CUTTING TOOL WITH CUTTING EDGE AND METHOD FOR MANUFACTURING SAME
20190283262 ยท 2019-09-19
Assignee
- HANGZHOU UNITED TOOLS CO., LTD. (Hangzhou City, Zhejiang Province, CN)
- Hangzhou Great Star Industrial Co., Ltd. (Hangzhou City, Zhejiang Province, CN)
Inventors
Cpc classification
C21D1/18
CHEMISTRY; METALLURGY
International classification
Abstract
The present invention discloses a cutting tool with a cutting edge, including a base and a cutting edge, where the cutting edge includes a laser cyclic heat treatment hardened layer, and the hardness of the hardened layer is higher than the hardness of the base. The present invention also discloses a method for manufacturing the foregoing tool.
Claims
1. A cutting tool with a cutting edge, comprising a base and a cutting edge, wherein the cutting edge comprises a laser cyclic heat treatment hardened layer, and the hardness of the hardened layer is higher than the hardness of the base.
2. The cutting tool with a cutting edge according to claim 1, wherein the hardness of the laser cyclic heat treatment hardened layer is 62-68 HRC.
3. The cutting tool with a cutting edge according to claim 1, wherein the thickness of the laser cyclic heat treatment hardened layer is 0.30-1.80 mm.
4. The cutting tool with a cutting edge according to claim 1, wherein a transition layer is located between the laser cyclic heat treatment hardened layer and the base, and the thickness of the transition layer is 0.20-0.60 mm.
5. The cutting tool with a cutting edge according to claim 1, wherein the cutting tool with a cutting edge is a utility blade or a tool with a utility blade.
6. The cutting tool with a cutting edge according to claim 5, wherein the hardness of the laser cyclic heat treatment hardened layer is 65-66 HRC.
7. The cutting tool with a cutting edge according to claim 5, wherein the thickness of the laser cyclic heat treatment hardened layer is 0.40-0.45 mm.
8. The cutting tool with a cutting edge according to claim 5, wherein a transition layer is located between the laser cyclic heat treatment hardened layer and the base, and the thickness of the transition layer is 0.25-0.35 mm.
9. The cutting tool with a cutting edge according to claim 5, wherein the base is made of high carbon tool steel.
10. The cutting tool with a cutting edge according to claim 1, wherein the cutting tool with a cutting edge is a tool with a stainless steel cutting edge, comprising a folding knife, scissors, pliers, a cutting knife, a shovel blade, a single bevel knife, and a dagger.
11. The cutting tool with a cutting edge according to claim 1, wherein the cutting tool with a cutting edge is a pliers-type tool, comprising long flat nose pliers, diagonal cutting pliers, and wire pliers.
12. The cutting tool with a cutting edge according to claim 11, wherein the base is made of carbon steel or alloy steel.
13. A method for manufacturing a cutting tool with a cutting edge, comprising a step of performing laser cyclic quenching on a cutting edge.
14. The method for manufacturing a cutting tool with a cutting edge according to claim 13, wherein before the performing laser cyclic quenching on a cutting edge, the method further comprises a step of performing integral heat treatment on the cutting tool with a cutting edge, and the integral heat treatment comprises integral quenching and integral tempering.
15. The method for manufacturing a cutting tool with a cutting edge according to claim 13, wherein after the laser cyclic quenching, the method further comprises a step of performing stress relief treatment on the cutting tool with a cutting edge.
16. The method for manufacturing a cutting tool with a cutting edge according to claim 15, wherein a temperature of the stress relief treatment is 100-180 C., and a heat preservation time is 2-6 hours.
17. The method for manufacturing a cutting tool with a cutting edge according to claim 13, wherein the cutting tool with a cutting edge is a utility blade or a tool with a utility blade, the laser cyclic quenching is performed one or more times, and a relative movement speed of a laser head of a laser configured to perform the laser cyclic quenching is 1.0-30.0 m/min.
18. The method for manufacturing a cutting tool with a cutting edge according to claim 13, wherein the cutting tool with a cutting edge is a tool with a stainless steel cutting edge, the laser cyclic quenching is performed one or more times, and a relative movement speed of a laser head of a laser configured to perform the laser cyclic quenching is 2.0-20.0 mm/s.
19. The method for manufacturing a cutting tool with a cutting edge according to claim 13, wherein the cutting tool with a cutting edge is a pliers-type tool, the laser cyclic quenching is performed two or more than two times, and a relative movement speed of a laser head of a laser configured to perform the laser cyclic quenching is 2.0-20.0 mm/s.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0035] For a person skilled in the art related to the present invention, heat treatment, quenching, tempering, high-frequency quenching, and laser cyclic quenching, and other technical content and terms thereof in the present invention are all known and determined.
[0036] Grain refinement is one of effective ways for strengthening a metal material. Laser cyclic quenching is rapidly heating a metal material to above a temperature AC1. Austenite grains in a heated area may rapidly nucleate at an original grain boundary, and before a new grain is grown up, the grains are transformed into a martensite structure through rapid cooling, so that a relatively small martensite grain structure is obtained. Rapid heating and rapid cooling are repeatedly performed on the metal material one or more times, to perform cyclic quenching shown in
[0037] The present invention is applicable to a cutting tool with a cutting edge. The following describes specific implementations and examples that are implemented according to the present invention.
[0038]
[0039] Then, to relieve structural stress and make performance of the utility blade more stable, stress-relief low-temperature tempering treatment is performed on the utility blade. A used stress relief device may be a protective gas continuous furnace (for example, corresponding to the utility blade), or a protective gas periodic box-type furnace or multipurpose furnace (for example, corresponding to a stainless steel tool or a carbon steel/alloy steel pliers-type product). A temperature of the stress relief treatment is 100-180 C., and a heat preservation time is 2-6 hours.
[0040] The present invention is also applicable to a tool with a stainless steel cutting edge, including a folding knife including a base 3 and a cutting edge 4 shown in
[0041] The present invention is also applicable to a pliers-type tool, including diagonal cutting pliers including a base 13 and a cutting edge 14 shown in
[0042] Further, it is found that in the foregoing embodiments, a transition layer exists between the formed laser cyclic quenching hardened layer and the material of the base of the tool, as shown in
[0043]
[0044] In the embodiment of the utility blade, after the laser cyclic quenching is performed, the hardness of the cutting edge of the utility blade is 66-67 HRC. However, the hardness of the base is 62 HRC. The hardness of the formed laser cyclic quenching hardened layer of the utility blade is 4-5 HRC higher than the hardness of the base, and the cutting life is prolonged by 2-3 times. Compared with the grain size number 7-9 obtained after an existing process treatment, the grain size number of the cutting edge of the utility blade according to the embodiment of the present invention reaches 10-11.
[0045] Specific preferred embodiments of the present invention are described above in detail. It should be understood that a person of ordinary skill in the art may made various modifications and changes according to the idea of the present invention without creative effort. Therefore, any technical solution that can be obtained according to the idea of the present invention through logic analysis, reasoning, or limited experiments should be within the protection scope determined by the claims.