TECHNICAL FIELD
[0001] This invention relates to a method of producing steel products having an excellent
internal quality.
RELATED ART
[0002] In general, when a steel raw material with a round section (which is also called
as a circular section) is rolled, the resulting product has also a round section.
In this case, a series of caliber rolls with oval (ellipsoid; brevity code O) - round
(circle; brevity code R) are frequently used. On the contrary, when the shape of the
raw material is rectangular, a sectional area (cross sectional area for details, the
same is used hereafter) is reduced by caliber rolls with a groove shape of square
(square; brevity code S), box (hexagon; brevity code B) - diamond (rhombus; brevity
code D) or the like to finally provide a desired shape. Of course, when the raw material
has a square section, a combination of square (S) - oval (O) or the like is also used
(Non-patent Document 1). In FIG. 4 are shown various examples of the above shapers
for the caliber roll together with a shape of a flat roll (flat roll; brevity code
F). Moreover, FIG. 4 shows a sectional view of upper and lower rolls cut by a plain
surface passing through their shaft center lines. In FIG. 4, F/F is an abbreviation
of upper and lower flat rolls, O/O is an abbreviation of upper and lower oval caliber
rolls, R/R is an abbreviation of upper and lower round caliber rolls, S/S is an abbreviation
of upper and lower square caliber rolls, B/B is an abbreviation of upper and lower
box caliber rolls, and D/D is an abbreviation of upper and lower diamond caliber rolls
(the same is used hereafter).
[0003] Especially, when the shape of the raw material or an intermediate material is approximately
circular, a final shape of a circular section is manufactured by oval (O) or round
(R) rolls as mentioned above.
[0004] On the other hand, when the raw material is an as-cast steel billet or retains defects
in a sectional center portion of the steel billet, it is unsuitable as a final product
or a raw material directing to another production line. Because the retaining defects
lead to cause flaw through further working or begin at the occurrence of breakage
or the like in subsequent rolling. When a product is manufactured from the steel billet
such as slab or the like, a strong drafting way is known as a method of solving the
defects in the central center of the raw material by rolling (Non-patent Document
2). Thus, when the drafting of, for example, 30 mm is necessary in the production
of the steel sheet, products having an excellent internal quality are obtained by
conducting the drafting of 30 mm at once rather than three times of rolling of 10
mm/pass.
[0005] Moreover, Patent Document 1 discloses that as a rolling method for the prevention
of rolling crack in the continuously cast steel billet (particularly rolling crack
of side face), when a steel bar is manufactured from the continuously cast steel billet
by direct rolling, a continuously cast steel billet of a round section is used and
a caliber roll is used in a first pass of rough rolling and a flat roll is used in
second pass or more of the rough rolling.
PRIOR ART DOCUMENTS
PATENT DOCUMENT
[0006] Patent Document 1: Japanese Patent No.
3649054
NON-PATENT DOCUMENTS
SUMMARY OF THE INVENTION
PROBLEM TO BE SOLVED BY THE INVENTION
[0008] However, when the raw material has a round section and further the product has also
a round section, it is not necessarily easy to apply the technique capable of simply
repressing the strong drafting. Because, an area reduction ratio of decreasing a cross
sectional area of a steel billet or cast slab as a raw material to a cross sectional
area of a final product (shortly referred to as area reduction; = 1 - sectional area
of product/sectional area of raw material), i.e. rolling reduction is previously decided
and also a groove shape or rolling reduction required in shaping is limited to a certain
extent. Alternatively, there is a method of increasing a sectional area of the raw
material. In each case, however, many times and labor are taken for changing groove
shape or optimizing the rolling reduction, which is industrially difficult. In addition,
when the raw material is produced from a mold, there is a large restriction and is
practically difficult. As previously mentioned, a groove shape of approximately an
ellipsoid is usually used in case of rolling the round section, but when the strong
drafting is conducted with such a groove shape, protruding from the groove shape and
over-filling is caused, which is feared to retain a flaw on the surface of the product.
If the drafting is deficient, a portion not filled in the groove shape retains on
the surface of the final product without over-filling, so that it is difficult to
apply the strong drafting way, and hence the internal quality and shape may not be
satisfied sufficiently, which becomes problem.
MEANS FOR SOLVING PROBLEM
[0009] In order to solve the above problems, the inventors have examined a way wherein defects
existing in the round sectional center of the raw material is effectively blocked
even if the rolling reduction is not necessarily high in the hot rolling of 3 or more
passes usually adapting the caliber rolling for providing a desired product shape,
and found out that the strong drafting way can be easily applied when the rolling
in only first pass of the hot rolling is conducted with upper and lower flat rolls
and second or more passes are conducted by caliber rolling to thereby obtain a product
having sufficient internal quality and shape, and as a result, the invention has been
accomplished with the following summary and constructions.
[0010] That is, the invention is a method of producing steel products having an excellent
internal quality by subjecting a steel raw material of a round section to rolling
of 3 or more passes to provide a steel product of a round section, characterized in
that the rolling is conducted by using a pair of upper and lower flat rolls at first
pass, using a pair of upper and lower same or different caliber rolls at second or
more passes until just before a last pass, and using a pair of upper and lower round
caliber rolls at the last pass, under a condition that an area reduction in the first
pass is within a range of less than a total area reduction from the raw material to
the product. In the invention, it is preferable that the area reduction in the first
pass is not less than 50% of a total area reduction in the second or more passes.
EFFECT OF THE INVENTION
[0011] According to the invention, defects existing in the center of the round section can
be sufficiently blocked by strong draft rolling with the upper and lower flat rolls
at the first pass, while the section flattened by the strong drafting can be sufficiently
circles by the caliber rolling with a relatively light drafting at the second or more
passes, whereby a steel product of round section having a satisfactory internal quality
is obtained without deteriorating the shape.
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
FIG. 1 is a graph showing an influence of a roll shape upon an interrelation between
defect blocking ratio and area reduction in one pass rolling (results of Experiment
1);
FIG. 2 is a graph showing an influence of a roll shape upon an interrelation between
defect blocking ratio and area reduction in one pass rolling (results of Experiment
2);
FIG. 3 is a graph showing an influence of a roll shape upon an interrelation between
defect blocking ratio and area reduction in one pass rolling (results of Experiment
3); and
FIG. 4 is a schematic view illustrating various shapes of caliber rolls and a shape
of as flat roll.
EMBODIMENST FOR CARRYING OUT THE INVENTION
[0013] As a clue searching means for solving the above problems, the inventors have made
experimental investigations on how to change an interrelation between a defect blocking
ratio (= 1 - sectional area of defect after rolling/sectional area of defect in raw
material) and an area reduction (= 1 - sectional area of rolled product/sectional
area (including sectional area of defect) of raw material) in accordance with a shape
of a roll used when a raw material of a round section provided with an artificial
defect passing through a central portion of the round section is rolled at one pass.
In this experiment, a lead raw material was used to conduct cold rolling. This can
be adopted as a good approach because cold deformation behavior of lead is close to
hot deformation behavior (1000~1200°C) of steel and also deformation resistance of
lead at room temperature tends to be substantially equal to hot deformation resistance
of steel.
(Experiment 1)
[0014] In Experiment 1, the raw material has an outer diameter = 50 mmφ and a defect diameter
= 5 mmφ, and shapes of upper and lower rolls are four kinds of F/F, D/D, O/O and B/B
(see FIG. 4), and the roll diameter is 5 times of the diameter of the raw material
(wherein a diameter of a roll flange portion is used for a roll diameter of a caliber
roll), and the area reduction is varied within a range of not more than about 25%.
The sectional area of the defect after the rolling is determined from an image of
the defect shot in a section of a rolled product. Moreover, when the defect is not
observed from the shot image, a color check test is carried out on the section to
be shot to confirm no transudation of a penetrating solution (the same is used hereafter).
[0015] The results are shown in FIG. 1. As seen from FIG. 1, the defect blocking ratio increases
together with the area reduction even in any roll shape, but the increasing tendency
is particularly steep in the case of F/F as compared with the other cases, and also
complete blocking (defect blocking ratio = 1) is attained at an area reduction = about
21%, which indicates that the defect blocking ratio can be largely enhanced by the
strong drafting with the upper and lower flat rolls.
(Experiment 2)
[0016] In Experiment 2 is used the same specification as in Experiment 1 except that the
defect diameter is 2.5 mmφ. The results are shown in FIG. 2. As seen from FIG. 2,
the defect blocking ratio increases together with the area reduction even in any roll
shape, but the increasing tendency is particularly steep in the case of F/F as compared
with the other cases, and also complete blocking (defect blocking ratio = 1) is attained
at an area reduction = about 21%, which indicates that the defect blocking ratio can
be largely enhanced by the strong drafting with the upper and lower flat rolls.
(Experiment 3)
[0017] In Experiment 3 is used the same specification as in Experiment 1 except that the
outer diameter of the raw material is 30 mmφ and the defect diameter is 3 mmφ. The
results are shown in FIG. 3. As seen from FIG. 3, the defect blocking ratio increases
together with the area reduction even in any roll shape, but the increasing tendency
is particularly steep in the case of F/F as compared with the other cases, and also
complete blocking (defect blocking ratio = 1) is attained at an area reduction = about
9%, which indicates that the defect blocking ratio can be largely enhanced by the
strong drafting with the upper and lower flat rolls.
[0018] Next, a pass applying F/F (upper and lower flat rolls) rolling is examined among
3 or more rolling passes, and hence the following conclusion is obtained. Since the
strong draft is conducted in the F/F rolling, when the strong draft is carried out
at second or more passes, if there is a limit in the pass number, the number of caliber
rolling passes from the pass after the strong draft to final pass is decreased, and
hence it is difficult to render the final section into a true circle. If there is
no limit in the pass number, the formation of the true circle may be made possible
by further adding caliber rolling stands, but the number of the stands is increased,
which is large demerit in the rolling efficiency and economical reasons. Therefore,
the F/F rolling should be carried out only at the first pass.
[0019] The area reduction in the F/F rolling (first pass) should be less than a given total
area reduction from the raw material to the product. In general, a total area reduction
from an entry side of mth pass to an exit side of nth pass (m<n) (which is represented
by symbol of Z
m/n) is defined by an equation (1) from sectional area at the entry side of mth pass
S
m-1 and sectional area at the exit side of nth pass S
n:

When total area reduction is a range from the raw material (entry side of first pass)
to the product (exit side of final Nth pass), the equation (1) is changed into an
equation (2) since m = 1 and n = N.

[0020] The equation (2) is deformed to an equation (3) by using sectional area Si and area
reduction z
i (= 1 - S
i/S
i-1) at an exit side of ith pass:

wherein
iΠ
1/N (1 - z
i) ≡ (1- z
1) (1 - z
2) .... (1 - z
N).
[0021] Since each of the sectional area So of the raw material and target sectional area
S
N of the product is a given value, the total area reduction Z
1/N from the raw material to the product is also a given value. When z
1 ≧ Z
1/N, 1 -
iΠ
2/N (1 - z
i) = Z
2/N ≦ 0 from the equation (3), so that the caliber rolling at second or more passes cannot
be conducted and hence the target shape of round section is not obtained. Therefore,
there should be z
1 < Z
1/N.
[0022] On the other hand, when z
1 is less than 50% of Z
2/N, the strong draft is not obtained, so that there is a possibility that the defect
blocking effect is poor. Since it is considered that when the defect blocking is carried
out at the first pass, only the arrangement of the shape is sufficient at the remaining
passes, the area reduction z
1 of the F/F rolling (first pass) is preferable to be not less than 50% of the total
area reduction Z
2/N of the caliber rolling.
EXAMPLE
[0023] A through-hole (circular section) is pierced in a sectional center of a steel raw
material of a round section as an artificial defect to form a test specimen, which
is heated and hot rolled under various rolling conditions to provide a steel product
having a target round section. Then, there are examined right and wrong in the defect
blocking ratio and shape of the resulting steel product. In Table 1 are shown dimension
(outer diameter, defect diameter) of the raw material used, target size (outer diameter)
of the steel product, total area reduction Z
1/N and rolling conditions (total pass number N, shape of roll used (F/F → O/O .....
→ R/R and so on), area reduction at first pass z
1, total area reduction of second or more passes Z
2/N) from entry side of first pass to exit side of final Nth pass. Moreover, the heating
temperature is 1100°C. The roll diameter of the flat roll is 200 mm, and the roll
diameter of the caliber roll (roll diameter at flange end) is 200 mm. The temperature
at exit side of the final pass is lowered to about 50-100°C from the heating temperature.
[0024] The defect blocking ratio of the resulting steel product is examined by the same
manner as in the above experiments. As the right and wrong of the shape, a ratio of
minimum diameter/maximum diameter in circumferential direction is measured as an indication
of true circle, and the shape is judged to be good (○) when the indication of true
circle is not less than 0.975 and bad ( × ) other than that. These results are shown
in Table 1.
[0025] As seen from Table 1, the defect is completely blocked and the shape is good in Invention
Examples (F/F only at first pass, and z
1 < Z
1/N).
Table 1
| No. |
Raw material |
Target outer diameter of steel product (mm) |
|
|
|
|
|
|
|
Remarks |
| Outer diameter (mm) |
Defect diameter (mm) |
Z1/N (%) |
N |
Shape of rolls used |
Z1 (%) |
Z2/N (%) |
Defect blocking ratio |
Shape |
| 1 |
50 |
5 |
37.0 |
45 |
4 |
F/F→O/O→O/O-→R/R |
25 |
27 |
1 |
○ |
Invention Example |
| 2 |
50 |
3 |
33.5 |
55 |
4 |
F/F→D/D→O/O→R/R |
25 |
40 |
1 |
○ |
Invention Example |
| 3 |
50 |
3 |
33.5 |
55 |
4 |
F/F→O/O→O/O→R/R |
33 |
33 |
1 |
○ |
Invention Example |
| 4 |
30 |
3 |
22.3 |
45 |
4 |
F/F→O/O→O/O→R/R |
15 |
35 |
1 |
○ |
Invention Example |
| 5 |
30 |
3 |
24.0 |
36 |
4 |
F/F→O/O→O/O→R/R |
15 |
25 |
1 |
○ |
Invention Example |
| 6 |
30 |
3 |
25.5 |
27 |
3 |
F/F→O/O→R/R |
15 |
14 |
1 |
○ |
Invention Example |
| 7 |
50 |
5 |
32.5 |
58 |
4 |
F/F→D/D→O/O→R/R |
40 |
30 |
1 |
× |
Comparative Example |
| 8 |
50 |
3 |
37.0 |
45 |
4 |
F/F→D/D→O/O→R/R |
15 |
35 |
0.81 |
○ |
Comparative Example |
| 9 |
30 |
3 |
22.3 |
45 |
4 |
F/F→D/D→O/O→R/R |
8 |
40 |
0.7 |
○ |
Comparative Example |
| 10 |
50 |
5 |
40.0 |
36 |
3 |
F/F→O/O→R/R |
25 |
15 |
1 |
× |
Comparative Example |
| 11 |
50 |
5 |
37.0 |
45 |
4 |
F/F→O/O→O/O→R/R |
16 |
35 |
0.85 |
○ |
Comparative Example |
| 12 |
50 |
5 |
40.0 |
37 |
3 |
F/F→O/O→R/R |
13 |
28 |
0.68 |
× |
Comparative Example |