WO2000050811A1 - Horizontal water-tube steam boiler with flame tube - Google Patents

Horizontal water-tube steam boiler with flame tube Download PDF

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Publication number
WO2000050811A1
WO2000050811A1 PCT/HR2000/000003 HR0000003W WO0050811A1 WO 2000050811 A1 WO2000050811 A1 WO 2000050811A1 HR 0000003 W HR0000003 W HR 0000003W WO 0050811 A1 WO0050811 A1 WO 0050811A1
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WO
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Prior art keywords
flue gas
boiler
gas duct
water
tubes
Prior art date
Application number
PCT/HR2000/000003
Other languages
French (fr)
Inventor
Dubravko MATANIC
Original Assignee
Matanic Dubravko
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Matanic Dubravko filed Critical Matanic Dubravko
Publication of WO2000050811A1 publication Critical patent/WO2000050811A1/en

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22BMETHODS OF STEAM GENERATION; STEAM BOILERS
    • F22B7/00Steam boilers of furnace-tube type, i.e. the combustion of fuel being performed inside one or more furnace tubes built-in in the boiler body
    • F22B7/14Steam boilers of furnace-tube type, i.e. the combustion of fuel being performed inside one or more furnace tubes built-in in the boiler body with both auxiliary water tubes and auxiliary fire tubes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22BMETHODS OF STEAM GENERATION; STEAM BOILERS
    • F22B7/00Steam boilers of furnace-tube type, i.e. the combustion of fuel being performed inside one or more furnace tubes built-in in the boiler body
    • F22B7/04Steam boilers of furnace-tube type, i.e. the combustion of fuel being performed inside one or more furnace tubes built-in in the boiler body with auxiliary water tubes

Definitions

  • the present invention refers to process and heating steam generating boilers, primarily those known in practice by their trade name as the "Steamblock” boilers.
  • the water is heated on the heat transfer surfaces submerged in water, which consist of flame tube and smoke tube.
  • water which consist of flame tube and smoke tube.
  • this concept is used for gas and/or liquid fuel fired boilers.
  • the flue gases flow in two or three flue gas passes, the first pass being the flame tube with a burner assembled at its front end. Diverting of flue gases between the first and the second pass, and between the second and third pass is achieved with the so called turning chambers.
  • the connecting channel between the first and the second flue gas passes is submerged in water in the cylindrical boiler body or outside the cylinder.
  • the working pressure of the generated steam is as a rule around 13 bar, max. 20 bar, and the generated steam is generally used for the process and heating purposes.
  • the boiler construction and pressure of the generated steam determine the boiler efficiency factor since the complete water volume in the boiler is actually at the saturation temperature for the generated steam pressure.
  • the boiler efficiency is generally determined by the flue gas temperature at the boiler outlet; due to the boiler construction, this temperature is commonly by 20° to 30°C above the boiler water temperature.
  • the flue gases have been additionally cooled in the external feedwater heater (the so called economizer) which has resulted in the efficiency increase by 2-4%. Disclosure of the Invention
  • the primary objective of the invention is to increase the heat transfer intensity by its design, install larger heat transfer surfaces into the available volume, decrease the number of flue gas passes and increase the boiler efficiency.
  • these requirements are realized by introduction of the second flue gas pass taking the form of a flue gas duct fitted with finned water tubes and the elements which turn the water flow through the boiler in the direction opposite to the flue gas flow, which makes the subject boiler a return-flow device.
  • FIG. 1 assembly drawing of the longitudinal section of the water- tube boiler with flame tube
  • the drawing shows fitted stay tubes 14, baffle plates 11 and 12, inlet 15 into the flue gas duct 7, and the tubes 9 fitted in the duct.
  • FIG. 2 assembly drawing of the cross-section of the water-tube boiler with flame tube and flue gas duct
  • the drawing shows the flue gas duct 7 cross-section, fitting of the finned tubes 8 and the position of the baffle plates 11 and 12, and the interrelation among the flue gas duct 7, flame tube 5 and the connecting channel 6.
  • Fig. 3 an example of a possible design of the flue gas duct 7, trapezoidal in section, and fitting of finned tubes 7 and shortened tubes 16.
  • Fig. 4 shows fitting of the shortened tubes 16 and the inclined side 17 of trapezoidal flue gas duct 7 with the indication of tube 16 supply.
  • FIG. 5 layout showing assembly of tube 9 and membrane (tube-fin-tube) elements 25 at the combustion products inlet from the connecting channel 6 into the flue gas duct 7.
  • the duct 7 and connecting channel 6 stiffening is also shown.
  • the steam boiler consists of the cylindrical shell 1 , front 2 and rear 3 heads, filled with water to the specified level above which is the steam space 4.
  • Combustion of fuel happens in the cylindrical flame tube 5 which is usually flat or corrugated, and submerged in the boiler water space.
  • the flame tube 5 ends in the connecting channel 6 where the combustion products change flow direction and turn by 90 °C to leave the connecting channel and enter into the flue gas duct 7 of the second flue gasses pass.
  • the boiler is of flue gas double-pass design where the first pass consists of the above flame tube 5 and the second pass of the flue gas duct 7.
  • the flue gas duct 7 might be of rectangular section (Fig. 2) or of any other shape.
  • the flue gas duct 7 is a duct open in one end for release of flue gases and closed with the bottom plate 24 in another end (Fig. 5), with the lateral opening 15 for inlet of the flue gases from the connecting channel 6 into the flue gas duct 7.
  • An example of another duct design option is given in Fig. 3, where the flue gas duct 7 is trapezoidal in section.
  • the flue gas duct of the second flue gas pass is fitted with vertical finned tubes 8 through which the water is supplied into the boiler from the bottom tube end, heated by the flue gases while passing through the tube, to enter the water space through the tube top end.
  • the tube size, pitch, number and finning characteristics are the known design elements and they are determined by thermodynamic and aerodynamic calculations.
  • the finned tubes 8 of equal length are added shorter tubes 16 the length of which is determined in accordance with the design requirements.
  • the lower end of the shortened tubes 16 is fitted into the inclined side of the duct 7 as shown in Fig. 4.
  • the plate 18 is perpendicular to the shortened tube 16 and it forms, together with the plate 19 welded on the wall 17 of the duct 7, tube supply chamber 18. This chamber is closed with triangular plate 20 on both ends.
  • the tube 16 is welded on plate 18 and supplied with the boiler feedwater by way of the opening 21 in the flue gas duct wall 17 with diameter larger than the tube 16 diameter.
  • the tube 16 supply chamber length along the lateral plate 17 may differ and encompass a number of tubes; on principle, it may be a complete tube bank between the stay tubes 14. Consequently, the number of openings 21 is adequately increased so that their surface area as a rule exceeds the diameters of all tubes 16 supplied from the subject chamber.
  • the flue gas temperatures in the connecting channel are 1 , 000-1, 200°C, depending on the thermodynamic characteristics of the combustion products and configuration and size of the flame tube 5 and the connecting channel 6.
  • different concepts may be used for vertical tubes 9, such as the tubes finned with refractory material or the tubes with studs welded longer or shorter round iron elements (the so called studded tubes) or all-welded plates to form membrane (tube-fin-tube) elements (Fig. 5).
  • the Fig. 5 shows method of fitting of tubes 9 into the flue gas duct 7 when the membrane (tube-fin-tube) elements 25 are used.
  • the membrane (tube-fin- tube) elements 25 consist * of two, three or more smooth tubes interconnected with a metal strip along the entire length of the tube fitted inside the flue gas duct 7.
  • the membrane (tube-fin- tube) elements 25 on the flue gas inlet into the flue gas duct 7 are fitted perpendicularly to the duct 7 centerline.
  • the flue gases are turned by 90°
  • the membrane (tube-fin-tube) elements in the turning chamber are fitted at 45 ° to the flue gas duct 7 centerline; downstream the flue gases turning by 90°, the membrane (tube-fin-tube) elements are fitted in parallel with the flue gas duct 7 centerline, as shown in Fig. 5.
  • the membrane (tube-fin- tube) elements 25 act as the baffle plates which reduce the flow resistance.
  • the flue gas cooling with tube bank 9 starts already after the flue gases from the connecting channel 6 are turned into the flue gas duct 7; that, along with the increased heat transfer surface of the tube 9 initiates intensive cooling of the flue gases by convective heat transfer.
  • only finned tubes are fitted with the sections which ensure cooling of the combustion products in the second pass to 130-150°C at the boiler outlet into the outlet chamber 10.
  • the flue gases cooling to the temperatures below the boiler working medium temperature is ensured with building in of the baffle plates 11 and 12 which turns the boiler into the return-flow heat exchanger.
  • the baffle plates 11 and 12 are fixed on the flue gas duct 7 along its entire length, i.e. from the front head 2 to the flue gas duct 7 end.
  • the baffle plate 11 must be higher than the highest boiler water level.
  • the baffle plates 11 and 12 are fitted on the flue gas duct above the duct 7 vertical wall, so that the entire boiler water space is separated into two parts where the flame tube 5 as the heat transfer surface is placed in one half and the flue gas duct 7 with all the fitted tubes in the other half. These two boiler water spaces are connected by the area between the connecting channel 6 and the rear head 3.
  • the boiler is supplied with feedwater by way of the tube 13 fitted under the flue gas duct 7, by the front head 2.
  • the feedwater is circulated and heated in the tubes 8 and 9, and in forced circulation from the feedwater tube 13 to the rear head 3, to finally flow into the boiler water space near the flame tube 5. Since the combustion product temperatures are the highest at the flame tube 5 and the connecting channel 6, it is the point of the most intensive evaporation and the loss of the water volume in this space enables the water inflow from the flue gas duct 7 water space.
  • the flue gas duct 7 has unfavorable design shape because of the boiler pressure which might reach up to 25 bar.
  • the horizontal sides of the flue gas duct 7 are restrained with tubes 8 and 9, vertical sides are restrained with regularly arranged bracing tubes 14, which are fitted at the angle of 5-10° to the horizontal and cooled with the boiler water and their arrangement is determined by the stress and strain analysis.
  • Vertical wall of the duct 7, opposed to the inlet 15 from the connecting channel, is restrained 35 with vertical plates 22 which are lengthwise welded to the flue gas duct 7.
  • the flat sides of the connecting channel 6 are restrained in the same way, with welded plates 23.
  • the described construction enables cooling of the combustion products under the saturation temperature for the boiler working pressure without the external water heater and with only two flue gas passes, which all together results in the boiler efficiency increase by 4 to 5 % . 40 This will be achieved provided the deaeration temperature is 105 °C.
  • the boiler construction does not include external turning chambers, which facilitates the boiler manufacture and reduces the material and labor.
  • the combustion products exhaust on the front side enables the simplest design of the combustion air heater that enables further cost effective increase in the boiler efficiency, particularly in gas-fired power plants. 45 Application of the Invention

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Heat-Exchange Devices With Radiators And Conduit Assemblies (AREA)

Abstract

The invention relates to a cylindrical horizontal steam boiler of the so-called 'Steamblock' construction consisting of a cylinder (1) and appurtenant heads (2 and 3), partly filled with water and with the steam space (4) above it. All the heat transfer surfaces are submerged in the water space and they consist of flame tube (5), connecting channel (6) and the flue gas duct (7). The flue gas duct (7) is fitted with vertical finned tubes (8 and 9) cooled with water from the inside and heated with flue gases from the outside. The boiler has two flue gas passes, and is fitted with baffle plates (11 and 12) which force the boiler water to flow from the supply tube (13) in direction opposite to the flue gas flow direction, which results in flue gas outlet temperatures below the boiler working medium temperature, which is not possible in conventional boiler constructions. In this way, the boiler efficiency increase by 4 to 5 % is possible, the boiler construction is simplified, and the material consumption reduced.

Description

HORIZONTAL WATER-TUBE STEAM BOILER WITH FLAME TUBE Background of the Invention
The present invention refers to process and heating steam generating boilers, primarily those known in practice by their trade name as the "Steamblock" boilers. Technical Field
The technical concepts of the "Steamblock" boilers have for long been characteristic for installation of the same heat transfer surface elements, including flame tube and smooth smoke tubes, which resulted in solutions that enable a comparatively low-intensity heat transfer from the flue gases to the operating medium and consequently result in less cost-effective solutions with relatively low efficiency. Background Art
The known concept of "Steamblock" boilers for power generation have been in use for quite a long period with a comparatively small improvement. From the design standpoint, these boilers are horizontal cylindrical vessels, partly filled with water that is heated with flue gases and evaporated; generated steam is either conveyed from the vessel top in saturated condition or brought to specially designed reheaters.
The water is heated on the heat transfer surfaces submerged in water, which consist of flame tube and smoke tube. As a rule, this concept is used for gas and/or liquid fuel fired boilers. The flue gases flow in two or three flue gas passes, the first pass being the flame tube with a burner assembled at its front end. Diverting of flue gases between the first and the second pass, and between the second and third pass is achieved with the so called turning chambers. The connecting channel between the first and the second flue gas passes is submerged in water in the cylindrical boiler body or outside the cylinder. For construction reasons, the working pressure of the generated steam is as a rule around 13 bar, max. 20 bar, and the generated steam is generally used for the process and heating purposes. The boiler construction and pressure of the generated steam determine the boiler efficiency factor since the complete water volume in the boiler is actually at the saturation temperature for the generated steam pressure. The boiler efficiency is generally determined by the flue gas temperature at the boiler outlet; due to the boiler construction, this temperature is commonly by 20° to 30°C above the boiler water temperature. Recently, in order to increase the boiler efficiency, the flue gases have been additionally cooled in the external feedwater heater (the so called economizer) which has resulted in the efficiency increase by 2-4%. Disclosure of the Invention
The primary objective of the invention is to increase the heat transfer intensity by its design, install larger heat transfer surfaces into the available volume, decrease the number of flue gas passes and increase the boiler efficiency. In comparison with the state-of-the-art, these requirements are realized by introduction of the second flue gas pass taking the form of a flue gas duct fitted with finned water tubes and the elements which turn the water flow through the boiler in the direction opposite to the flue gas flow, which makes the subject boiler a return-flow device.
Brief Description of the Drawings
The enclosed drawings are an integral part of the invention description, which best illustrate the invention and facilitate explanation of the basic principles of the invention.
Fig. 1 assembly drawing of the longitudinal section of the water- tube boiler with flame tube
The drawing shows fitted stay tubes 14, baffle plates 11 and 12, inlet 15 into the flue gas duct 7, and the tubes 9 fitted in the duct.
Fig. 2 assembly drawing of the cross-section of the water-tube boiler with flame tube and flue gas duct The drawing shows the flue gas duct 7 cross-section, fitting of the finned tubes 8 and the position of the baffle plates 11 and 12, and the interrelation among the flue gas duct 7, flame tube 5 and the connecting channel 6.
Fig. 3 an example of a possible design of the flue gas duct 7, trapezoidal in section, and fitting of finned tubes 7 and shortened tubes 16. Fig. 4 shows fitting of the shortened tubes 16 and the inclined side 17 of trapezoidal flue gas duct 7 with the indication of tube 16 supply.
Fig. 5 layout showing assembly of tube 9 and membrane (tube-fin-tube) elements 25 at the combustion products inlet from the connecting channel 6 into the flue gas duct 7. The duct 7 and connecting channel 6 stiffening is also shown. Detailed Description of Minimum One Invention Realization Method
Below, a detailed description is given of the design concept the realization of which leads to the invention realization.
The steam boiler consists of the cylindrical shell 1 , front 2 and rear 3 heads, filled with water to the specified level above which is the steam space 4. Combustion of fuel (light distillate fuel oil and/or gas) happens in the cylindrical flame tube 5 which is usually flat or corrugated, and submerged in the boiler water space. The flame tube 5 ends in the connecting channel 6 where the combustion products change flow direction and turn by 90 °C to leave the connecting channel and enter into the flue gas duct 7 of the second flue gasses pass. The boiler is of flue gas double-pass design where the first pass consists of the above flame tube 5 and the second pass of the flue gas duct 7. Interrelation between the flame tube 5 and flue gas duct 7 is as a rule such that they are placed side by side and parallel to each other, i.e. each occupies one of the elongated boiler halves. The flue gas duct 7 might be of rectangular section (Fig. 2) or of any other shape. The flue gas duct 7 is a duct open in one end for release of flue gases and closed with the bottom plate 24 in another end (Fig. 5), with the lateral opening 15 for inlet of the flue gases from the connecting channel 6 into the flue gas duct 7. An example of another duct design option is given in Fig. 3, where the flue gas duct 7 is trapezoidal in section. The flue gas duct of the second flue gas pass is fitted with vertical finned tubes 8 through which the water is supplied into the boiler from the bottom tube end, heated by the flue gases while passing through the tube, to enter the water space through the tube top end. The tube size, pitch, number and finning characteristics are the known design elements and they are determined by thermodynamic and aerodynamic calculations. When the flue gas duct is trapezoidal as in Fig. 3, the finned tubes 8 of equal length are added shorter tubes 16 the length of which is determined in accordance with the design requirements. The lower end of the shortened tubes 16 is fitted into the inclined side of the duct 7 as shown in Fig. 4. The plate 18 is perpendicular to the shortened tube 16 and it forms, together with the plate 19 welded on the wall 17 of the duct 7, tube supply chamber 18. This chamber is closed with triangular plate 20 on both ends. The tube 16 is welded on plate 18 and supplied with the boiler feedwater by way of the opening 21 in the flue gas duct wall 17 with diameter larger than the tube 16 diameter. The tube 16 supply chamber length along the lateral plate 17 may differ and encompass a number of tubes; on principle, it may be a complete tube bank between the stay tubes 14. Consequently, the number of openings 21 is adequately increased so that their surface area as a rule exceeds the diameters of all tubes 16 supplied from the subject chamber. The flue gas temperatures in the connecting channel are 1 , 000-1, 200°C, depending on the thermodynamic characteristics of the combustion products and configuration and size of the flame tube 5 and the connecting channel 6. Depending on the combustion products temperature in the zone of the highest temperatures in the flue gas duct 7, different concepts may be used for vertical tubes 9, such as the tubes finned with refractory material or the tubes with studs welded longer or shorter round iron elements (the so called studded tubes) or all-welded plates to form membrane (tube-fin-tube) elements (Fig. 5). The Fig. 5 shows method of fitting of tubes 9 into the flue gas duct 7 when the membrane (tube-fin-tube) elements 25 are used. The membrane (tube-fin- tube) elements 25 consist* of two, three or more smooth tubes interconnected with a metal strip along the entire length of the tube fitted inside the flue gas duct 7. The membrane (tube-fin- tube) elements 25 on the flue gas inlet into the flue gas duct 7 are fitted perpendicularly to the duct 7 centerline. In duct 7, the flue gases are turned by 90° , and the membrane (tube-fin-tube) elements in the turning chamber are fitted at 45 ° to the flue gas duct 7 centerline; downstream the flue gases turning by 90°, the membrane (tube-fin-tube) elements are fitted in parallel with the flue gas duct 7 centerline, as shown in Fig. 5. Fitted in this way, the membrane (tube-fin- tube) elements 25 act as the baffle plates which reduce the flow resistance. In such a design, the flue gas cooling with tube bank 9 starts already after the flue gases from the connecting channel 6 are turned into the flue gas duct 7; that, along with the increased heat transfer surface of the tube 9 initiates intensive cooling of the flue gases by convective heat transfer. Within the zone with combustion product temperatures below 800°, only finned tubes are fitted with the sections which ensure cooling of the combustion products in the second pass to 130-150°C at the boiler outlet into the outlet chamber 10. The flue gases cooling to the temperatures below the boiler working medium temperature is ensured with building in of the baffle plates 11 and 12 which turns the boiler into the return-flow heat exchanger. The baffle plates 11 and 12 are fixed on the flue gas duct 7 along its entire length, i.e. from the front head 2 to the flue gas duct 7 end. The baffle plate 11 must be higher than the highest boiler water level. The baffle plates 11 and 12 are fitted on the flue gas duct above the duct 7 vertical wall, so that the entire boiler water space is separated into two parts where the flame tube 5 as the heat transfer surface is placed in one half and the flue gas duct 7 with all the fitted tubes in the other half. These two boiler water spaces are connected by the area between the connecting channel 6 and the rear head 3. The boiler is supplied with feedwater by way of the tube 13 fitted under the flue gas duct 7, by the front head 2. In this way, the feedwater is circulated and heated in the tubes 8 and 9, and in forced circulation from the feedwater tube 13 to the rear head 3, to finally flow into the boiler water space near the flame tube 5. Since the combustion product temperatures are the highest at the flame tube 5 and the connecting channel 6, it is the point of the most intensive evaporation and the loss of the water volume in this space enables the water inflow from the flue gas duct 7 water space.
According to its stress-and-strain characteristics, the flue gas duct 7 has unfavorable design shape because of the boiler pressure which might reach up to 25 bar. The horizontal sides of the flue gas duct 7 are restrained with tubes 8 and 9, vertical sides are restrained with regularly arranged bracing tubes 14, which are fitted at the angle of 5-10° to the horizontal and cooled with the boiler water and their arrangement is determined by the stress and strain analysis. Vertical wall of the duct 7, opposed to the inlet 15 from the connecting channel, is restrained 35 with vertical plates 22 which are lengthwise welded to the flue gas duct 7. The flat sides of the connecting channel 6 are restrained in the same way, with welded plates 23.
The described construction enables cooling of the combustion products under the saturation temperature for the boiler working pressure without the external water heater and with only two flue gas passes, which all together results in the boiler efficiency increase by 4 to 5 % . 40 This will be achieved provided the deaeration temperature is 105 °C. The boiler construction does not include external turning chambers, which facilitates the boiler manufacture and reduces the material and labor. The combustion products exhaust on the front side enables the simplest design of the combustion air heater that enables further cost effective increase in the boiler efficiency, particularly in gas-fired power plants. 45 Application of the Invention
The professionals will recognize that the subject invention may be realized by a number of reworks and modifications within the field of the technical and technological development of the construction, such as is current practice in the boilermaking, while the idea, spirit and the scope of the invention remain unchanged.

Claims

1. The steam boiler, comprising:
- cylindrical horizontal boiler body 1 with two heads 2 and 3,
- water submerged flame tube 5 of flat or corrugated design, - submerged flue gas duct 7 with built-in water tubes 8 and 9,
- connecting channel 6 connecting the flame tube 5 and the flue gas duct 7,
- baffle plates 11 and 12 separating the water space of the boiler along the flue gas duct 7 into two boiler sections, which, designed and assembled in the described way, present a steam boiler or return- flow heat exchanger with two flue gas passes.
2. The steam boiler of claim 1 wherein the flame tube 5 and the flue gas duct 7 are placed exclusively laterally to each other and are parallel to each other.
3. The steam boiler of claims 1 and 2 wherein the flue gas duct 7 is rectangular in section as shown in Fig. 2; trapezoidal in section as shown in Fig. 3 or of third similar shape, which makes optimum use of the available water space laterally from the flame tube 5.
4. The steam boiler of claims 1, 2 and 3 wherein the flue gas duct 7 is open in one end for the flue gas outlet into the outlet chamber 10 and closed in another end with the bottom plate 24 and furnished with a rectangular opening for the flue gas inlet from the connecting channel 6.
5. The steam boiler of claims 1, 2, 3 and 4 wherein the flue gas duct 7 is fitted with vertical tubes 8 and 9 of equal length, and shortened tubes 16 when the duct is trapezoidal in section, with water circulated through the tubes and flue gases around the tubes.
6. The steam boiler of claim 5 wherein the flue gas duct 7 in the high flue-gas temperatures zone where the temperature exceeds approx. 800° is fitted with tubes 9 which increase the heat transfer surface on the flue-gas side by fitting of the finned tubes and/or the so called studded tubes and/or membrane (tube-fin-tube) elements 25.
7. The steam boiler of claims 4, 5 and 6 wherein the flue gas duct 7 is fitted with the tubes 9 from the inlet 15 into the flue gas duct 7, i.e. already in the flue gases turning chamber on their way from the connecting channel 6 into the flue gas duct 7.
8. The steam boiler of claims 4, 5, 6 and 7 wherein the membrane (tube-fin- tube) elements 25 are fitted perpendicularly, in parallel or at the angle of 45° to the flue gas duct 7 centerline thus creating the baffle plates as shown in Fig. 5.
9. The steam boiler of claim 5 wherein the flue gas duct 7 in the flue-gas temperatures zone with temperature below 800° is fitted with finned tubes 8 and 16 when the flue gas duct 7 is trapezoidal in section, of adequate configuration (fins height, fins pitch, finning method and the like) which is determined by the thermodynamic and aerodynamic calculations.
10. The steam boiler of claims 3, 5, 6, 7 and 9 wherein the shortened tubes 16 are fed from the feedwater supply chamber consisting of welded plates 18, 19 and 20 to which the feedwater is supplied by way of the openings 21 in the inclined wall 17 of the flue gas duct 7.
11. The steam boiler of claims 1, 2, 3, and 4 wherein alongside the flue gas duct 7 the baffle plates 11 and 12 are fitted dividing the boiler water space into two parts so that the water from the boiler water space which accommodates the flue gas duct 7 flows into the boiler water space around the flame tube 5 only through the space between the connecting channel 6 and the rare head 3.
12. The steam boiler of claim 11 wherein the baffle plate 11 is fitted alongside the entire flue gas duct 7 length on the upper duct end, i.e. from the front head 2 to the duct bottom 24 and which vertically exceed the maximum permissible boiler water level while preventing lengthwise the mixing of water from the sections to the left and right of that plate.
13. The steam boiler of claim 11 wherein the baffle plate 12 is fitted lengthwise the entire flue gas duct 7 i.e. from the front head 2 to the duct bottom 24 and heightwise from the boiler shell 1 to the flue gas duct 7 preventing the mixing of water from the sections to the left and right of that plate.
14. The steam boiler of claims 1 , 2 and 11 wherein the boiler is supplied with the boiler water by way of the tube 13 placed below the flue gas duct 7 leading to the water space immediately by the boiler front head 2.
15. The steam boiler of claims 1, 2 and 5 wherein in accordance with the arrangement requested in accordance with the flue gas duct 7 strength calculations for the boiler working pressure, among the tubes 8, 9 and 16 the water-cooled smooth stay tubes 14 at the angle 5 to 10° to the horizontal are fitted into the flue gas duct.
16. The steam boiler of claims 1, 2, 3 and 4 wherein the flue gas duct 7 vertical side opposed to the inlet 15 is vertically restrained with welded reinforcement 22 rectangular in section and in compliance with the strength calculation for the boiler working pressure.
17. The steam boiler of claims 1 and 2 wherein the top and bottom flat side of the connecting channel 6 are restrained with welded reinforcement 23 rectangular in section and in compliance with the strength calculation for the boiler working pressure.
PCT/HR2000/000003 1999-02-26 2000-02-18 Horizontal water-tube steam boiler with flame tube WO2000050811A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
HRP990065A 1999-02-26
HR990065 1999-02-26

Publications (1)

Publication Number Publication Date
WO2000050811A1 true WO2000050811A1 (en) 2000-08-31

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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE825091C (en) * 1949-10-30 1951-12-17 Wagner Geb Two-flame tube boiler with under wind traveling grate
DE2308956A1 (en) * 1973-02-23 1974-09-12 Otte & Co Kg Laurenz MULTIPLE FLAME TUBE BOILER
GB2068513A (en) * 1980-01-31 1981-08-12 Ducosto Stoomketel Mach Bv Fire-tube boiler
GB2218787A (en) * 1988-05-20 1989-11-22 Northern Eng Ind Steam boilers

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE825091C (en) * 1949-10-30 1951-12-17 Wagner Geb Two-flame tube boiler with under wind traveling grate
DE2308956A1 (en) * 1973-02-23 1974-09-12 Otte & Co Kg Laurenz MULTIPLE FLAME TUBE BOILER
GB2068513A (en) * 1980-01-31 1981-08-12 Ducosto Stoomketel Mach Bv Fire-tube boiler
GB2218787A (en) * 1988-05-20 1989-11-22 Northern Eng Ind Steam boilers

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