Coil spring

The coil spring with optimized composition and microstructure addresses sag resistance issues by achieving high residual shear strain and fracture resistance, enhancing durability for automobile suspension applications.

JP2026017249APending Publication Date: 2026-02-04NHK SPRING CO LTD +1
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
JP2024118004
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-23
Publication Date
2026-02-04

AI Technical Summary

Technical Problem

Existing coil springs do not meet the stringent requirements for sag resistance at 1400 MPa necessary for automobile suspension springs.

Method used

A coil spring composition comprising specific amounts of C, Si, Mn, Cr, Cu, Ni, and Ti, with a balance of Fe and unavoidable impurities, and microstructural features such as fine carbides, achieving a residual shear strain of 8.5×10⁻⁴ after a 96-hour tightening test at 1400 MPa and 80°C, and a fracture time of 330 hours or more in a four-point bending test at 1500 MPa under JASO M609 CCT cycle.

Benefits of technology

The coil spring exhibits excellent resistance to settling and delayed fracture under high stress, with improved fatigue and corrosion resistance, suitable for automobile suspension springs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2026017249000001
    Figure 2026017249000001
  • Figure 2026017249000002
    Figure 2026017249000002
  • Figure 2026017249000003
    Figure 2026017249000003
Patent Text Reader

Abstract

To provide a coil spring excellent in settling resistance.SOLUTION: The coil spring according to the present invention contains C at a ratio of 0.30 mass% or more and 0.60 mass% or less, Si at 2.20 mass% or more and 2.80 mass% or less, Mn at 0.05 mass% or more and 1.50 mass% or less, Cr at 0.05 mass% or more and 1.00 mass% or less, Cu at 0.05 mass% or more and 1.00 mass% or less, Ni at 0.05 mass% or more and 1.00 mass% or less, and Ti at 0.01 mass% or more and 0.20 mass% or less, with the balance being Fe and an inevitable impurity, and has a residual shearing strain of 8.5 * 10-4 or less after a tightening test at a shearing stress of 1400MPa and a temperature of 80 °C for 96 hours.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a coil spring formed by winding a wire in a spiral shape. [Background technology]

[0002] In recent years, environmental issues have led to increasingly stringent demands for improved fuel economy in automobiles, resulting in ever stronger demands for smaller and lighter automobile parts. To meet this demand for smaller and lighter automobile parts, there is an increasing demand for products that can withstand higher stresses and have excellent resistance to fatigue, settling, and delayed fracture, for example, in the area of ​​coil spring parts such as suspension springs.

[0003] Spring steel with excellent durability and settling resistance contains, by weight, 0.35-0.55% C, 1.80-3.00% Si, 0.50-1.50% Mn, 0.50-3.00% Ni, 0.10-1.50% Cr, 0.01-0.05% Al, 0.010-0.025% N, with the remainder essentially consisting of Fe, and when quenched and tempered to a hardness of HRC55, has an impact value of 4.45 kgf / cm in a Charpy impact test. 2 Furthermore, the residual shear strain ΓR obtained in the sag test after forming the coil spring is 5.2×10 -4 The following spring steel has been proposed (for example, Patent Document 1). [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent No. 2839900 Summary of the Invention [Problem to be solved by the invention]

[0005] The technology in Patent Document 1 is 130 kgf / mm 2Although the sag resistance at 1400 MPa has been confirmed, it does not satisfy the sag resistance requirement at 1400 MPa currently required for automobile suspension springs.

[0006] The present invention has been made in view of the above, and has an object to provide a coil spring that is excellent in resistance to sag. [Means for solving the problem]

[0007] In order to solve the above-mentioned problems and achieve the objects, a coil spring according to the present invention contains C in an amount of 0.30 mass% or more and 0.60 mass% or less, Si in an amount of 2.20 mass% or more and 2.80 mass% or less, Mn in an amount of 0.05 mass% or more and 1.50 mass% or less, Cr in an amount of 0.05 mass% or more and 1.00 mass% or less, Cu in an amount of 0.05 mass% or more and 1.00 mass% or less, Ni in an amount of 0.05 mass% or more and 1.00 mass% or less, Ti in an amount of 0.01 mass% or more and 0.20 mass% or less, and the balance being Fe and unavoidable impurities, and wherein the coil spring has a residual shear strain of 8.5×10 after a tightening test at a shear stress of 1400 MPa, a temperature of 80°C, and a time of 96 hours. -4 The following is the result.

[0008] Furthermore, in the coil spring according to the present invention, in the above invention, the time to fracture in a four-point bending test in which a bending stress of 1500 MPa is applied under the CCT cycle of JASO M609 in a state of steel material of HRC55 is 330 hours or more. [Effects of the Invention]

[0009] The present invention has the effect of providing a coil spring that has excellent resistance to settling even under high stress. [Brief explanation of the drawings]

[0010] [Figure 1] FIG. 1 is a diagram illustrating the manufacturing process of hot springs and cold springs. [Figure 2] FIG. 2 is a diagram showing the relationship between stress and sag in a tightening test of a coil spring according to an embodiment of the present invention. [Figure 3]FIG. 3 is a diagram showing the results of a delayed fracture resistance test of the coil spring according to the embodiment of the present invention. [Figure 4] FIG. 4 is a TEM observation photograph of spring steel according to the prior art (Comparative Example 1). [Figure 5] FIG. 5 is a TEM observation photograph of spring steel according to the prior art (Comparative Example 2). [Figure 6] FIG. 6 is a TEM observation photograph of the spring steel according to the embodiment (Example 3) of the present invention. [Figure 7] FIG. 7 is a TEM observation photograph of the spring steel according to the embodiment (Example 4) of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0011] Hereinafter, embodiments for carrying out the present invention (hereinafter referred to as "embodiments") will be described with reference to the accompanying drawings. Note that the drawings are schematic, and the relationship between the thickness and width of each part, the thickness ratio of each part, etc. may differ from the actual ones, and the drawings may also include parts with different dimensional relationships and ratios.

[0012] (Embodiment) A coil spring according to the present invention contains C in an amount of 0.30 mass% or more and 0.60 mass% or less, Si in an amount of 2.20 mass% or more and 2.80 mass% or less, Mn in an amount of 0.05 mass% or more and 1.50 mass% or less, Cu in an amount of 0.05 mass% or more and 1.00 mass% or less, Ni in an amount of 0.05 mass% or more and 1.00 mass% or less, Ti in an amount of 0.01 mass% or more and 0.20 mass% or less, and the balance being Fe and inevitable impurities, and the coil spring has a residual shear strain of 8.5×10 after a shear stress of 1400 MPa, a temperature of 80°C, and a time of 96 hours. -4 The following is the result.

[0013] <Material ingredients> The coil spring according to the present invention contains C in a proportion of 0.30% by mass or more and 0.60% by mass or less. C contributes to improving the strength of the coil spring. If the C content is less than 0.30% by mass, the effect of improving strength is not sufficiently obtained, resulting in insufficient fatigue resistance and sag resistance. If the C content exceeds 0.60% by mass, toughness decreases and cracks become more likely to occur. From the above viewpoints, it is preferable that C be contained in a proportion of 0.44% by mass or more and 0.48% by mass or less.

[0014] The coil spring according to the present invention contains Si in a proportion of 2.20% by mass or more and 2.80% by mass or less. Si is effective in deoxidizing steel material and contributes to improving strength and temper softening resistance. If the Si content is less than 2.20% by mass, the above effects are not sufficiently obtained, and carbides generated during tempering become coarse. If the Si content exceeds 2.80% by mass, toughness decreases, cracking becomes more likely, and decarburization is promoted, resulting in a decrease in wire rod surface strength. Furthermore, by setting the Si content within the above range, the yield ratio is improved, so plastic deformation is less likely to occur and sag resistance is improved. From the above viewpoints, it is preferable that Si be contained in a proportion of 2.3% by mass or more and 2.5% by mass or less.

[0015] The coil spring according to the present invention contains Mn in a proportion of 0.05% by mass or more and 1.50% by mass or less. Mn contributes to improving hardenability. If the Mn content is less than 0.05% by mass, it becomes difficult to ensure sufficient hardenability, and the effect of fixing S (MnS formation), which is harmful to ductility and toughness, becomes poor. Furthermore, if the Mn content exceeds 1.50% by mass, ductility decreases, and cracks and surface scratches tend to occur. From the above viewpoints, it is preferable that the Mn content be 0.85% by mass or more and 1.15% by mass or less.

[0016] The coil spring according to the present invention contains 0.05% by mass or more and 1.00% by mass or less of Cr. Cr is effective in preventing decarburization, and contributes to improving strength and temper softening resistance, thereby improving fatigue resistance and corrosion resistance. It is also effective in improving sag resistance in warm conditions. If the Cr content is less than 0.05% by mass, the above effects cannot be fully achieved. If the Cr content exceeds 1.00% by mass, toughness decreases, and cracks and surface scratches tend to occur. From the above viewpoints, it is preferable that the Cr content be 0.35% by mass or more and 0.45% by mass or less.

[0017] The coil spring according to the present invention contains Cu in a proportion of 0.05% by mass or more and 1.00% by mass or less. Cu is effective in improving hardenability, and can improve fatigue strength and corrosion resistance by dissolving in ferrite. If the Cu content is less than 0.05% by mass, the above effects cannot be sufficiently obtained. If the Cu content exceeds 1.00% by mass, cracks may occur during hot working. From the above viewpoints, it is preferable that Cu be contained in a proportion of 0.20% by mass or more and 0.35% by mass or less.

[0018] The coil spring according to the present invention contains Ni in a proportion of 0.05% by mass or more and 1.00% by mass or less. Ni is effective in improving hardenability, suppressing the formation of carbides, and improving fatigue strength and corrosion resistance. If the Ni content is less than 0.05% by mass, the effect of improving hardenability becomes insufficient. If the Ni content exceeds 1.00% by mass, not only will cost be a problem, but the amount of retained austenite will increase, reducing fatigue life. From the above viewpoints, it is preferable that Ni be contained in a proportion of 0.20% by mass or more and 0.35% by mass or less.

[0019] The coil spring according to the present invention preferably contains Ti in a proportion of 0.01% by mass or more and 0.20% by mass or less. Ti combines with C and N to form carbides or nitrides, which act as hydrogen trapping sites, thereby suppressing hydrogen diffusion into the steel material, improving corrosion resistance and delayed fracture resistance, and improving strength and toughness through grain refinement and precipitation strengthening. If the Ti content is less than 0.01% by mass, the above effects cannot be fully achieved. Furthermore, if the Ti content exceeds 0.20% by mass, a large amount of TiN is formed, reducing fatigue strength. From the above viewpoints, the Ti content is preferably 0.080% by mass or more and 0.120% by mass or less.

[0020] The coil spring according to the present invention must contain C, Si, Mn, Cr, Cu, Ni, and Ti in the above-mentioned proportions, but may contain elements other than those mentioned above.The steel according to the present invention may contain, in addition to C, Si, Mn, Cr, Cu, Ni, and Ti, S in proportions of 0.025% by mass or less and P in proportions of 0.025% by mass or less.

[0021] S forms MnS in the steel material and improves machinability. If the S content exceeds 0.025% by mass, there is a risk that S will segregate at grain boundaries and reduce grain boundary strength, so the S content is preferably 0.025% by mass or less.

[0022] If the P content is high, it segregates at the austenite grain boundaries, reducing the grain boundary strength.The P content is preferably 0.025 mass % or less.

[0023] <Fine carbide> The coil spring according to the present invention has fine carbides such as titanium carbide and iron carbide. Figures 6 and 7 are transmission electron microscope (TEM) photographs of the steel material constituting the coil spring according to the embodiment of the present invention. As shown in Figures 6 and 7, the titanium carbide is spherical with a size of 10 to 50 nm, and the iron carbide is a fine carbide with a long edge of 1 nm or more and 100 nm or less. Refining the carbides enables dislocation pinning and the trapping of dissolved hydrogen, improving the sag resistance and delayed fracture resistance of the coil spring.

[0024] <Physical properties> The coil spring according to the present invention has a residual shear strain of 8.5 × 10 after a 96-hour tightening test at a compressive stress of 1400 MPa and a temperature of 80°C. -4 The hardness of the coil spring used in the tightening test was HRC54. Residual shear strain was measured by compressing the coil spring between flat plates at a specified pressure and holding it in that state at 80°C for 96 hours. Residual shear strain was calculated using the average value ΔP of the load loss at deflection rates of 30% and 60% using the following formula: γ=8DΔP / πGd3×100(%) (1) d: wire diameter, D: coil center diameter, G: modulus of transverse elasticity (nominal value according to JIS) Residual shear strain was calculated under different compressive stresses, and the residual shear strain at a compressive stress of 1400 MPa was calculated using an approximate formula.

[0025] The coil spring according to the present invention has a residual shear strain of 8.5 × 10 after a 96-hour tightening test at a stress of 1400 MPa and a temperature of 80°C. -4 In the coil spring according to the present invention, the residual shear strain after a 96-hour tightening test at a shear stress of 1400 MPa, a temperature of 80°C, and a shear strain of 8.0 × 10 -4 Preferably, it is 7.0 x 10 or less. -4 It is even more preferable that:

[0026] Furthermore, the coil spring according to the present invention preferably has a time to fracture of 330 hours or more in a four-point bending test in which a bending stress of 1500 MPa is applied under the JASO M609 CCT cycle when the steel is in an HRC55 state. The JASO M609 CCT cycle involves repeated cycles of salt spray (5% sodium chloride aqueous solution) at 35°C for 2 hours, followed by drying at 60°C for 4 hours at a relative humidity of 20-30%, and wetting at 50°C for 2 hours at a relative humidity of 95% or higher. Here, "HRC55 steel" refers to steel obtained by heating, quenching, and tempering raw steel without coiling, in the case of hot treatment, or by rapidly quenching and tempering raw steel to obtain HRC55, in the case of cold treatment.

[0027] The coil spring according to the present invention exhibits high resistance to delayed fracture by having a time to fracture of 330 hours or more in a four-point bending test in which a bending stress of 1500 MPa is applied under the CCT cycle of JASO M609 when the steel material is in the state of HRC55. It is more preferable that the coil spring according to the present invention has a time to fracture of 350 hours or more in a four-point bending test in which a bending stress of 1500 MPa is applied under the CCT cycle of JASO M609 when the steel material is in the state of HRC55.

[0028] <Manufacturing method> The coil spring according to the present invention can be manufactured by either hot treatment or cold treatment. Fig. 1 is a diagram illustrating the manufacturing processes of the hot spring and the cold spring. The coil spring according to the present invention can be manufactured by the hot treatment or cold treatment shown in Fig. 1 from a green material containing 0.30 to 0.60 mass% C, 2.20 to 2.80 mass% Si, 0.05 to 1.50 mass% Mn, 0.05 to 1.00 mass% Cu, 0.05 to 1.00 mass% Ni, and 0.01 to 0.20 mass% Ti, with the balance being Fe and unavoidable impurities.

[0029] Hot springs can be manufactured by heating and coiling raw material, followed by quenching and tempering, setting, shot peening, setting again, and painting.

[0030] Cold springs can be manufactured by rapid quenching and rapid tempering of raw material, followed by coiling, stress relief annealing, setting, shot peening, setting again, and painting.

[0031] The coil spring according to the present invention has excellent resistance to settling and delayed fracture under high stress, and therefore can be suitably used for automobile parts, such as suspension springs. [Example]

[0032] Example 1 Steel containing 0.46 mass% C, 2.50 mass% Si, 0.95 mass% Mn, 0.40 mass% Cr, 0.25 mass% Cu, 0.25 mass% Ni, and 0.09 mass% Ti was used, and after heating and coiling, it was quenched at 900°C or higher and tempered at 300 to 600°C, then set, shot peened, set again, and painted to produce a coil spring (hot treated, HRC54).

[0033] Example 2 Steel containing 0.48 mass% C, 2.30 mass% Si, 0.95 mass% Mn, 0.45 mass% Cr, 0.20 mass% Cu, 0.30 mass% Ni, and 0.09 mass% Ti was used, and after heating and coiling, it was quenched at 900°C or higher and tempered at 300 to 600°C, then set, shot peened, set again, and painted to produce a coil spring (hot treated, HRC54).

[0034] Example 3 A steel material containing 0.46 mass% C, 2.50 mass% Si, 0.95 mass% Mn, 0.40 mass% Cr, 0.25 mass% Cu, 0.25 mass% Ni, and 0.09 mass% Ti was used, and the steel was rapidly quenched at 900°C or higher, rapidly tempered at 300 to 600°C, coiled, stress relief annealed, set, shot peened, set again, and painted to produce a coil spring (cold treated, HRC54). In the present invention, rapid quenching and rapid tempering refer to quenching and tempering treatments in which the temperature is raised at a rate of 50°C / second or higher and the holding time is 10 seconds or less.

[0035] Example 4 Steel containing 0.48 mass% C, 2.30 mass% Si, 0.95 mass% Mn, 0.45 mass% Cr, 0.20 mass% Cu, 0.30 mass% Ni, and 0.09 mass% Ti was used, and after rapid quenching at 900°C or higher and rapid tempering at 300 to 600°C, the steel was coiled, stress relief annealed, set, shot peened, set again, and painted to produce a coil spring (cold treatment, HRC54).

[0036] (Comparative Example 1) Steel containing 0.55 mass% C, 1.40 mass% Si, 0.70 mass% Mn, and 0.70 mass% Cr was used, and after rapid quenching at 900°C or higher and rapid tempering at 300 to 600°C, the steel was coiled, stress relief annealed, set, shot peened, set again, and painted to produce a coil spring (cold treatment, HRC54).

[0037] (Comparative Example 2) A steel material containing 0.41 mass% C, 2.10 mass% Si, 0.93 mass% Mn, 0.36 mass% Cr, 0.26 mass% Cu, 0.24 mass% Ni, and 0.10 mass% Ti was used, and after rapid quenching at 900°C or higher and rapid tempering at 300 to 600°C, the steel was coiled, stress relief annealed, set, shot peened, set again, and painted to produce a coil spring (cold treatment, HRC54).

[0038] (Evaluation method) -Resistance to wear- The coil springs obtained in Examples 1 to 4 and Comparative Examples 1 and 2 were compressed and clamped between flat plates at a predetermined pressure, and held in this clamped state at 80°C for 96 hours. The residual shear strain was calculated using the average value ΔP of the load loss at deflection rates of 30% and 60% according to the following formula. γ=8DΔP / πGd3×100(%) (1) d: wire diameter, D: coil center diameter, G: modulus of transverse elasticity (nominal value according to JIS) The results are shown in Figure 2. The residual shear strain at a compressive stress of 1400 MPa was obtained by calculating an approximate formula from the residual shear strain at different compressive stresses. The settling resistance of Example 1 was 7.4 x 10 -4 , and Example 2 is 7.2 × 10 -4 , and Example 3 is 6.3 × 10 -4 , and Example 4 is 6.7 × 10 -4 , and Comparative Example 1 is 12.1 × 10 -4 , and Comparative Example 2 is 8.8 × 10 -4From the above, it can be seen that Comparative Examples 1 and 2 have Si contents outside the range of the present invention, and therefore have lower values ​​indicating sag resistance than the Examples.

[0039] -Resistance to delayed fracture- The steel materials (raw materials that had been rapidly quenched and rapidly tempered to HRC 55) produced in the manufacturing process of Examples 3 and 4 and Comparative Examples 1 and 2 were subjected to a four-point bending test in which a bending stress of 1500 MPa was applied under the CCT cycle of JASO M609, and the time to fracture was measured. The test was performed with n=2. The results are shown in Figure 3 (values ​​are average values). The time to rupture was 267 hours for Example 3, 401.5 hours for Example 4, 137 hours for Comparative Example 1, and 282 hours for Comparative Example 2.

[0040] -Fine carbide- The structures of the steel materials (steel materials in which raw materials were rapidly quenched and rapidly tempered to HRC55) produced in Examples 3 and 4 and Comparative Examples 1 and 2 were observed using a transmission electron microscope (200 kV-field emission transmission electron microscope, JEM-2100F (manufactured by JEOL Ltd.)) to observe fine carbides. Fig. 4 is a TEM photograph of Comparative Example 1, Fig. 5 is that of Comparative Example 2, Fig. 6 is that of Example 3, and Fig. 7 is that of Example 4. In Examples 3 and 4, as shown in Figs. 6 and 7, spherical titanium carbides of 10 to 50 nm and iron carbides of several tens of nm to 200 nm in length were observed. On the other hand, iron carbides of several tens of nm to 300 nm in length were observed in Comparative Example 1. Furthermore, in Comparative Example 2, spherical titanium carbides of 100 to 200 nm and iron carbides of several tens of nm to 200 nm in length were observed.

[0041] The coil spring of the present invention contains C in an amount of 0.30 mass% or more and 0.60 mass% or less, Si in an amount of 2.20 mass% or more and 2.80 mass% or less, Mn in an amount of 0.05 mass% or more and 1.50 mass% or less, Cr in an amount of 0.05 mass% or more and 1.00 mass% or less, Cu in an amount of 0.05 mass% or more and 1.00 mass% or less, Ni in an amount of 0.05 mass% or more and 1.00 mass% or less, Ti in an amount of 0.01 mass% or more and 0.20 mass% or less, and the balance being Fe and unavoidable impurities. The coil spring of the present invention has fine titanium carbides and iron carbides, and these carbides are capable of pinning dislocations and trapping dissolved hydrogen, and it has been confirmed that the coil spring has excellent resistance to sag and delayed fracture.

Claims

1. A coil spring containing C in an amount of 0.30 mass% or more and 0.60 mass% or less, Si in an amount of 2.20 mass% or more and 2.80 mass% or less, Mn in an amount of 0.05 mass% or more and 1.50 mass% or less, Cr in an amount of 0.05 mass% or more and 1.00 mass% or less, Cu in an amount of 0.05 mass% or more and 1.00 mass% or less, Ni in an amount of 0.05 mass% or more and 1.00 mass% or less, Ti in an amount of 0.01 mass% or more and 0.20 mass% or less, and the balance being Fe and unavoidable impurities, After a clamping test at a shear stress of 1400 MPa, a temperature of 80°C, and a time of 96 hours, the residual shear strain was 8.5 x 10 -4 Below is a coil spring.

2. 2. The coil spring according to claim 1, wherein the time to fracture in a four-point bending test in which a bending stress of 1500 MPa is applied under a JASO M609 CCT cycle in a state of HRC 55 steel material is 330 hours or more.

Citation Information

Patent Citations

  • Spring steel with excellent durability and sag resistance

    JP2839900B2