PREFORMING METHOD FOR HIGH-STRENGTH STEEL VARIABLE-DIAMETER TUBULAR PART
20230278091 · 2023-09-07
Inventors
- Guannan CHU (Weihai City, CN)
- Lei SUN (Weihai City, CN)
- WENCAI XIE (WEIHAI CITY, CN)
- CUNSHENG ZHANG (WEIHAI CITY, CN)
- Anying YUAN (Weihai City, CN)
- GANG FANG (WEIHAI CITY, CN)
- QIN YANG (WEIHAI CITY, CN)
Cpc classification
B21D26/041
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A preforming method for a high-strength steel variable-diameter tubular part is provided, which belongs to the technical field of metal forming process. The preforming method for a high-strength steel variable-diameter tubular part includes: selecting a tubular blank; and preparing a tubular blank forming mold, where the tubular blank forming mold includes a preforming mold and a final forming mold; sealing and pressurizing the tubular blank; heating the tubular blank by using electrodes; preforming the tubular part at a constant temperature; maintaining a temperature T1 and moving the preformed tubular part to the final forming mold;finally forming the tubular part. Through two steps of operation of preforming and final forming, and maintaining a temperature during moving the tubular blank between the two steps, so that the conversion of intrametallic structure between the two steps is improved, and the performance of the tubular part is improved.
Claims
1. A preforming method for a high-strength steel variable-diameter tubular part, comprising: selecting a tubular blank; and preparing a tubular blank forming mold, wherein the tubular blank forming mold comprises a preforming mold and a final forming mold; sealing and pressurizing the tubular blank; heating the tubular blank by using electrodes; preforming the tubular part at a constant temperature, wherein performing the tubular part comprises heating the tubular blank to a temperature T; enabling the temperature T to be larger than or equal to 300° C. and smaller than or equal to 1200° C.; maintaining the temperature T of the tubular blank for 5-20 s, then closing the preforming mold; compressing the tubular blank; and opening the preforming mold after the tubular blank is compressed; maintaining a temperature T1 and moving the preformed tubular part to the final forming mold, wherein maintaining the temperature T1 and moving the preformed tubular part to the final forming mold comprises continuously maintaining the temperature T1 of the preformed tubular part for 5-20 s, enabling the temperature T1 to be larger than or equal to 700° C. and smaller than or equal to 1300° C., and then moving the preformed tubular part to the final forming mold; and finally forming the tubular part.
2. The preforming method for a high-strength steel variable-diameter tubular part according to claim 1, wherein sealing and pressurizing the tubular blank comprises: sealing two ends of the tubular blank, and inflating a cavity of the tubular blank to enable a pressure of the cavity to a pressure P, wherein the pressure P is larger than or equal to 0.1 MPa and smaller than or equal to 2 MPa.
3. The preforming method for a high-strength steel variable-diameter tubular part according to claim 2, wherein, sealing and pressurizing the tubular blank is performed by using fluid pressurization.
4. The preforming method for a high-strength steel variable-diameter tubular part according to claim 1, wherein, heating the tubular blank by using electrodes comprises: connecting two ends of the tubular blank respectively with two of the electrodes of a power supply, and heating the tubular blank by electric current.
5. The preforming method for a high-strength steel variable-diameter tubular part according to claim 1, wherein, preforming the tubular part at a constant temperature comprises: after the preforming mold is opened, unsealing two ends of the tubular blank.
6. The preforming method for a high-strength steel variable-diameter tubular part according to claim 1, wherein, finally forming the tubular part comprises: sealing two ends of the preformed tubular part in a moving process of the preformed tubular part or after the moving process is finished; pressurizing a cavity of the preformed tubular part to enable a pressure of the cavity of the preformed tubular prat to a pressure of 2-20 MPa after the preforming mold begins to be in contact with the preformed tubular part; closing the final forming mold within 10 s, and maintaining the pressure of 2-20 MPa for 5-30 s.
7. The preforming method for a high-strength steel variable-diameter tubular part according to claim 6, wherein, after maintaining the pressure of 2-20 MPa for 5-30 s, releasing the pressure of the cavity of the preformed tubular part, opening the final forming mold to take out the tubular part that is formed, and cleaning a cavity of the final forming mold by using cooling water or low-temperature high-pressure gas.
8. The preforming method for a high-strength steel variable-diameter tubular part according to claim 1, wherein, dividing the tubular blank forming mold into different sections combined by an upper mold and a lower mold according to radial section shapes and circumferences of different axial sections of the variable-diameter tubular part, and matching a cavity formed by closing the upper mold and the lower mold with a corresponding one of the axial sections of the tubular part.
9. The preforming method for a high-strength steel variable-diameter tubular part according to claim 8, wherein, a side wall of a mold cavity of the lower mold is provided with a straight wall section A, a side wall of a mold cavity of the upper mold is provided with a straight wall section B, and an included angle between the straight wall section A and the straight wall section B is larger than 45°.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] Reference signs: 1 upper mold; 2 lower mold; 3 straight wall section A; 4 straight wall section B; 10 tubular part; 11 tubular blank; 12 section taken in the A-A direction; 13 section taken in the B-B direction; 13 section taken in the C-C direction.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] The following embodiments, in conjunction with the attached figures, are intended only to illustrate the technical solutions recorded in claims and are not intended to limit the protection scope of the claims.
[0031] Referring to
[0032] The step 3 of sealing and pressurizing the tubular blank includes: sealing two ends of the tubular blank, and inflating a cavity of the tubular blank to enable a pressure of the cavity to a pressure P, wherein the pressure P is larger than or equal to 0.1 MPa and smaller than or equal to 2 MPa;
[0033] The step 4 of heating the tubular blank by using electrodes includes: connecting two ends of the tubular blank respectively with two of the electrodes of a power supply, and heating the tubular blank by electric current;
[0034] The step 5 of performing the tubular part includes: heating the tubular blank to a temperature T; enabling the temperature T to be larger than or equal to 300° C. and smaller than or equal to 1200° C.; maintaining the temperature T of the tubular blank for 5-20 s, then closing the preforming mold; compressing the tubular blank; and opening the preforming mold after the tubular blank is compressed;
[0035] The step 6 of maintaining a temperature T1 and moving the preformed tubular part to the final forming mold, where maintaining the temperature T1 and moving the preformed tubular part to the final forming mold includes: continuously maintaining the temperature T1 of the preformed tubular part for 5-20 s, enabling the temperature T1 to be larger than or equal to 700° C. and smaller than or equal to 1300° C., and then moving the preformed tubular part to the final forming mold; and
[0036] The step 7 for final forming; the two ends of the preformed tubular blank are sealed in the moving process thereof or after the moving process thereof is finished, the cavity of the preformed tubular blank is pressurized to the pressure of 2-20 MPa after the final forming mold begins to be in contact with the preformed tubular blank, the final forming mold closes within 10 s, and the pressure of 2-20 MPa is maintained for 5-30 s, and then the pressure of the cavity is released, the final forming mold is opened to take out the formed tubular part, and a cavity of the final forming mold is cleaned by using cooling water or low-temperature high-pressure gas.
[0037] Fluid pressurization may be used for pressurizing the sealed cavity of the preformed tubular blank.
[0038] Moreover, the step 5 of preforming the tubular part at a constant temperature includes: after the preforming mold is opened, unsealing two ends of the tubular blank.
[0039] The tubular blank forming mold is divided into different sections combined by an upper mold and a lower mold according to radial section shapes and circumferences of different axial sections of the variable-diameter tubular part, and a cavity formed by closing the upper mold and the lower mold is matched with a corresponding one of the axial sections of the tubular part. The side wall of the mold cavity of the lower mold is provided with a straight wall section A, the side wall of the mold cavity of the upper mold is provided with a straight wall section B, and the included angle between the straight wall section A and the straight wall section B is larger than 45°.
[0040] Hereinafter, a specific tubular part is taken as an example, in order to describe how to process the variable-diameter tubular part in the method in the present disclosure.
[0041] The tubular part as shown in
[0042] The tubular blank 11 is selected, and the section circumferences of all parts of the tubular blank are equal to the circumference C1.
[0043] The tubular blank forming mold is prepared, taking a section 14 of the preforming mold, referring to
[0044] In the step 3, the two ends of the tubular blank 11 are sealed, the pressure of the cavity of the tubular blank 11 is inflated to the pressure P, and the pressure P is larger than or equal to 0.1 MPa and smaller than or equal to 2 MPa.
[0045] In the step 4, the two ends of the tubular blank 11 are respectively connected with two electrodes of a power supply, and the tubular part is heated by the electric current.
[0046] In the step 5, after the tubular blank 11 is heated to the temperature T, the temperature T is larger than or equal to 300° C. and smaller than or equal to 1200° C., and the temperature T of the tubular blank 11 is maintained for 5-20 s, then the preforming mold is closed, and the circumference of the corresponding section of the tubular blank 11 is compressed. The material is easy to be compressed at a high temperature, the interior of the tubular blank is supported by the air with the pressure P, and the air pressure is increased during the process of maintaining the temperature T under the influence of the temperature rise of the tubular blank, so that wrinkling caused when the circumference is compressed is avoided. By utilizing the preforming mold, the circumference of the section 12 taken in the A-A direction is compressed into the circumference C1, and the circumference of the section 13 taken in the B-B direction is compressed into the circumference C2. The unsealing is performed, the internal pressure is released, and the preforming mold is opened.
[0047] In the step 6, the temperature T1 of the tubular blank 11 is continuously maintained for 5-20 s, the temperature T1 is larger than or equal to 700° C. and smaller than or equal to 1300° C., and then the tubular blank is moved to the final forming mold. The functions realized by maintaining the temperature T1 are as follows, One function is to avoid the temperature drop in the preformed area, and the other function is capable of completing the austenitization conversion.
[0048] In the step 7, the final forming of the preformed tubular blank is conducted. The cavity of the final forming mold is the same as that of the tubular part. The ends of the preformed tubular part are sealed in the moving process of the preformed tubular part or after the moving process thereof is finished, the pressure of the cavity of the preformed tubular part is pressurized to the pressure of 2-20 MPa after the final forming mold begins to be in contact with the preformed tubular part, the final forming mold is closed within 10 s, and the pressure of 2-20 MPa is maintained for 5-30 s, so that martensite conversion is completed.
[0049] In the step 8, the pressure of the cavity of the preformed tubular part is released, the final forming mold is opened to take out the formed tubular part, and the cavity of the final forming mold is cleaned by using cooling water or low-temperature high-pressure gas.
[0050] The foregoing descriptions are merely exemplary embodiments of the present disclosure, and are not intended to limit the present disclosure. Any modification, equivalent replacement, or improvement made within the spirit and principle of the present disclosure shall fall within the protection scope of the present disclosure.