The invention relates to mechanical engineering, particularly to automotive leaf springs.
An automotive leaf spring is known (See patent RU #2213280) that consists of several spring leafs of identical width and different length with a constant or variable profile, are produced from low hardenability (LH) steel subjected to through-surface hardening (TSH). As a result of thermal treatment, each spring leaf had a non-homogenous cross section microstructure: a 52-60 HRC hardness martensite in the surface layer and a 25-47 HRC hardness troostite-sorbite structure in the core.
A positive technical outcome was achieved because this leaf spring showed better bench and field test results compared to commercially produced leaf springs. The latter consist of leafs that are made from alloyed spring steels and subjected to traditional thermal treatment—oil quenching with medium tempering at 400-550° C. to produce a homogenous martensite-microstructure cross section with 40-50 HRC hardness, followed by shot blasting of the surface.
The performance requirements for leaf springs manufactured in Germany, USA and other western countries are much more stringent as compared to the Russian Federation. In order to meet these performance requirements leaf springs are manufactured to higher and tighter hardness ranges. For example, in a number of cases the hardness range is 46-50 HRC or 48-52 HRC, and the leaf bench load is 800±600 N/mm2, while in the Russian Federation it is 500±300 N/mm2 (See patent RU #2213280). Testing of 11-13 mm thick LH steel leaf plates subjected to TS Hand low tempering (per patent RU #2213280) showed that, at higher loads, in some cases the leafs did not pass the verification criterion of 150,000 cycles.
In addition, occasional failures of individual LH steel leafs and entire leaf spring assemblies subjected to TSH and low tempering occurred as a result of bulldozing of assembled leaf springs in the through central hole or the central indentation in the blind hole. Failures were caused by bigger brittleness of this area due to high hardness of the continuously martensite structure surface (56-62 HRC).
The purpose of this invention is to develop a new automotive leaf spring that consists of low hardenability (LH) or specified hardenability (SH) steel leafs that were subjected to TSH and have even higher reliability and durability.
The technical result of the invention is achieved by its following distinctive features:
Elimination of another defect mentioned above, i.e. occasional failure of the entire leaf spring or its part along the central zone (the hole or its vicinity) during static bulldozing of assembled leaf springs or overloading during operation is also a technical solution achieved by this invention. These breakages result from accumulation of local stress concentrators in the hole zone and presence of a brittle martensite structure on the hole I.D. or tapered central indentation. Limiting the continuous martensitic hardening zone and preventing it from spreading to the hole zone and its adjoining area is an effective means to reduce brittleness and avoid breakages during static and fatigue loading.
For example, special plugs were used to prevent the quenching fluid from entering the Ø13 mm central hole itself and the adjoining Ø30 mm flat area from both sides. The microstructure of these surfaces was a troosto-sorbite mixture with martensite inclusions, i.e. partial martensite structure penetration in the hole area had occurred. But these local hardened sections that were formed due to gaps between the protective plugs and spring leaf surfaces did not affect the subsequent test results because the local microplastic deformation during spring leaf bulldozing occurred in areas adjacent to plastic non-martensite structures that resulted in relaxation of local stresses caused by external forces. During the trial binding of all the spring leafs together with the help a bolt placed in the central hole or special binding fasteners, the external load in this zone is sharply reduced and presents no danger of destruction in future.
Static and cyclic test results of a prototype batch of springs with leafs made from LH steel subjected to TSH, with areas of restricted hardening in the vicinity of the leaf spring central hole, turned out to be positive: not a single leaf spring being tested broke under static load and at fatigue loading until the nominal number of cycles was completed, and not a single leaf broke in the central hole when the permissible loads were exceeded.
Non-availability of main characteristics of the steel used, namely, LH (SH) steel ideal critical hardening diameter and carbon content depending on the spring leaf thickness constitutes the main shortcoming of the known published materials.
This invention contain specific limiting values of the LH and SH steel ideal critical diameter (DIcr.) and carbon content depending on the thickness of constant and variable profile spring leafs. Non-availability of these main characteristics is the shortcoming of the known published materials.
For example, based on thermophysical calculations for leafs with a constant cross section profile and thickness H (mm), DIcr, min. is 0.6 H, mm, but not less than 6.0 mm, while DIcr max is 1.2 H, mm, i.e. DIcr. Is (0.6-1.2) H, mm, which ensures the δ=(0.1-0.22) H harden layer depth. Table 1 shows permissible DIcr. Values of the harden layer depth δ with respect to the constant-profile leaf thickness H. The carbon content in steel is 0.4-0.8%.
The ideal critical hardening diameter for constant cross section profile leafs whose thickness H is less than 8 mm is: DIcr.>6
Various optimal designs have been developed for variable cross section profile leafs that are eligible for TSH.
In this case, the maximum bending stress is σbend.=6Pl/bh2=const, where:
P is the support reaction (const);
/ is the length of the arm of force P;
h is a variable value equal to the leaf thickness over length l;
L0 is the distance from the leaf end (end reaction point) to the fixed-end (const);
b is the leaf width (const); H0, h0 are the biggest and smallest leaf thicknesses (const).
By substituting L0 for l and H0 for h in the formula, we get:
σbend.=6PL0/bH02=const;
By equating two expressions, we get h/H0=√(l/L0)
There are five zones here, three of which are confined to straight lines:
With h0/H0>0.65, the TSH method may practically be applicable, and, as it approaches h0/H0=1, the spring leaf will have a constant profile.
Thus, in case of variable profile leafs, minimum thickness h0 is the limiting parameter for thermophysical calculations.
With DIcr, min.=0.95 h0 (mm), DIcr, max=1.2 h0, the harden layer depth is:
For zones III: h0=(0.45-0.55) H0, δ=(0.15-0.22) h0 or δ=(0.07-0.12) H0, DIcr,=(0.95-1.2) h0=(0.4-0.65) H0
For zones III: h0=(0.55-0.65) H0, δ=(0.15-0.22) h0 or δ=(0.08-0.145) H0, DIcr,=(0.95-1.2) h0=(0.5-0.75) H0
Table 2 shows permissible ideal critical hardening diameters DIcr, of steel with 0.4-0.8% C depending on the thickness variation—from minimum h0(mm) to maximum H0 (mm) with the most optimal variable cross section profile ratio h0/H0=0.5.
Therefore, the TSH method is applicable for hardening of spring leafs thicker than 8 mm.
For variable profile leafs, with the minimum thickness of less than 8 mm and maximum more than 8 mm, i.e. h0<8 mm, H0=(8-16) mm, DIcr,=(6-10) mm, C=0.2-0.4%.
An important distinctive feature of this invention is the specific dependence of two main LH (SH) steel parameters, i.e. its carbon content (% C) and ideal critical diameter DIcr., on the leaf thickness H(h0). In this case, the permissible nominal carbon content of a specific steel with narrow tolerances (±0.05% or ±0.025%) is selected from broad limits (0.2-0.8% C). For constant and variable cross section profile leafs, permissible ideal critical diameter DIcr, values are also selected from broad limits—(6-60 mm) and 7-30 mm), respectively. Within the framework of Russian Federation patents #2450060, bul. #13, Oct. 5, 2012; and #2450079, bul. #13, Oct. 5, 2012, with the same DIcr, steel chemical elements other than carbon have no impact.
A qualitatively low solution with regard to thermal strengthening of constant and variable cross section spring leafs is a combination of TSH and thermochemical treatment (TCT)—carburization (C) or high temperature carbonitriding (CN), that makes it possible to:—practically completely eliminate spring leaf surface decarburization to the matrix that had occurred during rolling; carbon content in steel is 0.2-0.4%; in this case, the maximum carbon content in the martensite-structure surface layer should not exceed 0.8%, while the minimum carbon content should be more than 0.2% higher than that in the matrix that has a martensite, troosto-martensite, troostite structure (depending on the leaf thickness);
| Number | Date | Country | |
|---|---|---|---|
| 62253749 | Nov 2015 | US |