Method for quick gas bulging forming of hot metal sheet
10710139 ยท 2020-07-14
Assignee
Inventors
- Shijian Yuan (Harbin, CN)
- Zhubin He (Harbin, CN)
- Xiaobo Fan (Harbin, CN)
- Mingqu Ding (Harbin, CN)
- Guofeng Han (Harbin, CN)
Cpc classification
B21D26/025
PERFORMING OPERATIONS; TRANSPORTING
B21D53/045
PERFORMING OPERATIONS; TRANSPORTING
B21D26/027
PERFORMING OPERATIONS; TRANSPORTING
B21D26/055
PERFORMING OPERATIONS; TRANSPORTING
International classification
B21D26/027
PERFORMING OPERATIONS; TRANSPORTING
B21D26/025
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for quick forming of a metal sheet. In an embodiment, the method includes the following steps: placing a metal sheet blank to be formed on a forming mold; introducing high-pressure gases with equal pressures simultaneously into upper and lower enclosed cavities respectively formed by the metal sheet blank and the sealing mold, and the metal sheet blank and the forming mold; heating the metal sheet blank to a preset forming temperature condition; quickly releasing the high-pressure gas from the cavity formed by the metal sheet blank and the forming mold, such that the metal sheet blank bulges; and discharging the gas from the cavity formed by the metal sheet blank and the sealing mold, and opening the mold to obtain a formed metal sheet part.
Claims
1. A method for gas bulging forming of a hot metal sheet, wherein the method is implemented according to the following steps: step one, placing a metal sheet blank to be formed on a forming mold, and closing a sealing mold to form enclosed cavities on upper and lower surfaces of the metal sheet blank; step two, introducing high-pressure gases with equal pressures simultaneously into upper and lower enclosed cavities respectively formed by the metal sheet blank and the sealing mold, and the metal sheet blank and the forming mold; step three, heating the metal sheet blank to a preset forming temperature condition; step four, quickly releasing the high-pressure gas from the enclosed cavity formed by the metal sheet blank and the forming mold, such that the metal sheet blank bulges quickly under the action of the high-pressure gas in the upper cavity and thus fits into the mold cavity of the forming mold; and step five, discharging the gas from the cavity formed by the metal sheet blank and the sealing mold, and opening the sealing mold to obtain a formed metal sheet part.
2. The method of claim 1, wherein the heating of the metal sheet blank in step three is conducted through contact heating using a hot steel plate.
3. The method of claim 2, wherein in step four, multiple non-uniformly distributed vent holes are opened at the bottom of the forming mold, a first vent hole is located on the left side of the lower cavity, and a second vent hole and a third vent hole are located on the right side of the lower cavity.
4. The method of claim 3, wherein in step four, a gas regulating valve is further provided on the multiple vent holes opened at the bottom of the forming mold, and a deflation speed of each vent hole can be adjusted by the respective gas regulating valve.
5. The method of claim 1, wherein in step four, multiple non-uniformly distributed vent holes are opened at the bottom of the forming mold, a first vent hole is located on the left side of the lower cavity, and a second vent hole and a third vent hole are located on the right side of the lower cavity.
6. The method of claim 5, wherein in step four, a gas regulating valve is further provided on the multiple vent holes opened at the bottom of the forming mold, and a deflation speed of each vent hole can be adjusted by the respective gas regulating valve.
7. The method of claim 6, wherein in steps one to five, both the sealing mold and the forming mold are at a temperature condition of room temperature, and the metal sheet blank is also at room temperature before being placed on the forming mold, and in step three, the metal sheet blank is quickly heated by an electrode provided thereon.
8. The method of claim 1, wherein in steps one to five, both the sealing mold and the forming mold are at a temperature condition of room temperature, and the metal sheet blank is also at room temperature before being placed on the forming mold, and in step three, the metal sheet blank is quickly heated by an electrode provided thereon.
9. The method of claim 1, wherein a pressure in the enclosed cavity on the lower surface has a linearly increasing phase corresponding to step two and a linearly decreasing phase corresponding to step four, the linearly decreasing phase occurring immediately after the linearly increasing phase.
10. A method for gas bulging forming of a hot metal sheet, wherein the method is implemented according to the following steps: step one, placing a metal sheet blank to be formed on a forming mold, and closing a sealing mold to form enclosed cavities on upper and lower surfaces of the metal sheet blank; step two, introducing high-pressure gases with equal pressures simultaneously into upper and lower enclosed cavities respectively formed by the metal sheet blank and the sealing mold, and the metal sheet blank and the forming mold; step three, heating the metal sheet blank to a preset forming temperature condition; step four, quickly releasing the high-pressure gas from the enclosed cavity formed by the metal sheet blank and the forming mold, such that the metal sheet blank bulges quickly under the action of the high-pressure gas in the upper cavity and thus fits into the mold cavity of the forming mold; and step five, discharging the gas from the cavity formed by the metal sheet blank and the sealing mold, and opening the sealing mold to obtain a formed metal sheet part; wherein: step four is completed in less than 5 seconds; and the high-pressure gas has a pressure of at least 10 MPa.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9) wherein, 1 refers to a metal sheet blank, 2 refers to a sealing mold, 3 refers to a gas bulging forming mold, 4 refers to an inflation hole of the sealing mold, 5 refers to an inflation hole of the gas bulging forming mold, and 6 refers to a vent hole of the gas bulging forming mold;
(10)
(11)
(12)
(13) wherein, t1 is a time used for gas pressurization (inflation) in the solution adopted by the present invention, t2 is a time used for quickly decreasing the gas pressure on the back face of the metal sheet blank (deflation), t3 is a bulging time after the gas pressure on the back face of the metal sheet blank is completely eliminated, t4 is a time used for holding and releasing the pressure after the metal sheet blank bulges and fits in to the mold, P1 is a gas pressure in the cavity formed by the sealing mold and the metal sheet blank, and P2 is a gas pressure in the cavity formed by the gas bulging forming mold and the metal sheet blank, wherein the unit for time is second, and the unit for pressure is MPa;
(14)
(15)
(16)
(17)
(18)
(19)
(20)
(21)
(22) wherein, 7 refers to a hot steel plate, 8 refers to a vent hole, 9 refers to a gas regulating valve, and 10 refers to a power electrode;
(23)
(24)
(25)
(26)
(27)
DETAILED DESCRIPTION
(28) The technical solutions of the present invention will be further described below through the detailed description in connection with the accompanying drawings.
(29) Embodiment 1: as illustrated referring to
(30) step one, placing a metal sheet blank 1 to be formed on a forming mold 3, and closing a sealing mold 2 to form enclosed cavities on upper and lower surfaces of the metal sheet blank 1;
(31) step two, introducing high-pressure gases with equal pressures simultaneously into upper and lower enclosed cavities respectively formed by the metal sheet blank 1 and the sealing mold 2, and the metal sheet blank 1 and the forming mold 3 through an upper inflation hole 4 and a lower inflation hole 5;
(32) step three, heating the metal sheet blank 1 to a preset forming temperature condition;
(33) step four, quickly releasing the high-pressure gas from the enclosed cavity formed by the metal sheet blank 1 and the forming mold 3 through the vent hole 6, such that the metal sheet blank 1 bulges quickly under the action of the high-pressure gas contained in the cavity formed by the metal sheet blank 1 and the sealing mold 2, and thus fits into the mold cavity of the forming mold 3; and
(34) step five, discharging the gas from the cavity formed by the metal sheet blank 1 and the sealing mold 2, and opening the sealing mold 2 to obtain a formed metal sheet part.
(35) In this embodiment, the high-pressure gases on the upper and lower sheet surfaces of the metal sheet blank are introduced at the same time and the gas pressure thereof are maintained equal or substantially equal, i.e., P1=P2, (see
(36) Effect of gas pressure loading on the sheet temperature: during the hot quick gas bulging forming, a high-pressure gas is quickly introduced, and the gas is generally a high-pressure compressed gas at a temperature lower than room temperature. When the gas is filled quickly, it can easily affect the temperature of the hot sheet.
(37)
(38) As shown in
(39) As shown in
(40) Embodiment 2: as illustrated with reference to
(41) In this embodiment, the metal sheet blank 1 is heated in different manners in respect of different requirements for the forming temperature of the metal sheet blank 1. It not only can achieve an approximately uniform temperature distribution, but also can form a non-uniform temperature distribution on the metal sheet blank 1 by controlling the temperature distribution of the mold, the temperature distribution of the hot steel plate 7, and the like. This provides the possibility of effectively controlling the bulging deformation of the metal sheet blank 1 and thus obtaining a part with a complicated shape. The other steps are the same as those in Embodiment 1.
(42) Embodiment 3: as illustrated with reference to
(43) In this embodiment, when the enclosed cavity of the forming mold 3 is a complex asymmetric structure, by reasonably setting the number and positions of the vent holes 6, the high-pressure gas contained in the enclosed cavity formed by the metal sheet blank 1 and the forming mold 3 can be quickly released to an atmospheric pressure at almost the same speed, such that an approximately uniform pressure difference can be quickly formed on the upper and lower surfaces of the metal sheet blank 1. The distance from the second vent hole 6-2 to the first vent hole 6-1 is relatively longer, the second vent hole 6-2 and the third vent hole 6-3 are arranged close to each other, and the metal sheet blank 1 will be expanded quickly under a sufficiently high gas pressure. The other steps are the same as those in Embodiment 1 or 2.
(44) Embodiment 4: as illustrated with reference to
(45) In this embodiment, different gas pressure distributions will be generated in the cavity due to the rapid flow of high-pressure gas during quick deflation. By reasonably setting the number and positions of the vent holes 6 and adjusting the deflation speed of each vent hole, a non-uniform gas pressure will be formed in the cavity formed by the metal sheet blank 1 and the forming mold 3, such that different pressures will act on the lower surface of the metal sheet blank 1. Since the pressure on the upper surface of the metal sheet blank 1 is approximately uniform, the metal sheet blank 1 will be expanded quickly under the non-uniformly distributed pressure differential condition. By reasonably setting the non-uniformly distributed pressure difference, it is possible to reasonably control the deformation of different portions of the metal sheet blank 1 and thus to realize the formation of a part with a complicated shape. The other steps are the same as those in one of the Embodiments 1 to 3.
(46) Embodiment 5: as illustrated with reference to
(47) In this embodiment, the metal sheet blank 1, the sealing mold 2 and the forming mold 3 are all initially at the state of room temperature, and the removal, placing, transferring and the like of the metal sheet blank 1 can be realized by using conventional methods and apparatuses. In step two, there is no need to consider the possible effect of the inflation process on the temperature of the metal sheet blank 1, and in step three the heating of the metal sheet blank 1 can be completed within several seconds. Therefore, the inflation process and the heating process of the metal sheet blank 1 are independent from each other without causing mutual interference. This greatly simplifies the removal and placing of the blank and shortens the adjustment and control time of the mold temperature. Moreover, since the cavity of the forming mold 3 at room temperature is the shape of the final part, the problem of affecting the accuracy of the mold due to thermal expansion and contraction when the hot mold is used is avoided. This also provides the possibility of forming a part with a high requirement in precision. The other steps are the same as those in one of the Embodiments 1 to 4.