increasing efficiency of heat exchange by changing a flow direction of a combustion gas passing through the upper turbulator 120-1.
(68) The first guide portion 123a-1 and the second guide portion 123b-1 are alternately formed while being vertically spaced apart. Accordingly, the combustion gas flows leftward or rightward on the basis of a vertical direction as an arrow shown in
(69) Referring to
(70) First, the first tube contact surface 121a-1, the first pressure support portion 122a-1, and the first guide portion 123a-1 are manufactured at the first part 120a-1 of the basic material plate, and the second tube contact surface 121b-1, the second pressure support portion 122b-1, and the second guide portion 123b-1 are manufactured at the second part 120b-1 of the basic material plate. Also, the upper turbulator 120-1 is manufactured by bending the first part 120a-1 and the second part 120b-1 on the basis of the central line C in a direction of an arrow shown in
(71) According to the components of the upper turbulator 120-1, the tube contact surfaces 121-1 of the upper turbulator 120-1 are pressed against the inner surface of the tube 110-1 so as to increase heat conductivity between the upper turbulator 120-1 and the tube 110-1. Accordingly, even when the combustion gas comes into direct contact with the upper turbulator 120-1, since combustion heat of the combustion gas transferred to the upper turbulator 120-1 is easily transferred toward the tubes through heat conduction, it is possible to prevent the upper turbulator 120-1 from being overheated, thereby effectively preventing the upper turbulator 120-1 from being oxidized at a high temperature and being damaged by a fire.
(72) Hereinafter, components and an operation of the lower turbulator 130-1 will be described.
(73) The lower turbulator 130-1 may include a plane portion 131-1 disposed in a longitudinal direction of the tube 110-1 while dividing an internal space of the tube 110-1 into both sides and include a first guide piece 132-1 and a second guide piece 133-1 alternately protruding from both sides of the plane portion 131-1 to be inclined while being spaced apart along the longitudinal direction.
(74) The first guide piece 132-1 is disposed on one side surface of the plane portion 131-1 to be inclined toward one side, and the second guide piece 133-1 is disposed on the other side surface of the plane portion 131-1 to be inclined toward the other side. Accordingly, the heat transfer medium, which has flowed into the first guide piece 132-1 and the second guide piece 133-1, is sequentially transferred to the second guide piece 133-1 and the first guide piece 132-1 adjacently arranged on opposite sides of the plane portion 131-1 and alternately flows through both spaces of the plane portion 131-1.
(75) A heat transfer medium inlet end of the first guide piece 132-1 is connected to one side end of the plane portion 131-1 by a first connecting piece 132a-1 while a first communication hole 132b, through which fluid is communicated between both spaces of the plane portion 131-1, is simultaneously provided among the one side end of the plane portion 131-1, the first connecting piece 132a-1, and the first guide piece 132-1.
(76) A heat transfer medium inlet end of the second guide piece 133-1 is connected to the other side end of the plane portion 131-1 by a second connecting piece 133a-1 while simultaneously a second communication hole 133b-1, through which fluid is communicated between both spaces of the plane portion 131-1, is provided among the other side end of the plane portion 133, the second connecting piece 133a, and the second guide piece 133.
(77) The first guide piece 132-1 and the second guide piece 133-1 may be formed by cutting and bending parts of the plane portion 131-1 to both sides of the plane portion 131-1 to communicate a fluid between both spaces of the plane portion 131-1 through the cut portions of the plane portion 131-1.
(78) Also, a first support portion 134-1 and a second support portion 135-1, which are located to be vertically spaced apart and protrude back and forth to come into contact with both sides of the tube 110-1, are formed on an upper end part and a lower end part of the lower turbulator 130-1, respectively.
(79) Also, first support pieces 136-1 (136a-1 and 136b-1) and second support pieces 137-1 (137a-1 and 137b-1), which are located to be vertically spaced apart and protrude back and forth to come into contact with a front surface and a rear surface of the tube 110-1, are formed on the upper end part and the lower end part of the lower turbulator 130-1.
(80) Since the lower turbulator 130-1 includes the first support portion 134-1, the second support portion 135-1, the first support pieces 136-1, and the second support pieces 137-1, it is possible to prevent a tube from being deformed or damaged even in an environment with high water pressure such that the tube may be extensively applied to water heaters with a working pressure of 10 kg/cm.sup.2 or above, commercial (large capacity) products, and the like other than boilers.
Second Embodiment
(81) Referring to
(82) In the embodiment, an upper turbulator 120-1-1 includes tube contact surfaces 124-1 (124a-1 and 124b-1) coming into close contact with an inner surface of the tube 100-1 and pressure support portions 125-1 (125a-1 and 125b-1) formed by being bent from cut portions 126-1 (126a-1 and 126b-1) of the tube contact surfaces 124-1 (124a-1 and 124b-1).
(83) The tube contact surfaces 124-1 have a structure in which a first tube contact surface 124a-1, which comes into surface contact with an inner surface of one side part of the tube 110-1, is symmetrical to a second tube contact surface 124b-1 which comes into surface contact with an inner surface of the other side part of the tube 110-1.
(84) The pressure support portions 125-1 are components for preventing the tube 110-1 from being deformed and damaged by water pressure of a heat transfer medium and includes a first pressure support portion 125a-1 formed by bending a part of a first cut portion 126a-1 of the first tube contact surface 124a-1 to protrude toward the second tube contact surface 124b-1 and includes a second pressure support portion 125b-1 formed by bending a part of a second cut portion 126b-1 of the second tube contact surface 124b-1 to protrude toward the first tube contact surface 124a-1.
(85) A cut area of the first cut portion 126a-1 is formed to be larger than a cut area of the second cut portion 126b-1. A protruding end of the first pressure support portion 125a-1 comes into contact with the second tube contact surface 124b-1. When the pressure support portion 125-1 is inserted into the tube 110-1, a protruding end of the second pressure support portion 125b-1 passes through the first cut portion 126a-1 and comes into contact with the inner surface of the tube 110-1.
(86) According to the components, the first pressure support portion 125a-1 supports the first tube contact surface 124a-1 and the second tube contact surface 124b-1 to maintain shapes thereof firmly when water pressure acts, and the second pressure support portion 125b-1 more firmly supports the tube 110-1 supported by the first tube contact surface 124a-1 and the second tube contact surface 124b-1.
(87) Also, as shown in
(88) Also, since the first pressure support portion 125a-1 and the second pressure support portion 125b-1 have a structure in which both large side surfaces having a plate shape are arranged to be in parallel with a flow direction of a combustion gas, it is possible to minimize flow resistance during a process in which the combustion gas passes through the first pressure support portion 125a-1 and the second pressure support portion 125b-1 when the combustion gas flows as an arrow shown in
(89) The tube assembly 100-2 according to the embodiment, like the above-described first embodiment, may be manufactured by bending one basic material plate on the basis of a central line C thereof into a first part 120a-1 located on one side and a second part 120b-1 located on the other side.
Third Embodiment
(90) Referring to
(91) The pressure support portion includes a pair of dimples 111-2 (111a-2 and 111b-2) which protrude from both side surfaces of the tube 110-2 toward an internal space of the tube 110-2 and face each other while being vertically spaced apart. A plurality of such pairs of dimples 111-2 are formed.
(92) Referring to
(93) Since the pressure support portion are embodied by forming the dimples 111-2 (111a-2 and 111b-2) on an outer surface of the tube 110-2 in which the turbulator 120-1-2 is inserted such that it is possible to embody the pressure support portion without an additional component, manufacturing costs of a tube assembly having excellent pressure-resistant performance may be reduced.
(94) Referring to
(95) The first guide pieces 122-2 are arranged on one side surface of the plane portion 121-2 to be inclined toward one side, and the second guide pieces 123-2 are arranged on the other side surface of the plane portion 121-2 to be inclined toward the other side. Accordingly, the heat transfer medium, which has flowed into the first guide pieces 122-2 and the second guide pieces 123-2, is sequentially transferred to the second guide pieces 123-2 and the first guide pieces 121-2 adjacently arranged on opposite sides of the plane portion 121-2 and alternately flows through both spaces of the plane portion 121-2.
(96) A heat transfer medium inlet end of the first guide piece 122-2 is connected to one side end of the plane portion 121-2 by a first connecting piece 122a-2 while a first communication hole 122b-2, through which a fluid is communicated between both spaces of the plane portion 121-2, is simultaneously provided among the one side end of the plane portion 121-2, the first connecting piece 122a-2, and the first guide piece 122-2.
(97) A heat transfer medium inlet end of the second guide piece 123-2 is connected to the other side end of the plane portion 121-2 by a second connecting piece 123a-2 while a second communication hole 123b-2, through which a fluid is communicated between both spaces of the plane portion 121-2, is simultaneously provided among the other side end of the plane portion 121-2, the second connecting piece 123a-2, and the second guide piece 123-2.
(98) The first guide piece 122-2 and the second guide piece 123-2 may be formed by cutting and bending parts of the plane portion 121-2 to both sides of the plane portion 121-2 to communicate a fluid between both spaces of the plane portion 121-2 through the cut portions of the plane portion 121-2.
(99) Also, a first support portion 124-2 and a second support portion 125-2, which are located to be vertically spaced apart and protrude back and forth to come into contact with both sides of the tube 110-2, are formed on an upper end part and a lower end part of the turbulator 120-1-2, respectively.
(100) Also, first support pieces 126-1 (126a-2 and 126b-2) and second support pieces 127-2 (127a-2 and 127b-2), which are located to be vertically spaced apart and protrude back and forth to come into contact with a front surface and a rear surface of the tube 110-2, are formed on an upper end part and a lower end part of the turbulator 120-1-2, respectively.
(101) Since the dimples 111-2 (111a-2 and 111b-2) are formed in the tube 110-2 and the turbulator 110-2 includes the first support portion 124-2, the second support portion 125-2, the first support pieces 126-2, and the second support pieces 127-2, it is possible to prevent a tube from being deformed or damaged even in an environment with high water pressure such that the tube may be extensively applied to water heaters with a working pressure of 10 kg/cm.sup.2 or above, commercial (large capacity) products, and the like other than boilers.
Fourth Embodiment
(102) Referring to
(103) The tube assembly 100-4 for the tubular heat exchanger according to the fourth embodiment of the present invention includes a tube 110-2 having a flat shape for exchanging heat between a combustion gas flowing along an inside thereof and a heat transfer medium flowing outside, a turbulator 120-2-2 combined with the inside of the tube 110-2 to induce turbulence to be generated in a flow of the combustion gas, and a pressure support portion formed inside the tube 110-2 for supporting both opposite sides of the tube 110-2 against external pressure applied thereto.
(104) The pressure support portion includes supports 129-2 (129a-2 and 129b-2) which protrude outward from both sides of the turbulator 120-2-2 and come into contact with inner surfaces of the tube 110-2 facing each other.
(105) The supports 129-2 includes a first support 129a-2 protruding forward from one side surface of the turbulator 120-2-2 and a second support 129b-2 protruding rearward from the other side surface of the turbulator 120-2-2. The first support 129a-2 and the second support 129b-2 are formed on both sides to be spaced apart, and a plurality of such first supports 129a-2 and a plurality of such second supports 129b-2 are formed at certain intervals along a longitudinal direction of the turbulator 120-2-2.
(106) Since the plurality of first supports 129a-2 and the plurality of second supports 129b-2 are formed to be bent toward a front and a rear of the turbulator 120-2-2 as described above, the pressure support portion may be embodied without additional components such that manufacturing costs of a tube assembly having excellent pressure-resistant performance may be reduced.
Fifth Embodiment
(107) Referring to
(108) The turbulator 150-3 may include a plane portion 151-3 disposed in a longitudinal direction of the tube 110-3 while dividing an internal space of the tube 110-3 into both sides and include first guide pieces 152-3 and second guide pieces 153-3 alternately protruding from both sides of the plane portion 131-3 to be inclined while being spaced apart along the longitudinal direction.
(109) The first guide pieces 152-3 are arranged on one side surface of the plane portion 151-3 to be inclined toward one side, and the second guide pieces 153-3 are arranged on the other side surface of the plane portion 151-3 to be inclined toward the other side. Accordingly, the heat transfer medium, which has flowed into the first guide pieces 152-3 and the second guide pieces 153-3, is sequentially transferred to the second guide pieces 153-3 and the first guide pieces 152-3 adjacently arranged on opposite sides of the plane portion 151-3 and alternately flows through both spaces of the plane portion 151-3.
(110) A heat transfer medium inlet end of the first guide piece 152-3 is connected to one side end of the plane portion 151-3 by a first connecting piece 152a-3 while a first communication hole 152b-3, through which a fluid is communicated between both spaces of the plane portion 151-3, is simultaneously provided among the one side end of the plane portion 151-3, the first connecting piece 152a-3, and the first guide piece 152-3.
(111) A heat transfer medium inlet end of the second guide piece 153-3 is connected to the other side end of the plane portion 151-3 by a second connecting piece 153a-3 while a second communication hole 153b-3, through which a fluid is communicated between both spaces of the plane portion 151-3, is simultaneously provided among the other side end of the plane portion 151-3, the second connecting piece 153a-3, and the second guide piece 153-3.
(112) The first guide piece 152-3 and the second guide piece 153-3 may be formed by cutting and bending parts of the plane portion 151-3 to both sides of the plane portion 151-3 to communicate a fluid between both spaces of the plane portion 151-3 through the cut portions of the plane portion 151-3.
(113) Also, welding portions 154-3 and 155-3 protrude ambilaterally from the plane portion 151-3 to come into an inner surface of the tube 110-3 such that the welding portions 154-3 and 155-3 and the inner surface of the tube 110-3 may be welded to and combined with each other. Accordingly, an area and a spot of a welding part between the turbulator 150-3 and the tube 110-3 may be reduced.
(114) According to the above-described components of the turbulator 150-3, as an arrow shown in
(115) Meanwhile, during a process in which the combustion gas sequentially passes through the above-described sensible heat exchanger 1000a and latent heat exchanger 1000b shown in
(116) Accordingly, in order to increase efficiency of heat exchange, flow resistance of the combustion gas may be reduced by forming a large flow path area of the combustion gas passing through the sensible heat exchanger 1000a and a flow path area of the combustion gas may be formed to be relatively small in the latent heat exchanger 1000b.
(117) As components for this purpose, the turbulator 150-3 has an integral structure including an upper turbulator 150a-3 provided at an inlet side of the combustion gas and a lower turbulator 150b-3 provided at an outlet side of the combustion gas. Here, in order to form a flow path area between the lower turbulator 150b-3 and the inner surface of the tube 110-3 to be smaller than a flow path area between the upper turbulator 150a-3 and the inner surface of the tube 110-3, the lower turbulator 150b-3 may have a larger area in contact with the heat transfer medium inside the tube 110-3 than that of the upper turbulator 150a-3.
(118) As one embodiment, as shown in
(119) In this case, the vertical intervals between the plurality of first guide pieces 152-3 and the plurality of the second guide pieces 153-3 formed on the turbulator 150-3 may be formed to be gradually decreased from the inlet side of the combustion gas toward the outlet side of the combustion gas.
(120) As another embodiment, as shown in
(121) Referring to
(122) The supports 142-3 may include a bar-shaped support 142a-3 having both ends fixed to the inner surface of the tube 110-3 as shown in
(123) In the case of a structure shown in
(124) In the case of a structure shown in
(125) As another embodiment, as shown in
(126) As described above, when the support portion 142-3 is combined with the inside of the tube 110-3 such that the water pressure of the heat transfer medium is highly applied to an outer surface of the tube 110-3, deformation of the tube 110-3 may be prevented. Accordingly, the tube 110-3 combined with the support portion 142-3 may be applied to combustion devices for a variety of purposes in addition to a boiler or a water heater.
Six Embodiment
(127) Referring to
(128) Components and an assembling structure of the turbulator 120-1-4 and the supporter 130-1-4 included in the tube assembly 100-6 according to the sixth embodiment of the present invention will be described.
(129) A slit 132-4 (132-1-4) having a shape with a blocked upper end and an open lower end 132c-4 is formed in a central part of a body portion 131-4 of the supporter 130-1-4 as shown in
(130) The slit 132-1-4 has a structure in which a first cut portion 132a-4 having a width to come into contact with both side surfaces of the turbulator 120-1-4 and a second cut portion 132b-4 having a larger width than that of the first cut portion 132a-4 are vertically connected and alternately formed. Accordingly, the both side surfaces of the turbulator 120-1-4 come into close contact with and are supported by the first cut portion 132a-4, and a combustion gas may flow through a space provided between the second cut portion 132b-4 and the turbulator 120-1-4.
(131) Also, a plurality of protruding portions 133-4, which protrude and have an uneven shape to come into contact with an inner surface of the tube 110-4, are provided to be vertically spaced apart on an outer end of the supporter 130-1-4. According to the components of the protruding portions 133-4, since a contact area between the supporter 130-1-4 and the tube 110-4 is restricted to an area in which the protruding portions 133-4 are formed, the contact area may be reduced. Accordingly, sine it is possible to prevent occurrence of crevice corrosion which may be caused by congestion of a heat transfer medium due to surface tension when a contact area between a supporter and a tube is large, durability of a tube assembly may be increased.
(132) The turbulator 120-1-4 may include a plane portion 121-4 disposed in a longitudinal direction of the tube 110-4 while dividing an internal space of the tube 110-4 into both sides and include first guide pieces 122-4 and second guide pieces 123-4 alternately protruding from both sides of the plane portion 121-4 to be inclined while being spaced apart along the longitudinal direction.
(133) The first guide pieces 122-4 are arranged on one side surface of the plane portion 121-4 to be inclined toward one side, and the second guide pieces 123-4 are arranged on the other side surface of the plane portion 121-4 to be inclined toward the other side. Accordingly, the heat transfer medium, which has flowed into the first guide pieces 122-4 and the second guide pieces 123-4, is sequentially transferred to the second guide pieces 123-4 and the first guide pieces 122-4 adjacently arranged on opposite sides of the plane portion 121-4 and alternately flows through both spaces of the plane portion 121-4.
(134) A heat transfer medium inlet end of the first guide piece 122-4 is connected to one side end of the plane portion 121-4 by a first connecting piece 122a-4 while a first communication hole 122b-4, through which a fluid is communicated between both spaces of the plane portion 121-4, is simultaneously provided among the one side end of the plane portion 121-4, the first connecting piece 122a-4, and the first guide piece 122-4.
(135) A heat transfer medium inlet end of the second guide piece 123-4 is connected to the other side end of the plane portion 121-4 by a second connecting piece 123a-4 while a second communication hole 123b-4, through which a fluid is communicated between both spaces of the plane portion 121-4, is simultaneously provided among the other side end of the plane portion 121-4, the second connecting piece 123a-4, and the second guide piece 123-4.
(136) The first guide piece 122-4 and the second guide piece 123-4 may be formed by cutting and bending parts of the plane portion 121-4 to both sides of the plane portion 121-4 to communicate a fluid between both spaces of the plane portion 121-4 through the cut portions of the plane portion 121-4.
(137) Also, a first support portion 124-4 and a second support portion 125-4, which are located to be vertically spaced apart and protrude back and forth to come into contact with both sides of the tube 110-4, are formed on an upper end part and a lower end part of the turbulator 120-1-4, respectively.
(138) Also, a plurality of pairs of first support pieces 126-4 and a plurality of pairs of second support pieces 127-4, which protrude to support both side surfaces of the supporter 130-1-4, are vertically spaced apart on both side surfaces of the turbulator 120-1-4.
(139) Accordingly, when the turbulator 120-1-4 is inserted into the slit 132-1-4 of the supporter 130-1-4 in a major direction, since the supporter 130-1-4 is supported by the first support piece 126-4 and the second support 127-4, positions of the turbulator 120-1-4 and the supporter 130-1-4 may be fixed.
(140) According to the above-described components of the turbulator 120-1-4, since a flow direction of a combustion gas is continuously changed to one side and the other side in an internal space of the tube 110-4 by the first guide piece 122-4 and the second guide piece 123-4 such that a turbulent flow is promoted, efficiency of heat exchange between the combustion gas and the heat transfer medium may be increased.
Seventh Embodiment
(141) Referring to
(142) Hereinafter, while components and an assembling structure of the turbulator 120-2-4 and the supporter 130-2-4 included in the tube assembly 100-7 for the tubular heat exchanger according to the seventh embodiment of the present invention are described, components equal to those of the above-described sixth embodiment will be referred to as the same reference numerals and a repetitive description thereof will be omitted.
(143) In the embodiment, a slit 132-2-4 having a shape with blocked upper and lower ends is formed in the body portion 131-4 of the supporter 130-2-4 as shown in
(144) The slit 132-2-4 has a structure in which a first cut portion 132d-4 having a width to come into contact with both side surfaces of the turbulator 120-2-4 and a second cut portion 132e-4 having a larger width than that of the first cut portion 132d-4 are vertically connected and alternately formed.
(145) Accordingly, the both side surfaces of the turbulator 120-2-4 come into close contact with and are supported by the first cut portion 132d-4, and a combustion gas may flow through a space provided between the second cut portion 132e-4 and the turbulator 120-2-4.
(146) In the embodiment, a holding piece 128a-4 and a holding protrusion 128b-4, which protrude to support both side surfaces of the supporter 130-2-4, are formed on each of an upper end part and a lower end part of the turbulator 120-2-4.
(147) The holding piece 128a-4 may be formed by cutting and vertically bending a part of the plane portion 121-4, and the holding protrusion 128b-4 may be provided in a position spaced as much as a distance corresponding to a thickness of the supporter 130-2-4 apart toward one side of the holding piece 128a-4 while having an embossing shape. Accordingly, when the turbulator 120-2-4 is inserted into an inside of the slit 132-2-4 formed in the supporter 130-2-4 in a minor direction, the holding protrusion 128b-4 passes through a through portion 132f-4 formed in the slit 132-2-4 and having the same shape as that of the holding protrusion 128b-4. Here, since the holding piece 128a-4 comes into close contact with the body portion 131-4 of the supporter 130-2-4, the supporter 130-2-4 is supported by the holding piece 128a-4 and the holding protrusion 128b-4 so as to fix positions of the turbulator 120-2-4 and the supporter 130-2-4.
Eighth Embodiment
(148) Referring to
(149) Hereinafter, while components and an assembling structure of the turbulator 120-3-4 and the supporter 130-3-4 included in the tube assembly 100-8 for the tubular heat exchanger according to the eighth embodiment of the present invention are described, components equal to those of the above-described sixth embodiment and the seventh embodiment will be referred to as the same reference numerals and a repetitive description thereof will be omitted.
(150) In the embodiment, a plurality of slits 129-4 vertically spaced apart are formed in the plane portion 121-4 of the turbulator 120-3-4 as shown in
(151) Blockage portions 129a-4 are formed on the turbulator 120-3-4 in intervals of the adjacently located slits 129-4, and a plurality of support grooves 135-4 held by the blockage portions 129a-4 are formed on the supporter 130-3-4.
(152) Also, a plurality of protruding portions 134-4, which protrude to come into contact with an inner surface of the tube 110-4 are provided on an outer end of the supporter 130-3-4 while being vertically spaced apart such that crevice corrosion may be prevented by reducing a contact area between the tube 110-4 and the supporter 130-3-4.
(153) As described above, the present invention is not limited to the above-described embodiments, and it is appreciated that a variety of modifications of the present invention may be made by one of ordinary skill in the art without departing from the technical concept of the present invention defined by the claims and the variety of modifications will be included in the scope of the present invention.