Annular one-piece corrugated liner for combustor of a gas turbine engine
Claim Score by NHIP
Abstract
An annular one-piece liner for a combustor of a gas turbine engine, including a first end adjacent to an upstream end of the combustor, a second end adjacent to a downstream end of the combustor, and a plurality of corrugations between the first and second ends, each corrugation having an amplitude and a wavelength between an adjacent corrugation, wherein the amplitude of the corrugations and/or the wavelength between adjacent corrugations is variable from the first end to the second end.

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Projected expiry passed 15 May 2022, 4.4 years ago.
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31 claims: 2 independent, 29 dependent
- 1Broadest claimClaim Score 68, broad(NHIP)An annular one-piece liner for a combustor of a gas turbine engine, comprising:(a) a first end adjacent to an upstream end of said combustor;(b) a second end adjacent to a downstream end of said combustor;and, (c) a plurality of corrugations between said first and second ends, each corrugation having an amplitude and a wavelength between an adjacent corrugation;wherein the amplitude of said corrugations is variable from said first end to said second end.
- 19An annular one-piece liner for a combustor of a gas turbine engine, comprising:(a) a first end adjacent to an upstream end of said combustor;(b) a second end adjacent to a downstream end of said combustor;and, (c) a plurality of corrugations between said first and second ends, each corrugation having an amplitude and a wavelength between an adjacent corrugation;wherein the wavelength between adjacent corrugations is variable from said first end to said second end.
Independent claims2
25 paragraphs in 4 sections, as filed
BACKGROUND OF THE INVENTION
[0001] The present invention relates generally to a liner for the combustor of a gas turbine engine and, in particular, to an annular one-piece corrugated liner of substantially sinusoidal cross-section where the amplitude of the corrugations and/or the wavelength between adjacent corrugations is varied from an upstream end to a downstream end.
[0002] Combustor liners are generally used in the combustion section of a gas turbine engine located between the compressor and turbine sections of the engine, although such liners may also be used in the exhaust sections of aircraft engines that employ afterburners. Combustors generally include an exterior casing and an interior combustor where fuel is burned to produce a hot gas at an intensely high temperature (e.g., 3000° F. or even higher). To prevent this intense heat from damaging the combustor case and the surrounding engine before it exits to a turbine, a heat shield or combustor liner is provided in the interior of the combustor.
[0003] One type of liner design includes a number of annular sheet metal bands which are joined by brazing, where each band is subject to piercing operations after forming to incorporate nugget cooling holes and shaped dilution holes. Each band is then tack welded and brazed to the adjacent band, with stiffeners known as “belly bands” being tack welded and brazed to the sheet metal bands. The fabrication of this liner has been found to be labor intensive and difficult, principally due to the inefficiency of brazing steps applied to the stiffeners and sheet metal bands.
[0004] In order to eliminate the plurality of individual sheet metal bands, an annular one-piece sheet metal liner design has been developed as disclosed in U.S. Pat. No. 5,181,379 to Wakeman et al., U.S. Pat. No. 5,233,828 to Napoli, U.S. Pat. No. 5,279,127 to Napoli, U.S. Pat. No. 5,465,572 to Nicoll et al., and U.S. Pat. No. 5,483,794 to Nicoll et al. While each of these patents is primarily concerned with various cooling aspects of the one-piece liner, it will be noted that alternative configurations for such liners are disclosed as being corrugated so as to form a wavy wall. In this way, the buckling resistance and restriction of liner deflection for such liners is improved. The corrugations preferably take on a shallow sine wave form, but the amplitude of each corrugation (wave) and the wavelength between adjacent corrugations (waves) is shown and described as being substantially uniform across the axial length of the liner.
[0005] It has been determined that the stiffness requirements for a one-piece sheet metal liner are likely to vary across the axial length thereof since certain points will be weaker than others. Thus, it would be desirable for an annular, one-piece corrugated liner to be developed for use with a gas turbine engine combustor which provides a variable amount of stiffness along its axial length as required by the liner. It would also be desirable for such a liner to be manufactured and assembled more easily, including the manner in which it is attached at its upstream and downstream ends.
BRIEF SUMMARY OF THE INVENTION
[0006] In a first exemplary embodiment of the invention, an annular one-piece liner for a combustor of a gas turbine engine is disclosed as including a first end adjacent to an upstream end of the combustor, a second end adjacent to a downstream end of the combustor, and a plurality of corrugations between the first and second ends, each corrugation having an amplitude and a wavelength between an adjacent corrugation, wherein the amplitude of the corrugations is variable from the first end to the second end. The wavelengths between adjacent corrugations may be either substantially equal or variable from the first end to the second end of the liner.
[0007] In a second exemplary embodiment of the invention, an annular one-piece liner for a combustor of a gas turbine engine is disclosed as including a first end adjacent to an upstream end of the combustor, a second end adjacent to a downstream end of the combustor, and a plurality of corrugations between the first and second ends, each corrugation having an amplitude and a wavelength between an adjacent corrugation, wherein the wavelength between adjacent corrugations is variable from the first end to the second end. The amplitudes of each corrugation may be either substantially equal or variable from the first end to the second end of the liner.
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]FIG. 1 is a cross-sectional view of a gas turbine engine including a combustor liner in accordance with the present invention;
[0009]FIG. 2 is an enlarged, cross-sectional view of the combustor depicted in FIG. 1;
[0010]FIG. 3 is a partial perspective view of the outer liner for the combustor depicted in FIGS. 1 and 2 in accordance with the present invention;
[0011]FIG. 4 is an enlarged cross-sectional view of the outer liner depicted in FIGS. <b>1</b>-<b>3</b>;
[0012]FIG. 5 is an enlarged, partial cross-sectional view of the outer liner depicted in FIG. 4, where the amplitude of the corrugations and the wavelength between adjacent corrugations is identified;
[0013]FIG. 6 is an enlarged, partial cross-sectional view of the middle section of the outer liner depicted in FIG. 4;
[0014]FIG. 7 is an enlarged, partial cross-sectional view of the upstream section of the outer liner depicted in FIG. 4; and,
[0015]FIG. 8 is an enlarged, partial cross-sectional view of the downstream section of the outer liner depicted in FIG. 4.
DETAILED DESCRIPTION OF THE INVENTION
[0016] Referring now to the drawings in detail, wherein identical numerals indicate the same elements throughout the figures, FIG. 1 depicts an exemplary gas turbine engine <b>10</b> having in serial flow communication a low pressure compressor <b>12</b>, a high pressure compressor <b>14</b>, and a combustor <b>16</b>. Combustor <b>16</b> conventionally generates combustion gases that are discharged therefrom through a high pressure turbine nozzle assembly <b>18</b>, from which the combustion gases are channeled to a conventional high pressure turbine <b>20</b> and, in turn, to a conventional low pressure turbine <b>22</b>. High pressure turbine <b>20</b> drives high pressure compressor <b>14</b> through a suitable shaft <b>24</b>, while low pressure turbine <b>22</b> drives low pressure compressor <b>12</b> through another suitable shaft <b>26</b>, all disposed coaxially about a longitudinal or axial centerline axis <b>28</b>.
[0017] As seen in FIG. 2, combustor <b>16</b> further includes a combustion chamber <b>30</b> defined by an outer liner <b>32</b>, an inner liner <b>34</b>, and a dome <b>36</b> located at an upstream end thereof. It will be seen that a fuel/air mixer <b>38</b> is located within dome <b>36</b> so as to introduce a mixture of fuel and air into combustion chamber <b>30</b>, where it is ignited by an igniter (not shown) and combustion gases are formed which are utilized to drive high pressure turbine <b>20</b> and low pressure turbine <b>22</b>, respectively.
[0018] In accordance with the present invention, it will be noted from FIGS. 3 and 4 that outer liner <b>32</b> is annular in shape and preferably formed as a one-piece construction from a type of sheet metal. More specifically, outer liner <b>32</b> includes a first end <b>42</b> located adjacent to an upstream end of combustor <b>16</b>, where first end <b>42</b> is connected to a cowl <b>44</b> and dome <b>36</b> by means of a rivet band <b>40</b> (which is in turn connected to cowl <b>44</b> and dome <b>36</b> via a mechanical connection such as bolt <b>46</b> and nut <b>48</b>, a welded connection, or other similar form of attachment). Accordingly, it will be appreciated that outer liner <b>32</b> is preferably connected to rivet band <b>40</b> via rivets <b>41</b> and therefore eliminates the need for outer liner <b>32</b> to have a flange formed thereon at upstream end <b>42</b>. Starter slots <b>55</b> and <b>57</b> are preferably provided in rivet band <b>40</b> and upstream outer liner end <b>42</b>, respectively, to promote a cooling film along the hot side of outer liner <b>32</b>. Outer liner <b>32</b> also includes a second end <b>50</b> located adjacent to a downstream end of combustor <b>16</b>, where second end <b>50</b> is preferably connected to a seal assembly <b>52</b> by means of rivets <b>53</b>. In this way, outer liner <b>32</b> is able to move axially in accordance with any thermal growth and/or pressure fluctuations experienced.
[0019] Outer liner <b>32</b> further includes a plurality of corrugations, identified generally by reference numeral <b>54</b> (see FIG. 3), formed therein between first end <b>42</b> and second end <b>50</b>. It will be appreciated that corrugations <b>54</b> have a substantially sinusoidal shape when viewed in cross-section (see FIG. 4), as seen in accordance with a neutral axis <b>59</b> (see FIG. 5) extending therethrough. It will be appreciated from FIG. 5 that each corrugation <b>54</b> has a given amplitude <b>56</b>, as well as a given wavelength <b>58</b> between adjacent corrugations <b>54</b>. Contrary to the prior art, where the liners are disclosed as having corrugations with substantially the same amplitude and wavelength therebetween, corrugations <b>54</b> of outer liner <b>32</b> are configured so as to have a variable amplitude and/or a variable wavelength between adjacent corrugations. In this way, outer liner <b>32</b> is able to provide any degree of stiffness desired along various axial locations thereof without overdesigning outer liner <b>32</b> for its weakest points.
[0020] For example, it has been found that a middle section <b>60</b> of outer liner <b>32</b> is generally the weakest and most prone to buckling. Thus, an amplitude <b>62</b> for corrugations <b>64</b> located within middle section <b>60</b> (see FIG. 6) is preferably greater than an amplitude <b>66</b> for corrugations <b>68</b> located within an upstream section <b>70</b> (see FIG. 7) of outer liner <b>32</b> adjacent first outer liner end <b>42</b>. Similarly, amplitude <b>62</b> for corrugations <b>64</b> located within middle section <b>60</b> is preferably greater than an amplitude <b>72</b> for corrugations <b>74</b> located within a downstream section <b>76</b> (see FIG. 8) of outer liner <b>32</b> adjacent second outer liner end <b>50</b>. Since the fixed connection of outer liner <b>32</b> at first outer liner end <b>42</b> creates a slightly larger risk of buckling than at second outer liner end <b>50</b>, and the temperature at first outer liner end <b>42</b> is generally higher than the temperature at second outer liner end <b>50</b>, amplitude <b>66</b> for corrugations <b>68</b> is preferably equal to or greater than amplitude <b>72</b> for corrugations <b>74</b>.
[0021] Either in conjunction with, or separately from, varying amplitudes <b>62</b>, <b>66</b> and <b>72</b> for corrugations <b>64</b>, <b>68</b> and <b>74</b> of middle section <b>60</b>, upstream section <b>70</b> and downstream section <b>76</b>, respectively, it has been found that varying the wavelengths between adjacent corrugations therein can also be utilized to tailor the stiffness of outer liner <b>32</b> at various axial locations. Accordingly, in the case where middle section <b>60</b> of outer liner <b>32</b> is considered to be most prone to buckling, a wavelength <b>78</b> between adjacent corrugations <b>64</b> is preferably less than a wavelength <b>80</b> between adjacent corrugations <b>68</b> of upstream section <b>70</b> and a wavelength <b>82</b> between adjacent corrugations <b>74</b> of downstream section <b>76</b>. Likewise, wavelength <b>80</b> between adjacent corrugations <b>68</b> of upstream section <b>70</b> is preferably equal to or less than wavelength <b>82</b> between adjacent corrugations <b>74</b> of downstream section <b>76</b> for the aforementioned reasons with regard to their respective amplitudes.
[0022] In order to provide at least the same degree of stiffness as in current outer liners, it has been determined that an overall buckling margin of outer liner <b>32</b> preferably be in a range of approximately 35-250 psi. A more preferable overall buckling margin range for outer liner <b>32</b> would be approximately 85-200 psi, while an optimal range for such overall buckling margin would be approximately 120-180 psi.
[0023] Various configurations for outer liner <b>32</b> have been tested and analyzed, including the number of corrugations <b>54</b> formed therein, the thickness <b>84</b> thereof (see FIG. 5), and the material utilized to form such outer liner <b>32</b>. It will be appreciated that the overall buckling margin discussed above is the overriding concern, but optimization of the other parameters involved is important since factors involving weight, cost, ability to form the material, and the like must be taken into account. Accordingly, it has been found that the total number of corrugations <b>54</b> (as defined by the total number of waves) formed in outer liner <b>32</b> preferably is approximately <b>6</b>-<b>12</b>. The total number of corrugations <b>54</b> depicted within FIGS. <b>1</b>-<b>4</b> is 6½ , which is shown only for exemplary purposes. The preferred thickness <b>84</b> for outer liner <b>32</b> preferably is approximately 0.030-0.080 inches when a sheet metal material (e.g., Hastelloy X, HS 188, HA 230, etc.) is utilized. In this way, the material can be easily formed with corrugations <b>54</b>, provide the necessary stiffness, and reduce cost over previous liners.
[0024] With regard to the generation of a cooling flow along the hot (radially inner) side of outer liner <b>32</b>, it is preferred that a multihole cooling pattern be formed therein like those described in U.S. Pat. Nos. 5,181,379, 5,233,828, and 5,465,572 be employed (i.e., regarding size, formation, etc.). It will be understood that the pattern of cooling holes may vary depending on their location with respect to a corrugation <b>54</b>, the axial position along outer liner <b>32</b>, the radial position along outer liner <b>32</b>, the amplitude <b>56</b> for such corrugation, and the wavelength <b>58</b> for such corrugation. More specifically, a more dense multihole cooling pattern (spacing between cooling holes having a diameter of approximately 20 mil being approximately five diameters therebetween) is preferably utilized in those axial locations where the amplitude for a corrugation <b>54</b> is increased and/or the wavelength between adjacent corrugations is decreased. This stems from the need for more cooling air to be provided within a pocket <b>88</b> that is steeper and therefore less susceptible to the cooling flow from upstream outer liner end <b>42</b>. A more dense multihole cooling pattern is also preferably provided on an upstream side <b>92</b> of corrugations <b>54</b> and adjacent the radial locations of fuel/air mixers <b>38</b>. By contrast, a less dense multihole cooling pattern (spacing between cooling holes having a diameter of approximately 20 mil being approximately seven and one-half diameters therebetween) is preferably provided in those axial locations of outer liner <b>32</b> where the amplitude for a corrugation <b>54</b> is decreased and/or the wavelength between adjacent corrugations is increased. The less dense multihole cooling pattern is further preferred on a downstream side <b>94</b> of corrugations <b>54</b> and radial locations between adjacent fuel/air mixers <b>38</b>.
[0025] Having shown and described the preferred embodiment of the present invention, further adaptations of outer liner <b>32</b> for combustor <b>16</b> can be accomplished by appropriate modifications by one of ordinary skill in the art without departing from the scope of the invention. In particular, it will be understood that the concepts described and claimed herein could be utilized in inner liner <b>34</b> and still be compatible with the present invention. While inner liner <b>34</b> typically will not require corrugations to be formed therein in order to satisfy stiffness requirements, it would be particularly useful for inner liner <b>34</b> to have a flangeless configuration that can be riveted at its upstream and downstream ends like that described for outer liner <b>32</b> as to simplify manufacturing and reduce cost.
Contents4
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| Document | Office | Kind | Date |
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| 11964902 | United States of America | A | |
| US20020119649 | – | – | – |
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| EP1353127A2 | European Patent Office (EPO) | A2 | |
| US2003192320A1 | United States of America | A1 | |
| CN1450304A | China | A | |
| JP2003329245A | Japan | A | |
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| JP4256709B2 | Japan | B2 | |
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| EP1353127B1 | European Patent Office (EPO) | B1 | |
| DE60334172D1 | Germany | D1 |
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Numbers
- Publication, DOCDB
- 2003192320
- Publication, EPODOC
- US2003192320
- Application
- 10119649
- Application, DOCDB
- 11964902
- Application, EPODOC
- US20020119649
Titles
- English
- Annular one-piece corrugated liner for combustor of a gas turbine engine
Patent term adjustment
- A delay
- +35 daysthe office missed an examination deadline
- Net adjustment
- 35 days
Classification
- CPC, 2
- F23R3/50
- F23R3/002
- IPC, 4
- F23R3 00
- F23R3 42
- F23R3 50
- F23R3 52
- USPC, 2
- 060804000
- 060752000