FEEDING ASSEMBLY FOR FEEDING A FUEL GAS CONTAINING HYDROGEN TO A BURNER OF A BOILER AND BOILER COMPRISING SAID FEEDING ASSEMBLY
20250321000 ยท 2025-10-16
Inventors
Cpc classification
F24H1/0027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D14/82
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A feeding assembly for feeding at least one fuel gas to a burner of a boiler has a feeding duct configured to feed to the burner a feeding flow of fuel gas in a feeding direction; and a safety device, which is arranged in the feeding duct and is shaped so as to define a stagnation zone configured to contain a return flow of gas from the burner in the feeding duct in a return direction substantially opposite to the feeding direction.
Claims
1-16. (canceled)
17. A feeding assembly for feeding at least one fuel gas to a burner of a boiler, the feeding assembly comprising: a feeding duct configured to feed to the burner a feeding flow of fuel gas in a feeding direction; and a safety device, which is arranged in the feeding duct and is shaped to define a stagnation zone configured to contain a return flow of gas from the burner in the feeding duct in a return direction substantially opposite to the feeding direction.
18. The feeding assembly as claimed in claim 17, wherein the safety device is arranged in the feeding duct so as to define at least one passage restriction for the feeding flow of the fuel gas.
19. The feeding assembly as claimed in claim 18, wherein the safety device comprises at least one flow rectifier element, which is arranged in the at least one passage restriction and is configured to determine a laminar feeding flow of the fuel gas in the respective at least one passage restriction.
20. The feeding assembly as claimed in claim 19, wherein the at least one flow rectifier element is configured to dissipate heat transmitted by the gases of the return flow to the safety device.
21. The feeding assembly as claimed in claim 17, wherein the safety device comprises a stagnation chamber, which delimits the stagnation zone and is provided with an inlet opening directed toward the burner defining an access to the stagnation chamber.
22. The feeding assembly as claimed in claim 21, wherein the inlet opening defines the only access to the stagnation chamber.
23. The feeding assembly as claimed in claim 17, wherein the safety device comprises a blocking wall, which delimits, at least in part, the stagnation chamber and extends transversely with respect to the feeding direction.
24. The feeding assembly as claimed in claim 23, wherein the blocking wall has an aerodynamic profile in the feeding direction.
25. The feeding assembly as claimed in claim 23, wherein the blocking wall comprises a first portion having a first face of impact with the feeding flow of the fuel gas in the feeding direction, and a second portion having a second face of impact with the feeding flow of the fuel gas in the feeding direction; the first and second faces being oriented so as to determine between them a leading edge for the feeding flow of fuel gas in the feeding direction.
26. The feeding assembly as claimed in claim 25, wherein the first and second faces are oriented so as to determine between them a leading angle comprised between 10 and 120.
27. The feeding assembly as claimed in claim 23, wherein the safety device comprises a first lateral wall and a second lateral wall, each of which is arranged at a respective end of the blocking wall so as to define the stagnation chamber together with the blocking wall; the first lateral wall and the second lateral wall extending transversely with respect to the blocking wall.
28. The feeding assembly as claimed in claim 27, wherein the portion of the feeding duct in which the safety device is housed extends along a first longitudinal axis; the first lateral wall and the second lateral wall being substantially parallel to the first longitudinal axis.
29. The feeding assembly as claimed in claim 27, wherein the blocking wall and/or the first lateral wall and/or the second lateral wall are made of a heat conducting material.
30. The feeding assembly as claimed in claim 17, wherein the safety device comprises at least one fixing flap configured to allow the safety device to be secured to a wall of the feeding duct.
31. A burner assembly comprising the feeding assembly as claimed in claim 17 and a burner configured to burn fuel gas fed by the feeding assembly.
32. A boiler comprising the burner assembly as claimed in claim 31.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0043] Further characteristics and advantages of the present invention will become apparent from the following description of a non-limiting example embodiment, with reference to the accompanying Figures, wherein:
[0044]
[0045]
[0046]
[0047]
[0048]
DESCRIPTION OF EMBODIMENTS
[0049] With reference to
[0050] In the case described and illustrated herein, but not limited to the present invention, the boiler 1 is of the condensing type. In particular, the fuel gas employed is a high-flame-speed gas, such as for example hydrogen or methane or LPG or a mixture of hydrogen and air or a mixture of methane and air or a mixture of methane and hydrogen. It is understood that within the scope of the present invention, any gas or any mixture suitable for causing a combustion reaction can be employed.
[0051] With reference to
[0052] The feeding assembly 15 comprises a feeding duct 3 configured to feed to the burner 2 a feeding flow of fuel gas in a feeding direction D1; and a safety device 4, which is arranged in the feeding duct 3 and is shaped to define a stagnation zone 9 configured to contain a return flow coming from the burner 2 and having a return direction D2 substantially opposite to the feeding direction D1.
[0053] In particular, the portion of the feeding duct 3 in which the safety device 4 is housed extends along a longitudinal axis A1 and the burner 2 extends along a longitudinal axis A2 substantially perpendicular to the longitudinal axis A1.
[0054] In addition, the boiler 1 comprises an air feeding inlet 5; a gas feeding inlet 6, such as for example hydrogen or methane; a suction device 7 configured to suck air and gas through the respective inlets 5 and 6; and a mixing device 8 configured to mix sucked air and gases so as to generate the fuel gas.
[0055] With reference to
[0056] In particular, the heat exchanger 11 comprises a feeding duct 16 of the working fluid, which has an inlet portion 17 for the entry of the working fluid into the boiler 1 and an outlet portion 18 for the exit of the working fluid from the boiler 1.
[0057] The drainage assembly 12 comprises a collection tank 19 for collecting the condensate liquid in the heat exchanger 11; a siphon 20 fed with the condensate liquid; and a duct 21, which connects the collection tank 19 to the siphon 20.
[0058] In particular, the siphon 20 is configured to convey the condensate liquid towards the condensate drainage system 13 and, at the same time, to obstruct the passage of the heating gases through the siphon 20.
[0059] With reference to
[0060] In more detail, the inlet opening 31 defines the only access to the stagnation chamber 33.
[0061] In particular, the safety device 4 comprises a blocking wall 22, which delimits, at least in part, the stagnation chamber 33 and extends transversely with respect to the feeding direction D1 so as to block the return flow in the return direction D2 in case of backfire. In particular, the blocking wall 22 has an aerodynamic profile in the feeding direction D1.
[0062] In the case described and illustrated herein, but not limited to the present invention, the blocking wall 22 comprises a portion 23 having a face 35 (
[0063] In particular, the face 35 and the face 36 are oriented so as to determine between them a leading edge for the feeding flow of fuel gas in the feeding direction D1. In more detail, the face 35 and the face 36 (
[0064] In accordance with alternative embodiments, not shown in the accompanying figures, the blocking wall 22 can assume any configuration adapted to block the return flow of gas in the return direction D2. By way of example, the blocking wall may be C-shaped, in which the concave face of the blocking wall faces the burner 2.
[0065] Furthermore, the safety device 4 comprises a lateral wall 25 and a lateral wall 26, each of which is arranged at a respective end of the blocking wall 22 so as to delimit the stagnation zone 9 together with the blocking wall 22. In more detail, the lateral walls 25 and 26 delimit the inlet opening 31.
[0066] In particular, the lateral wall 25 is integrally coupled to the portion 23 and the lateral wall 26 is integrally coupled to the portion 24. In other words, portions 23 and 24 and lateral walls 25 and 26 are made integral in one piece.
[0067] In the case described and illustrated herein, the lateral wall 25 and the lateral wall 26 extend transversely with respect to the blocking wall 22. In particular, the portion 23 and the lateral wall 25 determine between them an angle greater than 90, preferably comprised between 120 and 150, and the portion 24 and the lateral wall 26 determine between them an angle greater than 90, preferably comprised between 120 and 150.
[0068] In accordance with an embodiment, the portion 23 and/or the portion 24 and/or the lateral wall 25 and/or the lateral wall 26 are made of a heat conducting material, preferably of a metallic material. In particular, the safety device 4 is made by bending a portion of metal plate so as to form the portions 23, 24 and the lateral walls 25, 26.
[0069] With reference to
[0070] In particular, each lateral wall 25, 26 and a wall 28 of the feeding duct 3 delimit respective passage restrictions 27 for the flow of fuel gas in the feeding direction D1. In practice, the blocking wall 22 is shaped to direct the flow of fuel gas in the passage restrictions 27, in particular so as to divide the flow of fuel gas in the feeding direction D1 into two separate flows.
[0071] In more detail, in each passage restriction 27, the distance d1, d2 between the respective lateral wall 25, 26 and the wall 28 of the feeding duct 3 along a direction D3 substantially perpendicular to the direction D1 is smaller than a dimension d3 of the feeding duct 3 along said direction D3.
[0072] In the case described and illustrated herein, each lateral wall 25, 26 extends in a direction substantially parallel to the longitudinal axis A1 and, consequently, the respective distances d1 and d2 are substantially constant along the longitudinal axis A1.
[0073] In accordance with an alternative embodiment, not shown in the accompanying figures, each lateral wall 25, 26 extends transversely to the longitudinal axis A1. In such configuration, the distances d1 and d2 of the lateral walls 25 and 26 vary along the longitudinal axis A1, in particular said distances d1 and d2 decrease in the direction D1.
[0074] With reference to
[0075] In accordance with an embodiment, not shown in the accompanying Figures, the safety device 4 comprises at least one housing for sensors, such as for example speed and/or pressure sensors, or for further devices, such as for example thermostats and/or thermal fuses, to control the state of the flow of fuel gases and prevent the ignition of the boiler 1 in case of damage caused by backfire.
[0076] With reference to
[0077] In particular, the safety device 4 comprises two flow rectifier elements 34, each of which is secured to a respective lateral wall 25, 26 outside the stagnation zone 9. In more detail, each flow rectifier element 34 is arranged in the respective passage restriction 27.
[0078] In the case described and illustrated herein, but not limited to the present invention, each flow rectifier element 34 comprises a grid made of metallic material.
[0079] Also, each flow rectifier element 34 is configured to dissipate heat transmitted by the gases of the return flow to the safety device 4.
[0080] With reference to
[0081] The safety device 4 extends inside the feeding duct 3 for the entire dimension d4. In more detail, the blocking wall 22 and the lateral walls 25 and 26 extend along the direction D4 for a dimension d5 substantially equal to the dimension d4. In other words, the blocking wall 22 and the lateral walls 25 and 26 are configured to block the return flow of the gases in the feeding duct 3 along the entire dimension d4.
[0082] In the case described and illustrated herein, the distances d1 and d2 of the passage restrictions 27 are constant along the direction D4. In other words, the lateral walls 25 and 26 extend in a direction substantially parallel to the direction D4.
[0083] In accordance with an alternative embodiment, not shown in the attached Figures, the feeding duct 3 has a section of substantially circular shape along a cutting plane V-V perpendicular to the longitudinal axis A1 (
[0084] In use and with reference to
[0085] The burner 2 burns the fuel gas fed so as to generate a flame and transmit heat to the heat exchanger 11.
[0086] With reference to
[0087] In the case described and illustrated herein, the blocking walls 23 and 24 of the blocking wall 22 contribute to channel the flow of fuel gas in the passage restrictions 27 by dividing the flow of fuel gas into two separate branches.
[0088] In stagnation zone 9 the fuel gas stagnates. In other words, in the stagnation zone 9 the fuel gas does not flow in the feeding direction D1 towards the burner 2.
[0089] When, for example, due to a reduction of the speed of the flow of fuel gas in the feeding duct 3, a backfire occurs, the flame advances in the return direction D2 from the burner 2 in the feeding duct 3.
[0090] In such circumstance, in the passage restrictions 27 the flame encounters a resistance to advancement in the return direction D2 since in the passage restrictions 27 the speed of the flow of fuel gas in the feeding direction D1 is maximum. Therefore, the flame is directed and confined in the stagnation zone 9, in which, thanks to the blocking walls 23 and 24 and to the lateral walls 25 and 26, the flame is extinguished and the heat generated by the flame is quickly dissipated.
[0091] Finally, it is evident that variations can be made to the present invention with respect to the described embodiments without thereby departing from the scope of protection of the appended claims.