CRYOGENIC TURBOPUMP FEED LINE
20230160501 · 2023-05-25
Assignee
Inventors
- Davide DURI (Forêt de Vernon, FR)
- Charles-Hubert BACHELET (Forêt de Vernon, FR)
- Alexandre BRIAL (Forêt de Vernon, FR)
Cpc classification
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
F16L9/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L9/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L9/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Cryogenic turbopump feed line, comprising a main channel able to transport a cryogenic fluid, a plurality of secondary channels parallel to and disposed around the main channel in which the plurality of secondary channels are disposed on the periphery of an external perimeter of the main channel.
Claims
1. A cryogenic turbopump feed line comprising: a main channel able to transport a cryogenic fluid, a plurality of secondary channels parallel to and disposed on the periphery of an external perimeter of the main channel and are discontinuous.
2. The cryogenic turbopump feed line according to claim 1, wherein the plurality of secondary channels are disposed around the main channel.
3. The cryogenic turbopump feed line according to claim 1, wherein the plurality of secondary channels are disposed partially around the main channel.
4. The feed line according to claim 1, wherein in cross-section, at least one portion of a contour passing through the centers of the plurality of secondary channels has a ratio between the length of the at least one portion of the contour not crossing a secondary channel to the total length of the at least one portion of the contour less than 40%.
5. The feed line according to claim 1, having connecting radial orifices between the primary and secondary channels.
6. The feed line according to claim 1, wherein the plurality of secondary channels is opening out onto at least one of an upstream end and a downstream end of the line.
7. The feed line according to claim 1, wherein the main channel and the plurality of secondary channels are separated by a strip of thickness less than 3 mm.
8. The feed line according to claim 1, wherein the secondary channels have a substantially circular cross-section.
9. The feed line according to claim 1, wherein a cross-section of the main channel has a surface between 50 mm.sup.2 and 700 mm.sup.2, perpendicularly to a flow direction.
10. The feed line according to claim 1, wherein a gap between two successive secondary channels in the vicinity of an element of a contour of the main channel with no ridges is less than 3 mm.
11. The feed line according to claim 1, wherein the main channel has a substantially circular cross-section.
12. The feed line according to claim 1, wherein the main channel has a cross-section in the shape of a water drop, with a base having substantially the shape of an arc of a circle with two ends from which two joining segments extend.
13. The feed line according to claim 1, wherein an insulating material is provided in the secondary channels.
14. The feed line according to claim 13 wherein the insulating material is a special epoxy resin for cryogenic applications.
15. A method for manufacturing the feed line according to claim 1, having at least one manufacturing step by an additive manufacturing method.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0039] The attached drawings are schematic and are intended primarily to illustrate the principles of the disclosure.
[0040] In these drawings, from one figure to another, identical elements (or portions of elements) are identified by the same reference signs. In addition, elements (or portions of elements) belonging to a different exemplary embodiment but having a similar function are identified in the figures by numerical references incremented by 100, 200, 300, 400, 500.
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
[0052]
[0053]
[0054]
[0055]
[0056]
DESCRIPTION OF THE EMBODIMENTS
[0057] In the present disclosure, the terms “axial”, “radial”, “internal”, “external” and their derivatives are defined in relation to the main axis of the line; by “axial plane” it is meant a plane passing through the main axis of the line and by “radial plane” it is meant a plane perpendicular to this main axis; finally, the terms “upstream” and “downstream” are defined in relation to the fluid circulation direction in the line.
[0058]
[0059] The operating temperature of the turbopumps 30 is close to the temperature of the propellants, and is for example of approximately 20 K (Kelvin) for liquid dihydrogen (LH2), 110 K for methane (CH4) and 90 K for oxygen.
[0060] A schematic representation according to a perspective view of the line 20 is represented in
[0061] The line 20 can be made of an alloy suitable for cryogenic uses, for example Inconel 718. The material of the line 20 is hereinafter referred to as “the material of the line” or “the interstitial material”.
[0062] The line 20 has a main axis A-A extending in the main direction of the line 20.
[0063] The line 20 comprises a main channel 21, in which the propellant can circulate.
[0064] A plurality of secondary channels 22 are disposed around the main channel 21, parallel to the main channel 21.
[0065] For example, the secondary channels can be 10 to 30 in number.
[0066] It is advantageous for a cross-section of the line 20 to be identical along the main axis A-A, for example to limit head losses and/or thermal conduction to the outside of the line 20. However, the present invention is not limited to this embodiment, and the shapes and dimensions may vary, for example in the presence of a bend.
[0067]
[0068] The main channel 21 and the plurality of secondary channels 22 have cross-sections of substantially circular shapes. The secondary channels 22 are disposed on the periphery of the main channel 21.
[0069] Particularly, in a cross-sectional view, the centers of the secondary channels are disposed on a circle concentric with the circular external contour of the main channel 21, the circle being represented in broken lines.
[0070] The main channel 21 has a diameter D, and the secondary channels have a diameter d, smaller than the diameter D.
[0071] The disposition of the secondary channels 22 around an external perimeter of the main channel 21 is such that the secondary channels 22 do not intersect the main channel 21. Thus, a distance can be defined between a point on a periphery of a secondary channel 22 and a point on a periphery of the main channel 2. Particularly, this distance reaches a minimum between the point of a secondary channel 22 closest to the center of the main channel 21 and the point of the directly opposite secondary channel 22, located on the same radial plane, corresponding to the distance a represented in
[0072] In other words, in the present case of circular channels 21, 22 and seen in a cross-section, a ring is defined between the external contour of the main channel 21 and the smallest circle concentric and tangent to the secondary channels 22, this ring having a thickness a.
[0073] The circle passing through the centers of the secondary channels therefore has a perimeter L such that:
L=2π(D/2+a+d/2) [Math. 1]
[0074] The secondary channels 22 are disjoint, and the circle passing through the centers of the secondary channels 22 successively crosses the secondary channels 22 and the interstitial material of the line 20. A ratio R is defined, corresponding to the ratio of the perimeter of this circle which crosses the interstitial material of the line 20. In other words, the ratio R is the ratio of the total sum of the distances b between the contours of the secondary channels 22 while following the circle, divided by the perimeter L of the circle. This gap b between two successive secondary channels 22 is less than 3 mm, preferably less than 2 mm.
[0075] In the case where the number of secondary channels is greater than 10, the distance b between two secondary channels 22 while following the circle is comparable to the distance between the perimeters of the secondary channels 22.
[0076] The dimensions of the line are such that the ratio R is less than 40%, preferably less than 25%.
[0077] The thermal conductance through the interstitial material of the line 20 being approximately two orders of magnitude greater than the conductance through the secondary channels comprising a gas mixture, this reduction in the ratio R allows reducing the thermal conductance between the main channel 21 and the exterior of the line 20. Particularly, due to the orders of magnitudes of conductance, the thermal conductance between the main channel 21 and the exterior of the line 20 is comparable to the thermal conductance through the interstitial material of the line 20. Therefore, the thermal conductance is proportional to the ratio R, so that a ratio R of 25% divides the thermal resistance of the line 20 by 4, which allows reducing the mass to be chilled down, thus reducing the duration of chilldown as well as the amount of propellant consumed for the chilldown.
[0078] The cross-section of the main channel 21 has a surface between 50 mm.sup.2 and 700 mm.sup.2, preferably between 75 mm.sup.2 and 450 mm.sup.2. Particularly, in the case of a circular section, this corresponds to a diameter of the main channel 21 approximately comprised between 8 mm and 30 mm, preferably between 10 mm and 24 mm.
[0079] The thickness a of the ring is less than 3 mm, preferably less than 2 mm.
[0080] Three examples of implementation of the secondary channels will be described in relation to
[0081]
[0082] As represented in
[0083]
[0084] These three examplary implementations are compatible, and can be set out independently of each other.
[0085] Particularly, if at least one of the three examplary implementations is used, the propellant can fill the secondary channels 22. Such an example of an axial section of a line 20 is described in relation to
[0086]
[0087] Subsequently, as represented in
[0088] Particularly, in the example of
[0089] The secondary channels 22 can also be filled with an insulating material, for example a special epoxy resin for cryogenic applications.
[0090] A second embodiment of a line is presented in relation to
[0091]
[0092] Secondary circular-shaped channels 122 are disposed so that their centers are located on a contour having a shape similar to the shape of the main channel 121.
[0093] The ratio R is then defined along the contour passing through the centers of the secondary channels 122, while a cross-section of the line 120 has a strip of thickness a between the main 121 and secondary 122 channels.
[0094] The line 20, 120 can be implemented by additive manufacturing methods.
[0095] Particularly, the drop shape allows facilitating the implementation by powder bed fusion methods, while the communications between the channels 121, 122 as well as the opening out secondary channels 122 allow facilitating the discharge of residual powders.
[0096] In the first and second embodiments of the line, the secondary channels 22, 122 have been represented all around the external perimeter of the main channel 21, 121.
[0097] A third embodiment of the line will be described in relation to
[0098] The third embodiment is a modification of the first embodiment, and the common elements will not be described again.
[0099] The line 220 of the third embodiment differs from the line 20 of the first embodiment in that the secondary channels 222 are disposed on the periphery of an external perimeter of the main channel, on a partial contour around the main channel.
[0100] As represented in
[0101] On the partial contour presenting the secondary channels 222, the secondary channels 222 can then play the role of thermal insulation of the main channel 221 as described above. This thermal insulation function is maintained over the entire partial contour of the secondary channels 222.
[0102] Such a disposition allows locally adjusting the thermomechanical performances of the line, which will be described in more detail in relation to the embodiments of
[0103] It is understood that the definition of the length L of the contour and the definition of the ratio R defined above for an entire contour can be generalized to the disposition of secondary channels 222 on a partial contour.
[0104] The portion of a contour considered is then the portion of a contour located between the centers of the secondary channels 222 located at the ends of the partial contour, and passing through the centers of the secondary channels 222 located between the centers of the secondary channels 222 of the ends of the partial contour.
[0105] The length L of the partial contour is represented in the sectional views of
[0106]
[0107] It will be noted that the alternatives of
[0108] Therefore, the dimensions a, b, d, and D being identical, the ratio R is the same for the alternatives of
[0109] It is understood that a line can have secondary channels disposed over more than one portion of a contour. Two distinct and non-adjacent portions of a contour are characterized when two successive secondary channels have a gap at least greater than three times, preferably twice the gap b between two successive secondary channels of the same portion of a contour. In the case where the gaps b are different, the criterion of distinction between two distinct and non-adjacent portions of a contour can be based on the minimum gap, the maximum gap, the median gap or the average gap between two successive secondary channels.
[0110] It is understood that the definition of the contour length L and the definition of the associated ratio R can also be generalized to a line having secondary channels formed on several distinct and non-adjacent portions of a contour, by defining a partial contour length and a partial ratio for each of the partial contours of the line.
[0111] One example of line having a plurality of partial contours will be described in relation to
[0112] It is understood that the definition of the contour length L and the definition of the associated ratio R can also be generalized to a line having secondary channels formed on several distinct and non-adjacent portions of a contour, by defining a partial contour length and a partial ratio for each of the partial contours of the line.
[0113]
[0114] In the fourth embodiment of
[0115] Due to the presence of the volume 330, the thermal inertia is locally increased in the vicinity of the main channel 321 of the line 320, which leads to a greater consumption of propellant for the chilldown of the line 320. Furthermore, the presence of secondary channels 322 in the vicinity of the interfaces between the portions of the line 320 external to the volume 330 and those integrated into the volume 330 can weaken the line 320 subjected to high thermomechanical stresses during the chilldown phase.
[0116] In response to this increase in the thermal inertia, secondary channels 322 can then be positioned on a partial contour, corresponding to positions located in the vicinity of the volume 330.
[0117] This disposition of secondary channels 322 allows improving the thermal performances of the line 320 in the vicinity of the volume 330, while maintaining satisfactory mechanical performances by not having secondary channels 322 at positions of the line 320 away from the interfaces between the portions of the line 320 external to the volume 330 and the portions of the line 320 integrated into the volume 330.
[0118] Such a disposition then allows improving the thermal behavior of the line 320 by locally adapting the chilldown duration. This also allows homogenizing the chilldown of the line 320.
[0119] In the fifth embodiment of
[0120] Similarly to the fourth embodiment of
[0121] The volumes 330, 430 are described as additions of material external or internal to the line 320, 420, resulting in an increase in the thermal inertia in the vicinity of the main channel 321, 421. It will be understood that the volumes 330, 430 designate by extension any element causing a degradation of the thermal performances of the line, comprising but not limited to a local change of material; or the presence of a heat source such as an electronic cable.
[0122] The sixth embodiment of
[0123] The addition of an additional partial contour allows in particular improving the thermal behavior of the line 520 at a position away from the volume 530.
[0124] As for the embodiment of
[0125] The absence of secondary channels 522 at these positions then allows mechanically reinforcing the line 520 there.
[0126] Although the present invention has been described with reference to specific exemplary embodiments, it is obvious that modifications and changes can be made to these examples without departing from the general scope of the invention as defined by the claims. Particularly, individual characteristics of the different illustrated/mentioned embodiments can be combined in additional embodiments. Accordingly, the description and the drawings should be considered in an illustrative rather than restrictive sense.
[0127] In particular, the characteristics described above are not limited to a circular-shaped line, but are also compatible with any other line shape, for example with a line in the shape of a water drop as described above.
[0128] Furthermore, the sixth embodiment of