Radial rolling process for ring product that can control strain distribution of ring product
10173256 ยท 2019-01-08
Assignee
Inventors
- Jian Lan (Hubei, CN)
- Lin HUA (HUBEI, CN)
- Dongsheng Qian (Hubei, CN)
- Huajie Mao (Hubei, CN)
- Shaogui Feng (Hubei, CN)
Cpc classification
International classification
Abstract
The invention provides a radial ring rolling process for controlling strain distribution of a ring product. In the process, a ring blank is rolled by a main roll and a mandrel that are driven to rotate, while a gap between the main roll and the mandrel continuously decreases in the radial direction of the ring blank. The process includes (A) according to dimensions of the ring product and expected strain, a rolling ratio is firstly determined, dimensions of the ring blank is calculated based on the rolling ratio and the dimensions of the ring product; (B) a rotation speed curve of the mandrel is determined based on the rotation and the radial feeding speeds of the main roll; (C) the ring blank is rolled according to the rotation and radial feeding speeds of the main roll and the calculated rotation speed of mandrel in step (B).
Claims
1. A radial rolling process for a ring product that controls a strain distribution of the ring product, wherein in the radial rolling process, a ring blank is rolled by a main roll and a mandrel that are driven to rotate, to carry out the radial rolling process, the radial rolling process comprising the following steps: (A) according to dimensions of the ring product and an expected strain, a rolling ratio is firstly determined, and dimensions of the ring blank are calculated based on the rolling ratio and the dimensions of the ring product; (B) a rotation speed curve of the mandrel is determined based on a rotation speed of the main roll and a radial feeding speed of the main roll, so as to determine a feeding speed of the main roll and a rotation speed of the mandrel for a given constant rotation speed of the main roll, comprising: firstly, a main roll feeding per revolution of the ring blank is calculated based on a rolling force capacity of a rolling mill used in the radial rolling process and a material yield strength of the ring blank; secondly, the feeding speed of the main roll is calculated based on its feeding per revolution of the ring blank and its rotation speed; thirdly, the rotation speed of the mandrel is calculated based on the rotation speed of the main roll and the feeding speed of the main roll; and (C) the ring blank is rolled according to the rotation and radial feeding speeds of the main roll and the calculated rotation speed of the mandrel in step (B).
2. The radial rolling process for the ring product that controls the strain distribution of the ring product according to claim 1, wherein the dimensions of the ring blank is calculated as below, (A) firstly, selecting the rolling ratio according to a material plasticity, for a hot rolling process, whose temperature is higher than its austenitizing temperature, taking a value of =1.5-3, for a cold rolling process, whose temperature is near room temperature, taking a value of =1.3-1.6; and (B) according to the dimensions of the ring product, the dimensions of the ring blank are calculated by the formula of
3. The radial rolling process for the ring product that controls the strain distribution of the ring product according to claim 1, wherein the rotation speed of the mandrel is calculated as below, (A) for the rolling mill, the feeding per revolution of the ring blank is calculated by the formula of
4. The radial rolling process for the ring product that controls the strain distribution of the ring product according to claim 3, wherein the speed coefficient has a value in a range of 0.1-0.4.
5. The radial rolling process for the ring product that controls the strain distribution of the ring product according to claim 3, wherein by adopting the radial rolling process, the speed coefficient has characteristics as below: when 1, a difference between a surface and middle ports of the rolled ring is 100%-240%; when =0.1, an unevenness of a radial strain distribution of the rolled ring is smaller than 20%, and an unevenness of an axial strain distribution of the rolled ring is smaller than 10%; when =0.4, the unevenness of the radial strain distribution of the rolled ring is smaller than 50%, and the unevenness of the axial strain distribution of the rolled ring is smaller than 20%.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The drawings described below are for illustration purpose only. The drawings are not intended to limit the scope of the present teaching in any way.
(2)
(3)
(4)
(5)
(6)
(7) In figures: 1forward slip zone; 2asynchronous zone; 3backward slip zone.
DETAILED DESCRIPTION OF THE INVENTION
(8) Hereinafter is the preferred embodiment of the invention with reference to the figures.
(9) In one aspect, the invention relates to a radial rolling process for a ring product that can control strain distribution of the ring product. During the rolling process, the ring blank is rolled by a main roll and a mandrel that all are driven to rotate. The process includes the steps of: (A) determine the rolling ratio of the ring blank and the ring blank dimensions, according to the ring product dimensions and predicted strain measure; (B) determine the rotation speed curve of the mandrel, according to the rotation speed and the feeding speed of the main roll; (C) rolling the ring blank according to the designed rotated speed and feeding speed of the main roll and the rotation speed curve of the mandrel.
(10) The dimensions of ring blank is calculated as blew,
(11) (A) firstly, selecting the rolling ratio according to the materials plasticity, for the hot rolling process, taking the value of =1.5-3, for the cold rolling process, taking the value of =1.3-1.6;
(12) (B) according to the dimensions of ring product, the dimensions of ring blank can be calculated by the formula below,
(13)
where, D,d are the outer and inner diameter of the ring product respectively, D.sub.0,d.sub.0 are the outer and inner diameter of the ring blank respectively;
(14) The rotation speed of mandrel is calculated as blew,
(15) (A) for a given rolling mill, the feeding per revolution of ring blank can be calculated as blew,
(16)
where, h.sub.P is the feeding per revolution of ring blank, P is the rolling force of the mill, .sub.s is the yield strength of the ring blank material under rolling temperature, b is the axial height of the ring blank, D.sub.1, D.sub.2 are the outer diameters of the main roll and mandrel, n is the coefficient whose range is 3-6;
(17) (B) according to the dimensions and feeding per revolution of ring blank, the feeding speed can be calculated as blew,
(18)
where, n.sub.1 is the rotate speed of main roll;
(19) (C) according to feeding speed and rotate speed of main roll, the rotate speed of mandrel can be calculated to match with main roll as blew,
(20)
where, t is time variable of rolling, is speed coefficient.
(21) If the mandrel arbitrarily rotates without driven moment during the rolling process, the main roll keeps constant rotation speed n.sub.1. The rotation speed of the following mandrel will continually change and opposes to the rotation speed of main roll with the ring blank thickness decreasing. There is no moment T.sub.2=0 from the mandrel to the ring blank during rolling process.
(22) If the mandrel rotates based on the calculated rotation speed as shown in Eqn (4), the ring blank will experience continuous plastic deformation under both the main roll moment T.sub.1 and mandrel moment T.sub.20, as shown in
(23) The effective strain changes along the radial direction at different axial positions with different speed coefficients as shown in
(24) In sum, the present invention is suitable to produce large volume ring products with high quality and long service life.
(25) What should be understood is that one of ordinary skill in the art can make some changes and transformations according to the embodiment above, and all these changes and transformations should belong to the protection scope of the present invention claims.
(26) The present invention provides a radial rolling process for a ring product that can control the strain distribution of the ring product, in the rolling process, the ring blank is rolled by a main roll and a mandrel that all are driven to rotate, while the gap between the main roll and the mandrel continuously decreases in the radial direction of the ring blank, to carry out this process, several steps are taken as below: (A) according to the dimensions of the ring product and the expected strain, the rolling ratio is firstly determined, and the dimensions of the ring blank is calculated based on the rolling ratio and the dimensions of the ring product; (B) the rotation speed curve of the mandrel is determined based on the rotation speed of the main roll and the radial feeding speed of the main roll; (C) the ring blank is rolled according to the rotation and radial feeding speeds of the main roll and the calculated rotation speed of mandrel in step (B). This rolling process provides the stress state for uniform plastic deformation, which improves greatly the microstructure uniformity of rolled ring product, and is suitable for reliably producing large volumes of ring parts high quality and long service life.