METHOD FOR PRODUCING A SUBASSEMBLY HAVING FORM-FITTING CONNECTION AND SUBASSEMBLY HAVING FORM-FITTING CONNECTION WITH PRECIPITATION-HARDENED FORM-FITTING REGION
20200002796 ยท 2020-01-02
Assignee
Inventors
- Julian VON LAUTZ (Muenchen, DE)
- Michael Weiss (Dachau, DE)
- Markus SCHLEMMER (Mainburg, DE)
- Kamil MATUSZEWSKI (Karlsfeld, DE)
- Anna KIRZINGER (Muenchen, DE)
Cpc classification
F16B19/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B19/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/411
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16B19/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to a method for producing a subassembly having a form-fitting connection with a precipitation-hardened form-fitting region as well as a corresponding subassembly, wherein at least two components of a subassembly are provided that are connected together in form-fitting manner, wherein each of the components has a form-fitting region that can come in contact with at least one other form-fitting region of the other component to be connected, in order to produce a form-fitting connection by limiting at least one degree of freedom of movement of the connected components relative to one another, wherein at least one of the components has at least one deformation form-fitting region for providing the form-fitting connection that is reshaped for producing the form-fitting connection after arranging the components to be connected relative to one another, in order to produce the form-fitting connection.
Claims
1. A method for producing a subassembly having a form-fitting connection with a precipitation-hardened form-fitting region, in which at least two components of a subassembly are provided, which are connected together in form-fitting manner, wherein each of the components has a form-fitting region that can come in contact with at least one other form-fitting region of the other component to be connected in order to produce a form-fitting connection by limiting at least one degree of freedom of movement of the connected components to one another, wherein at least one of the components has at least one deformation form-fitting region for providing the form-fitting connection that is reshaped for producing the form-fitting connection after arranging the components to be connected relative to one another, in order to produce the form-fitting connection, wherein the at least one deformation form-fitting region is formed from a material that can be hardened by formation of precipitations, wherein the deformation form-fitting region is provided in an unhardened state or is brought to an unhardened state by solution annealing and subsequent quenching, wherein the at least one component with the at least one deformation form-fitting region in the unhardened state of the deformation form-fitting region is arranged relative to the at least one other component to be connected, and the at least one deformation form-fitting region is reshaped for forming a form-fitting connection, wherein, after the reshaping of the deformation form-fitting region, the deformation form-fitting region is subjected to an aging heat treatment, in which the deformation form-fitting region is hardened by formation of precipitations.
2. The method according to claim 1, wherein, in order to carry out the aging heat treatment, the deformation form-fitting region is locally heated or the component with the deformation form-fitting region or the subassembly with the connected components is heated.
3. The method according to claim 1, wherein the aging heat treatment takes place in a locally limited manner by an inductive heating and/or an energy-rich radiation.
4. The method according to claim 1, wherein the aging heat treatment takes place during operation or use of the subassembly.
5. The method according to claim 1, wherein the subassembly comprises at least two or three components, wherein one component is a rivet by which two other components are connected, or wherein one component is a pin having at least one depression or at least one elevation, configured as an annular circumferential depression or an annular circumferential elevation, and a corresponding component is a crimping element.
6. The method according to claim 1, wherein the component with the deformation form-fitting region is a locking plate for a blade arrangement in a disk of a turbomachine.
7. The method according to claim 5, wherein the rivet has at least one deformation form-fitting regions at the ends of the rivet, or the crimping sleeve has a deformation form-fitting region in the area of a cylinder surface of the sleeve, or the locking plate has at least one deformation form-fitting regions at the ends of the locking plate.
8. The method according to claim 1, wherein the reshaping of the deformation form-fitting region takes place by cold forming.
9. The method according to claim 1, wherein the deformation form-fitting region or the component having the deformation form-fitting region is made of a precipitation-hardenable, nickel-based alloy or a precipitation-hardenable cobalt-based material.
10. The method according to claim 1, wherein the solution annealing treatment of the deformation form-fitting region made of a nickel-based superalloy takes place at temperatures of 900 C. to 1200 C., for 0.5 to 5 h.
11. The method according to claim 1, wherein the quenching in water or oil or in air takes place after the solution-annealing treatment.
12. The method according to claim 1, wherein the aging heat treatment of the subassembly with a deformation form-fitting region made of a nickel-based superalloy takes place at temperatures of 550 C. to 850 C., for 1 to 15 h.
13. The method according to claim 1, wherein the subassembly has at least two components that are connected to one another in form-fitting manner, wherein each of the components has a form-fitting region that can come in contact with at least one other form-fitting region of the other component to be connected, in order to produce a form-fitting connection by limiting at least one degree of freedom of movement of the connected components relative to one another, at least one component of which has a precipitation-hardened form-fitting region.
14. The method according to claim 1, wherein the subassembly has a form-fitting connection with a precipitation-hardenable form-fitting region, comprising at least two components that are connected together in form-fitting manner, wherein each of the components has a form-fitting region that can come in contact with at least one other form-fitting region of the other component to be connected, in order to produce a form-fitting connection by limiting at least one degree of freedom of movement of the connected components to one another, wherein at least one of the components has at least one deformation form-fitting region for providing the form-fitting connection that is reshaped for producing the form-fitting connection after arranging the components to be connected relative to one another, in order to produce the form-fitting connection, wherein the at least one deformation form-fitting region is formed from a material that can be hardened by formation of precipitations, wherein the deformation form-fitting region is provided in the unhardened state and, during operation or when using the subassembly, is subjected to a temperature loading that corresponds to a precipitation heat treatment, so that precipitations are formed in the deformation form-fitting region.
15. The method according to claim 13, wherein a component has at least one form-fitting region for connection to another structure for the formation of a subassembly connected in form-fitting manner, in which the form-fitting region is composed of a precipitation-hardenable alloy.
16. The method according to claim 15, wherein the component is a rivet or a crimping sleeve or a locking plate.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
[0027] In a purely schematic manner, in the appended drawings,
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DESCRIPTION OF THE INVENTION
[0034] Further advantages, characteristics and features of the present invention will be clarified in the following detailed description of the examples of embodiment. Of course, the invention is not limited to these embodiment examples.
[0035] In a purely schematic illustration,
[0036] The rivet 3 in the embodiment example shown has the shape of a cylindrical rod and has two deformation form-fitting regions 4 and 5 at its axial ends, which are reshaped in the production of the rivet connection, so that a form-fitting connection is formed that holds together the components 1 and 2.
[0037] This situation after the reshaping is shown in
[0038] Instead of the shape of the rivet 3 shown in the embodiment example of
[0039] According to one embodiment example according to the invention, the rivet 3 is formed from a precipitation-hardenable material, wherein, for example, a nickel-based superalloy can be selected, which can be hardened by intermetallic precipitations in the form of Ni.sub.3(Al, Ti, Nb) precipitations, the so-called phases, and/or by carbides. A typical nickel-based superalloy that can be employed for a rivet according to the invention is marketed under the trade name Inconel IN718, and has a chemical composition of 0.04 at. % carbon, 19 at. % chromium, 3 at. % molybdenum, 52.5 at. % nickel, 0.9 at. % aluminum, 0.1 at. % copper, 5.1 at. % niobium, 0.9% titanium, and the remainder of iron along with unavoidable contaminants.
[0040] The rivet 3 made of a corresponding precipitation-hardenable alloy such as Inconel 718 is inserted in the solution-annealed state into the opening passing through the components 1, 2, and reshaped in the solution-annealed state. The solution annealing can be conducted for Inconel 718 in the temperature range of 940 C. to 1065 C., for example at 980 C., for 1 hour. After the solution annealing, the rivet 3 is cooled in water or oil or in air, and then can be cold reshaped in the solution-annealed state for the formation of the rivet connection in the deformation form-fitting regions 4 and 5 at the axial ends of the rivet 3.
[0041] After the reshaping of the deformation form-fitting regions 4, 5 to the reshaped rivet heads 6, 7, the riveted structure composed of the components 1, 2 and the rivet 3 are subjected to an aging heat treatment, which can take place at a temperature of 700 C., for example, for 2 hours. During this time, there occurs aging of precipitations, for example, for the precipitation of phases in the case of the Inconel 718 alloy. The precipitations formed during the aging heat treatment endow the rivet 3 with a high strength, particularly also high strength at high temperatures. After the aging heat treatment, the production of the rivet connection is terminated.
[0042] Another example of a subassembly according to the invention and the production thereof is shown in
[0043] Another embodiment example is shown in
[0044] In order to securely hold the rotating blade 20 in the uptake groove 27 in the axial direction (referred to the axis of rotation of the disk), a locking plate 21, the ends of which are bent upward after introducing the blade root 29 into the uptake groove 27, is inserted in the groove base 28 of the uptake groove 27 (see
[0045]
[0046] Although the present invention has been described in detail on the basis of the embodiment examples, it is obvious to the person skilled in the art that the invention is not limited to these embodiment examples, but rather that modifications are possible in a way such that individual features are omitted or other kinds of combinations of features can be produced without departing from the protective scope of the appended claims. In particular, the present disclosure encompasses all combinations of the individual features shown in the different examples of embodiment, so that individual features that are described only in conjunction with one embodiment example can also be utilized in other embodiment examples, or combinations of individual features that are not explicitly shown can also be utilized.