METHODS OF FORMING COMPONENTS UTILIZING ULTRA-HIGH STRENGTH STEEL AND COMPONENTS FORMED THEREBY
Components and methods for forming components utilizing ultra-high strength steel are provided. A first method includes the steps of providing a blank of ultra-high strength steel, cold forming the blank into an unfinished component, and applying a coating to the outer surface of the unfinished component that is adapted to inhibit the formation of a ferrite soft layer on the component during heating thereof. A second method includes the steps of providing a blank of heavy gauge thickness ultra-high strength steel, cold forming the blank into a finished component, heating the finished component and quenching the component without the use of tooling.
This application claims the benefit of U.S. Provisional Patent Application Ser. No. 62/459,262 filed on Feb. 15, 2017, and titled “Methods of Forming Components Utilizing Ultra-High Strength Steel and Components Formed Thereby”, the entire disclosure of which is hereby incorporated by reference.
FIELDThe present disclosure relates generally to methods of forming components from ultra-high strength steel, such as boron steel, and to components formed by such methods.
BACKGROUNDUltra-high strength steel is currently used in building construction and static automotive structures, e.g., vehicle bodies and frames. The use of ultra-high strength steel generally allows the weights of these structures to be reduced. Additionally, in automotive structures, the ultra-high strength steel enables the absorption of impact energy and minimizes intrusion into occupant seating areas. Although ultra-high strength steel can be made extremely strong, other properties such as formability, weldability, and impact toughness may be negatively affected, resulting in structures which may be more prone to cracking and fracture.
Power transmission components for automotive vehicles, such as clutch assemblies having clutch plates within a clutch housing and clutch hub are well-known. Such clutch housings have a generally cylindrical or cup-shaped body and an open end. The cylindrical or cup-shaped body is formed from a sheet metal blank and has a plurality of spline teeth formed thereon. The clutch plates fit within the clutch housing and engage the spline teeth. The clutch hub can also be a formed sheet metal component and is typically connected to a transmission shaft.
Powertrain components including clutch housings and hubs are commonly made of aluminum or high strength low alloy steel (HSLA) rather than ultra-high strength steel, such as boron steel. Aluminum or HSLA steel is used primarily because of its formability. Specifically, these types of materials are high strength materials which can achieve a specific geometric dimension or shape and have a specific tolerance required. Consequently, aluminum or HSLA may be used in powertrain components including parts of an automatic transmission easily, efficiently, and at a low-cost.
Typically, components such as reaction shells, clutch housings, and hubs made of aluminum or HSLA are formed using one or a combination of cold-forming or stamping processes and thermal heat treatments to obtain the desired shape, performance, and strength characteristics. Additionally, the structures such as the plurality of spline teeth of the clutch housing may be formed easily by using a series of rollers. Similar processes also may be used to form other powertrain components such as planetary carriers used in differentials and various covers used in a vehicle powertrain.
Ultra-high strength steel lacks formability using the conventional cold-forming technologies discussed above. Use of conventional cold-forming technologies with ultra-high strength steel typically does not result in the formation of required geometric dimensions and tolerances. However, there is a desire by manufacturers and suppliers to utilize ultra-high strength steel in forming automotive components such as power transmission components for similar reasons as those discussed above when used in static applications of automotive structures (e.g. reduced component weight and improved absorption of impact energy).
As such, a need exists for components, such as clutch housings and hubs, to be formed from ultra-high strength steel, such as boron steel. Additionally, there is a need for an improved method for forming the same.
SUMMARYThis section provides a general summary of the inventive concepts associated with the present disclosure and is not intended to represent a comprehensive disclosure of its full scope or all of its features, object, aspects and advantages. Components formed with ultra-high strength steel and methods of forming these components from ultra-high strength steel are provided.
In accordance with one aspect of the present disclosure, a method for forming a component from ultra-high strength steel includes pre-forming, such as via cold-forming, a blank of ultra-high strength steel, such as a flat blank of ultra-high strength steel, into a predetermined shape. The method also includes applying a coating to the outer surface and/or other exposed areas of the component, wherein the coating is configured to eliminate or reduce the formation of a ferrite soft layer that can be formed as a result of scale/decarburization during heat treatments of the component. The application of the coating therefore increases the strength of the component by preventing the formation of the ferrite soft layer.
In accordance with another aspect of present disclosure, a further method for forming a component utilizing ultra-high strength steel is provided. The method includes the step of providing a blank of heavy gauge, ultra-high strength steel and forming the blank into a component. Next, the method includes the steps of heating the component. The method proceeds with quenching the component without the use of tooling. The use of tooling is not required for thicker walled components according to the subject method because the thicker material undergoes minimal distortion during cooling and such components are typically machined to final critical tolerances. Utilizing the subject method provides a quicker quenching process which leads to decreased overall cycle time
Other advantages of the present disclosure will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
Detailed examples of the present disclosure are disclosed herein; however, it is to be understood that the disclosed examples are merely exemplary and may be embodied in various and alternative forms. It is not intended that these examples illustrate and describe all possible forms of the disclosure. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the disclosure.
As those of ordinary skill in the art will understand various features of the present disclosure as illustrated and described with reference to any of the Figures may be combined with features illustrated in one or more other Figures to produce examples of the present disclosure that are not explicitly illustrated or described. The combinations of features illustrated provide representative examples for typical applications. However, various combinations and modifications of the features consistent with the teachings of the present disclosure may be desired for particular applications or implementations.
Example embodiments of components formed from ultra-high strength steel constructed in accordance with the present disclosure will now be more fully described. These example embodiments are primarily directed to powertrain components. Moreover, each of the exemplary embodiments is provided so that this disclosure is thorough and fully conveys the scope of the inventive concepts, features and advantages to those skilled in the art. To this end, numerous specific details are set forth to provide a thorough understanding of each of the embodiments associated with the present disclosure. However, as will be apparent to those skilled in the art, not all specific details described herein need to be employed, the example embodiments may be embodied in many different forms, and that neither should be construed or interpreted to limit the scope of the disclosure.
With respect to
With respect to
With respect to
The method discussed above may also include, but is not limited to cold-forming the clutch housing 10 without a plurality of spline teeth 16, heat treating the unfinished shape of the clutch housing 10 using localized induction heating, and forming and sizing the plurality of spline teeth 16 using the quenching die. Alternatively, the method may include pre-forming/cold-forming the clutch housing 10 with a plurality of spline teeth 16, heating the unfinished shape of the clutch housing 10 in an inert environment, and sizing and finalizing the shape of the housing 10 in the quenching die. Similarly, planetary gear carriers and other components may be partially or completely cold formed and then heated using either localized or entire part heating.
In addition to the clutch housing 10 disclosed above, other embodiments of components from ultra-high strength steel constructed in accordance with the present disclosure are described in more detail below.
In each of the aforementioned embodiments, the components may be formed from 22MnB5 steel, however, it should be understood that the amount of boron (B5-B50) may be selected depending on the type of component or strength desired. Additionally, the amount of other materials which comprise the ultra-high strength steel, such as carbon, may cause variation in the martensitic percentage and hardness after quenching. During the heat treatment, the heating temperature is approximately 850-950 degrees C. More specifically, the target heating temperature for 22MnB5 steel is 900 degrees C., however, the heating temperature may be increased as the amount of boron is increased. As described above, the heat treating may be partially or completely localized. The heating method may be induction or by other techniques. When it is desirable to localize strength in one particular area of a component, the heat treatment may be localized to that area. In other instances, localized heat treatment may be used for sections of a component having a thicker cross section.
During the quenching step that may be used in forming each of the aforementioned embodiments, the quench press/die defines the final shape of the part. The release temperature may range between approximately 150-250 degrees C., with a preferred target temperature of 200 degrees C. The components generally remain in the quench press/die for approximately 6-20 seconds depending on the cross sectional thickness and desired strength.
In general, materials having a strength of approximately 1000 Mpa will crack or spring back during cold forming, therefore the aforementioned methods are advantageous when forming such high strength materials. Additionally, due to a reduction of cross section, the geometry of components formed with heat assisted calibration (HAC) methods disclosed herein may be more complex (i.e. ribs). Consequently, the manufacturing of some components (e.g. planetary carrier described in the fifth embodiment above) that is not possible using cold forming is made possible with HAC processes.
According to another aspect of the present disclosure, a method is provided for applying a coating to the outer surfaces and other exposed areas of the components prior to heat treating. Applying such a coating eliminates or reduces the formation of a ferrite soft layer on the component that can be formed as a result of scale/decarburization during heat treatments of the component which is known to affect the strength of the component in its final form.
More particularly, the coating is applied to areas such as windows, holes or cutouts of components, such as those found on the components illustrated in
With respect to
It should be appreciated that applying a coating in accordance with the subject method allows the mechanical properties of the component to be tailored by applying the coating to predetermined regions. More particularly, the coating may be applied to a first portion of the unfinished component, while a second portion of the unfinished component remains uncoated. As illustrated in
In view of the foregoing, it should be appreciated that an advantage of utilizing the subject coating method include the prevention of the formation of a ferrite soft layer on the component, which reduces thickness and improves the fatigue strength of the component.
According to a further aspect of the disclosure, a method is provided wherein thicker walled, heavy gauge components are directly quenched, i.e., without the use of tooling, after being heat treated to provide a more cost effective process. More particularly, as discussed in the foregoing, thinner walled components can be held with tooling during quenching to reduce distortion. Such tooling is not required for thicker walled components according to the subject method because the thicker material undergoes minimal distortion during cooling and because thicker walled components are typically machined to final critical tolerances. Utilizing the subject method provides a quicker quenching process which leads to decreased overall cycle time.
Thicker walled, heavy gauge components according to the subject method have a wall thickness between approximately 3.5 to 6.5 mm. Such components may include, but are not limited to, a CVT plunger 520, 1520 such as that presented in
Carbon 0.08 to 0.33%;
Manganese 0.8 to 1.50%;
Boron 0.0005 to 0.005%;
Silicon 0.50% max;
Phosphorous 0.030% max;
Sulfar 0025% max; and
Chromium 0.35% max.
With respect to
It should be appreciated that the subject method allows the mechanical properties of components to be tailored for specific purposes and for the overall weight of the component to be reduced. As illustrated in
While examples of the disclosure have been illustrated and described, it is not intended that these examples illustrate and describe all possible forms of the disclosure. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the disclosure. Additionally, the features and various implementing embodiments may be combined to form further examples of the disclosure.
Claims
1. A method of forming a component utilizing ultra-high strength steel including the steps of:
- providing a blank of ultra-high strength steel;
- cold forming the blank into an unfinished component;
- applying a coating to the outer surface of the unfinished component, wherein the coating is adapted to inhibit the formation of a ferrite soft layer on the unfinished component during heating of the component;
- heating the unfinished component; and
- quenching the unfinished component.
2. The method as set forth in claim 1 wherein the outer surface of the unfinished component includes at least a first portion and a second portion, and wherein applying a coating to the outer surface of the unfinished component includes applying the coating to only the first portion of the outer surface of the component.
3. The method as set forth in claim 2 wherein the first portion of the outer surface of the unfinished component extends about an opening defined by the outer surface such that the coating is applied about the opening.
4. The method as set forth in claim 1 wherein the coating is applied to at least substantially the entire outer surface of the unfinished component.
5. The method as set forth in claim 1 wherein the coating includes at least one of a nickel electrolyte coating, a high-temperature graphite oil, or a water-based ceramic coating.
6. The method as set forth in claim 1 wherein the component is at least one of a differential housing, a CVT plunger, inner diameter splines of a clutch housing, and external gears.
7. A method of forming a component utilizing ultra-high strength steel including the steps of:
- providing a blank of heavy gauge thickness ultra-high strength steel;
- cold forming the blank into a finished component;
- heating the finished component; and
- quenching the finished component without the use of tooling.
8. The method as set forth in claim 7 wherein a thickness of the blank is between approximately 3.5 and 6.5 mm.
9. The method as set forth in claim 7 wherein the blank has the composition of:
- carbon 0.08 to 0.33 wt %;
- manganese 0.8 to 1.50 wt %;
- boron 0.0005 to 0.005 wt %;
- silicon less than or equal to 0.50 wt %;
- phosphorous less than or equal to 0.030 wt %;
- sulfar less than or equal to 0.0025 wt %; and
- chromium less than or equal to 0.35 wt %.
10. The method as set forth in claim 7 wherein the component is at least one of a differential housing, a CVT plunger, inner diameter splines of a clutch housing, and external gears.
11. The method as set forth in claim 7 wherein heating the finished component includes heating the component with one of an electric furnace, a gas furnace, or an induction heat source.
12. The method as set forth in claim 7 wherein heating the finished component includes heating the finished component to 930 degrees Celsius.
13. The method as set forth in claim 7 wherein quenching the finished component includes quenching only a portion of the finished component.
14. The method as set forth in claim 7 wherein quenching the finished component includes quenching the entire finished component.
15. A method of forming a powertrain component for a vehicle utilizing ultra-high strength steel including the steps of:
- providing a blank of ultra-high strength steel;
- cold forming the blank into an unfinished powertrain component;
- applying a coating to the outer surface of the unfinished powertrain component, wherein the coating is adapted to inhibit the formation of a ferrite soft layer on the unfinished component during heating of the component;
- heating the unfinished powertrain component; and
- quenching the unfinished powertrain component.
16. The method as set forth in claim 15 wherein the outer surface of the unfinished powertrain component includes at least a first portion and a second portion, and wherein applying a coating to the outer surface of the unfinished powertrain component includes applying the coating to only the first portion of the outer surface of the component.
17. The method as set forth in claim 6 wherein the first portion of the outer surface of the unfinished powertrain component extends about an opening defined by the outer surface such that the coating is applied about the opening.
18. The method as set forth in claim 15 wherein the coating is applied to at least substantially the entire outer surface of the unfinished powertrain component.
19. The method as set forth in claim 15 wherein the coating includes at least one of a nickel electrolyte coating, a high-temperature graphite oil, or a water-based ceramic coating.
20. The method as set forth in claim 15 wherein the unfinished powertrain component is at least one of a differential housing, a CVT plunger, inner diameter splines of a clutch housing, and external gears.
Type: Application
Filed: Jan 19, 2018
Publication Date: Aug 16, 2018
Inventors: John Sabo (Caledon), Sokol Sulaj (Etobicoke), David Dorigo (Oakville)
Application Number: 15/875,042