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ZA200407399B - Bulk steel for the production of injection moulds for plastic material or for the production of pieces for working metals - Google Patents

Bulk steel for the production of injection moulds for plastic material or for the production of pieces for working metals Download PDF

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Publication number
ZA200407399B
ZA200407399B ZA2004/07399A ZA200407399A ZA200407399B ZA 200407399 B ZA200407399 B ZA 200407399B ZA 2004/07399 A ZA2004/07399 A ZA 2004/07399A ZA 200407399 A ZA200407399 A ZA 200407399A ZA 200407399 B ZA200407399 B ZA 200407399B
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ZA
South Africa
Prior art keywords
steel
block according
less
steel block
elements
Prior art date
Application number
ZA2004/07399A
Inventor
Beguinot Jean
Original Assignee
Industeel France
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Publication date
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Publication of ZA200407399B publication Critical patent/ZA200407399B/en

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22DCASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
    • B22D17/00Pressure die casting or injection die casting, i.e. casting in which the metal is forced into a mould under high pressure
    • B22D17/20Accessories: Details
    • B22D17/22Dies; Die plates; Die supports; Cooling equipment for dies; Accessories for loosening and ejecting castings from dies
    • B22D17/2209Selection of die materials
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C33/00Moulds or cores; Details thereof or accessories therefor
    • B29C33/38Moulds or cores; Details thereof or accessories therefor characterised by the material or the manufacturing process
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C45/00Injection moulding, i.e. forcing the required volume of moulding material through a nozzle into a closed mould; Apparatus therefor
    • B29C45/17Component parts, details or accessories; Auxiliary operations
    • B29C45/26Moulds
    • B29C45/37Mould cavity walls, i.e. the inner surface forming the mould cavity, e.g. linings
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/42Ferrous alloys, e.g. steel alloys containing chromium with nickel with copper
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/44Ferrous alloys, e.g. steel alloys containing chromium with nickel with molybdenum or tungsten
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/46Ferrous alloys, e.g. steel alloys containing chromium with nickel with vanadium
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/58Ferrous alloys, e.g. steel alloys containing chromium with nickel with more than 1.5% by weight of manganese
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/60Ferrous alloys, e.g. steel alloys containing lead, selenium, tellurium, or antimony, or more than 0.04% by weight of sulfur

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Materials Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Manufacturing & Machinery (AREA)
  • Heat Treatment Of Articles (AREA)
  • Heat Treatment Of Steel (AREA)
  • Moulds For Moulding Plastics Or The Like (AREA)
  • Solid-Phase Diffusion Into Metallic Material Surfaces (AREA)
  • Lubricants (AREA)
  • Injection Moulding Of Plastics Or The Like (AREA)
  • Heat Treatment Of Sheet Steel (AREA)

Description

Steel block for the manufacture of moulds for the injection moulding of plastics material or for the manufacture of metal- working parts
The present invention relates to a steel block which may be used, in particular, for the manufacture of moulds for the injection moulding of plastics materials or for the moulding of metals such as light alloys or for the manufacture of metal-working tools.
Moulds for the injection moulding of plastics materials are generally produced from steels of which the hardness is approximately 300 HB. When these moulds are used for the moulding of plastics such as industrial plastics or thermosetting plastics, however, it is preferable to use harder steels which are more resistant to wear. A steel of the type 55 NCDV 7 containing about 0.55% of carbon, 1.75% of nickel, chromium, molybdenum and vanadium may therefore be used and allows the manufacture of moulds of which the hardness is approximately 400 HB. However, this steel has a plurality of drawbacks: it is difficult to machine and difficult to weld. In addition, this steel often has localised segregations which constitute hard points which are detrimental to polishing or to chemical graining. These two drawbacks are particularly undesirable because manufacture of the moulds necessitates significant machining and the moulds are generally repaired by reloading by welding and polished or grained. In addition, these moulds must be able to be surface- hardened, for example by nitriding, without losing their hardness.
For applications which are even more demanding and particularly if the injection-moulded plastics contain very rigid fibres, it is preferable to use steels which are even harder and more resistant to wear. Similarly, the increase in the injection moulding pressures has also led to a search for stronger and therefore harder steels. Finally, for certain applications involving the injection moulding of light alloys or cold or warm working of metals, the mechanical stresses imposed on the tools and the requirements of resistance to wear necessitate a steel having hardnesses higher than 450 HB.
A steel having strength of approximately 450 or even 500 HB such as the grades AISI H1l or H13 which are also commonly used for the injection of light alloys may thus be required.
These steels contain about 0.4% of carbon, 5% of chromium, 1.25% of molybdenum, 0.3 to 1% of vanadium. However, steels of this type have the same above-mentioned drawbacks as 55 NCDV 7, to a higher degree.
In addition, a further problem arises particularly crucially with the increase in hardness, which 1s almost inevitably accompanied by a reduction in toughness: the risk of fissuring between the cooling ducts and the surface of the mould impression, which these ducts should effectively cool by passing relatively close to this surface.
The object of the present invention 1s to overcome these drawbacks by proposing a steel for moulds or for the manufacture of parts for metal-working which is easier to weld and easier to machine, polish and grain and is a better conductor of heat than steels according to the prior art, and allowing the manufacture of parts or tools having a hardness of approximately 450 HB to more than 500 HB, even after surface-hardening by nitriding, and this means that the required characteristics, in particular hardness characteristics, have to be compatible with tempering at at least 530°C.
The invention accordingly relates to a steel block having a thickness which is greater than 20 mm and may attain 1500 mm, of which the structure is martensitic or martensito-bainitic, of which the hardness is between about 430 HB and 520 HB at all points, for the manufacture of parts for moulds or for tools, the chemical composition of the steel comprising, in % by weight: 0.180% £ C £ 0.400%
Si £ 0.8%
Mn < 2.5%
Ni £ 3%
Cr £ 3.5%
Mo + W/2 £ 2.8%
V + Nb/2 + Ta/4 £ 0.5%
Al £ 0.4%
Ti + 2r/2 £ 0.1% : —- boron in a content of between 0.0005% and 0.015%, - optionally one or more elements from among sulphur, selenium and tellurium, the sum of contents of these elements being less than or equal to 0.2%, - optionally one or more elements from among lead and bismuth, the sum of contents of these elements being less than or equal to 0.2%,
- optionally calcium in a content less than or equal to 0.1%, the remainder being iron and impurities resulting from production, the copper being an impurity, the chemical composition also satisfying the following equations: 3.2 <Tr <9 85 £ Dr £ 95
U/Dr < 10.0
Mo* + 3xV* = 0.4% in which, for contents expressed in %:
Tr = 1.8xC + 1.1xMn + 0.7xNi + 0.6%xCr + 1.6xMo* + K wherein K = 0 if the steel does not contain boron and K = 0.5 if the steel contains boron
Dr = 54xC%2% 4+ 24.5x(Mo* + 3xV*)°%3% 4 1.58xMn + O0.74xNi + 1.8xSi + 12.5% (Cx)? *°
U = 1600xC + 100x(0.25xXCr + Mo* + 4.5xV¥)
R = 23.8xC + 10xS1 + 3.3xMr + 2.4xNi + 1.4x%x(Cr + Mo*)
Mo* = Mo + W/2
Vx = V + Nb/2 + Ta/4 and the contents of boron, aluminium, titanium, zirconium and nitrogen, expressed in thousandths of % by weight, are such that: 1
B 2 3 x Kl + 0.5 wherein K1 = Min (I*;J%*)
I* = Max (0;I) and J* = Max (0;J)
I = Min(N; N-0.29(Ti+Zxr/2-5))
J = Min (Nios(N-052a14/N-052A1F + 289)
Preferably, the chemical composition 1s such that:
R > 11
Also preferably, the chemical composition is such that:
R £ 2.7xTr
It is preferable that the silicon content remains strictly at 0.45 % by weight.
Preferably, the composition is such that: R/(2.7xTr) £ 0.90, more preferably R/(2.7xTr) < 0.80.
Preferably, the composition is such that U/Dr £ 9.0.
In addition, it is preferable that the chemical composition of the steel is such that: 0.230% £ C £ 0.350%
Si £ 0.30% 0.1% £ Mn £ 1.8%
Ni £ 2.5% 0.2% < Cr £ 3%
Mo + W/2 £ 2.5%
V + Nb/2 + Ta/4 <£ 0.3%
Mo* + 3xV* 2 0.8% and even more preferable, such that: 0.240% £ C £ 0.320%
Si £ 0.15% 0.1% £ Mn £ 1.6%
Ni £ 2% 0.2% £ Cr £ 2.5% 0.3% < Mo + W/2 £ 2.5%
V + Nb/2 + Ta/4 £ 0.3%
Mo* + 3xV* > 1.2%
It is therefore preferable that the composition is such that
Tr > 4.5.
The invention also relates to a mould part made of steel which is machined in a block according to the invention, of which at least a surface portion is hardened by nitriding and of which the hardness at all points is between 430 HB and 530 HB.
The steel according to the invention has the advantage of being a better conductor of heat than the steels according to the prior art. This better thermal conductivity allows the cooling ducts to be further removed from the surface of the moulds than when using steels according to the prior art.
Thus, the risk of fissures between the ducts and the surface of the mould impression is substantially reduced. In addition, owing to the better thermal conductivity, the cooling of the moulds takes place more uniformly and this improves the quality of moulding.
The steel according to the invention is also intended for the manufacture of metal working parts.
The invention will now be described in more detail and illustrated but not limited by examples.
The parts for moulds or for metal working are manufactured by machining solid blocks of steel which are guenched to obtain a homogeneous martensito-bainitic structure and tempered to obtain the desired properties of hardness and ductility. It is herefore necessary to use a steel having high temperability and significant hardenability. However, these hardened steels must have the best possible machinability and the highest possible thermal conductivity. This last property helps to improve the productivity of the moulding operations. The combination of these various properties is initially contradictory. In fact, it is known that, the harder the steel is, the easier it is to machine, and it is known that the machinability may be improved by adding alloying elements such as sulphur, calcium, selenium, tellurium or lead. However, these additions have to be limited in steels for moulds because, although they are acceptable when the surface of the mould impressions 1s grained, they are detrimental when the surfaces are polished. Whatever the case, these additions are inadequate. It is also known that the thermal conductivity and quenchability of steel vary inversely as a function of its composition. These requirements are therefore contradictory.
However, the inventors have found, in a novel manner, that it is possible to find ranges of composition which result in combinations of properties which are substantially better than those of known steels. These ranges of composition are defined, on the one hand, by spreads of contents in each of the elements of the composition and, on the other hand, by formulae which are to be adhered to.
To obtain these combinations of properties, the steel must contain: — 0.18% to 0.4% of carbon to form carbides which harden without excessively impairing weldability, toughness and machinability, and this content must preferably be between 0.230% and 0.350% and more preferably between 0.240% and 0.320%; — less than 0.8%, preferably less than 0.30% and more preferably less than 0.15% of silicon. This element which is generally used to deoxidise the steel during production adversely affects the thermal conductivity.
However, it is always present at least in traces; - less than 2.5% of manganese, preferably 0.1 to 1.8% and more preferably 0.1% to 1.6%, to obtain good guenchability without causing excessive segregation which would reduce the ability to obtain good surface states on the moulds. The element is always present, at least in the state of traces. In addition, it 1s preferable for its content to be higher than 0.1% in order to trap the sulphur which is still present in the state of impurities. If sulphur has been added to improve the machinability, the minimum manganese content must preferably be adapted accordingly and must be at least 5 times and preferably 7 times the sulphur content;
—- less than 3% of nickel, preferably less than 2.5% and more preferably less than 2%. This element allows the quenchability to be increased but is very expensive.
It may be present in traces.
In applications requiring greater toughness and very uniform hardness, however, it may be worth reducing the manganese content in favour of the nickel in a proportion of two parts of nickel for one part of manganese.
This substitution of 1 part of manganese by nickel also has the advantage of reducing segregation;
- less than 3.5% of chromium, preferably 0.2% to 3% of chromium and more preferably 0.2% to 2.5%. This element increases the quenchability but, in an excessive quantity, tends to enrich the carbides in chromium to the detriment of other more favourable elements such as molybdenum, tungsten, vanadium, niobium and tantalum.
It may be present in traces;
- molybdenum and/or tungsten in contents which are such that the sum Mo* = Mo + W/2 is less than 2.8% and preferably less than 2.5%; it is also preferable that it is higher than 0.3%. These elements have a pronounced quenching effect.
In addition, they substantially reduce process annealing, and this is desirable when the impressions of the moulds are subjected to surface treatments such as nitriding at temperatures of at least 500°C.
In excessive quantities, however, they impair machinability;
— optionally at least one element selected from among vanadium, niobium and tantalum in contents which are such that the sum V* = V + Nb/2 + Ta/4 is less than 0.5% and preferably less than 0.3%. These elements increase the resistance to process annealing, in particular when tempering is carried out above 550°C. They also increase the wear resistance of the mould impressions. In an excessive quantity, however, they impair machinability and weldability; - 0.0005% to 0.015% of boron. This element substantially increases the quenchability without adversely affecting the thermal conductivity. In addition, as its effect disappears at the high austenitising temperatures encountered during welding, it is favourable to good repairability by welding. Below 0.0005%, which is practically the limit of detection by analysis means, it does not have a significant effect. Above 0.015% it embrittles the steel without increasing its guenchability; - optionally up to 0.4% of aluminium and optionally one or more elements from among titanium and zirconium, wherein the sum Ti + Zr/2 may attain 0.1%. These elements are strong deoxidising agents. In addition, they fix the nitrogen which is still present at least as an impurity in contents generally of less than 0.0250% but possibly of even less, though if the steel contains boron, the nitrogen content must be less than 0.0250%. The presence of at least one element from among Al, Ti and Zr is desirable for the boron to be fully effective.
To enable the aluminium, titanium and zirconium, taken alone or in a combination of two or three of these elements, to protect the boron from the nitrogen and thus make it fully effective, the boron, aluminium, titanium, zirconium and nitrogen contents, expressed in thousandths of % by weight must be such that:
B 2 1 x Kil + 0.5 wherein Kl = Min (I*;J¥*)
I* = Max (0;I) and J* = Max (0O;J)
I = Min(N; N-0.29(Ti+Zx/2-5))
J = Min (Nios N-0.5241[N-052 41) +283) - the copper may be in the form of traces or impurities, up to contents of approximately 0.3%; - optionally one or more elements from among sulphur, selenium and tellurium in a small quantity, the sum of the contents of these elements having to be less than 0.200%. If the steel is intended for the manufacture of moulds having a polished, chemically grained surface, however, the sum of contents of these elements must be less than 0.025%, or preferably less than 0.005%; - optionally one or more elements from among lead and bismuth, the sum of contents of these elements being less than 0.2%. If the steel is intended for the manufacture of moulds having a polished, chemically grained surface, however, it is preferable that the steel does not contain such elements; - optionally calcium in a content of less than 0.100%. If the steel is intended for the manufacture of moulds having a polished, chemically grained surface, however, it is preferable that the steel does not contain this element because its positive action on machinability is achieved in conjunction with sulphur, of which the addition is preferably limited if the steel has to be polished or grained;
i2 - the remainder of the composition consists of iron and impurities resulting from production. It must be noted that, in the case of all the alloying elements of which the minimum content is not imposed, if these elements are not added they may still be found at least in the form of residuals or impurities in very low contents.
Within the limits just defined, the composition of the steel must be selected in order to obtain the desired characteristics for use. For this purpose, the composition must be such that: - the value Tr = 1.8xC + 1.1xMn + 0.7xNi + 0.6xCr + 1.6xMo* + K, wherein K = 0 if the steel does not contain born and
K = 0.5 if the steel contains boron, in other words, if boron has been added in a content higher than or equal to 0.0005%, is higher than 3.2 and preferably higher than 4.5 to obtain adequate quenchability. In particular Tr must be higher than 4.5 for obtaining a martensito- bainitic structure without any traces of a perlitic structure on parts of which the thickness may exceed 1000 mm and be as high as 1500 mm; : ~ the value Dr = 54xC%?% 4 24.5x(Mo* + 3xv+*)%3" + 1.58xMn + 0.74xNi + 1.8xSi + 12.5x(Cr)%?° must be between 85 and 95 in order to obtain adequate hardening by the carbides without excessively impairing machinability; ~ the value U = 1600xC + 100x(0.25xCr + Mo* + 4.5xV*) which is an indicator of machinability (the lower U, the better the machinability) must be below 10.0 and preferably below 9.0; - the value R = 3.8xC + 10xSi + 3.3xMn + 2.4xXNi + 1.4x(Cr +
Mo*) which varies with the thermal resistivity, in other words the reverse of the thermal conductivity must preferably be less than 2.7xTr. More preferably, the ratio R/(2.7xTr) must be less than or equal to 0.90 and even more preferably less than or equal to 0.80. In view of all the requirements of characteristics desired for steel, however, this value may not generally drop below 11 also; the invention relates more particularly to steels in which R > 11, while being as low as possible; — in view of all the stresses, the sum Mo* + 3xV* must be higher than 0.4%; if the composition of the steel corresponds to the preferred analysis: 0.230% £ C £ 0.350%
Si £ 0.30% 0.1% £ Mn £ 1.8%
Ni £ 25% 0.2% < Cr £ 3%
Mo + W/2 £ 2.5%
V + Nb/2 + Ta/4 £ 0.3%
Mo* + 3xV* must be higher than 0.8%; if this steel corresponds to the more preferred analysis: 0.240% < C £ 0.320%
Si £ 0.15% 0.1% < Mn £ 1.6%
Ni £ 2% 0.2% < Cr £ 2.5% 0.3% < Mo + W/2 £ 2.5%
V + Nb/2 + Ta/4 £ 0.3%
Mo* + 3xV* must be higher than 1.2%.
To manufacture a mould with this steel, the steel is produced, is cast and hot-rolled or hot-forged in a known manner and cut to obtain blocks of which the thickness is greater than 20 mm and may exceed 100 mm and attain 400 mm, possibly 600 mm and even 1500 mm. It should be noted that, with the smallest thicknesses, the blocks may be sheets or large plates and, with the greatest thicknesses, they are generally forged blocks.
The blocks are austenitised, optionally in the forging or rolling heat, at a temperature higher than AC; and preferably lower than 950°C, in particular when the steel contains boron, and they are then quenched in air, oil or water, depending on the thickness and quenchability of the steel, so as to obtain a martensitic or martensito-bainitic structure in all the mass. Finally, they are tempered at a temperature higher than 500°C and preferably of at least 550°C but lower than AC;. A hardness between approximately 430 HB and 530 HB 1s thus obtained.
In such blocks, parts of moulds comprising impressions which are polished and optionally grained are machined in a known manner. Optionally, these parts are surface hardened, for example by gaseous nitriding. After gaseous nitriding, apart from the extreme nitrided surface of the parts, the hardness of the steel is between approximately 430 HB and 530 HB.
By way of example and comparison, the analyses compiled in
Table 1, of which certain characteristics are compiled in
Table 2, are considered.
Examples 1 to 6, 9 to 12 and 14 to 16 correspond to the invention and examples 17, 18, 20 and 21 are given by way of comparison. These steels do not contain additions of selenium, tellurium, lead, bismuth or calcium. However, they contain a little sulphur, between 0.010% and 0.020%.
For all these steels, the hardness HB has also been determined in the tempered quenched state, in other words for a martensitic or martensito-bailnitic structure tempered at 550°C, as well as the hardness HVHAZ in the heat-affected zone in the vicinity of a weld which has been compared with the hardness HVbasic of the basic metal not affected by the heat.
These results are also compiled in Table 1.
These two tables show that, with a comparable hardness (HB) and comparable coefficient of hardness Dr, the steels according to the invention have better machinability (lower
U/Dr ratio) than the steels given by way of comparison. In addition, they are better suited for repair by welding and, in particular, have a more uniform response to polishing after repair than the steels given by way of comparison since the hardness in HAZ is lower and, in particular, the HVHAZ to basic HV ratio is lower. In the steels according to the invention, the ratio of HVHAZ/HVbasic does not actually exceed 1.20 when the carbon is less than or equal to 0.35%.
Table 1 cc ec A cd Ed
Ht EG a
Ela EL 1 0 lc cH
RN
I tT Gc he a oc) A A EE
Nl J a NO lO EE EE
Rl ch a a J cH EN EO
A cc Ka EE EL EA
Rl ch ll CB
Rt cd cc 0 0 a A
Rt all Cc EH KO
RE Cc a cc a
Jt a A
Ei 2 a A a 0 * boron, nitrogen, titanium and aluminium are expressed in thousandths of %
Table 2 al ch i
I a Ll i I
IE a MCE al il LEC
I Mc ET NE I RL
Il a ME I i a REL lH TC cl Il a ME
Bl Ha Ral I ll Bc BLL
BE I Cl cal Ba
These steels are suitable for the manufacture of parts of moulds for the injection moulding of plastics materials. But they are also suitable for the manufacture of metal-working tool parts.

Claims (1)

  1. Claims
    1. Steel block for the manufacture of moulds for the injection moulding of plastics material or the moulding of metals or for the manufacture of metal-working parts, having a thickness greater than 20 mm, of which the structure is completely martensitic or martensito-bainitic, of which the hardness at all points is between 430 HB and 530 HB and of which the chemical composition of the steel comprises, in % by weight:
    0.180% £ C £ 0.400% Si £ 0.8% Mn £ 2.5% Ni £ 3% Cr £ 3.5% Mo + W/2 £ 2.8% V + Nb/2 + Ta/4 £ 0.5% Al £ 0.4% Ti + Zr/2 < 0.1% - boron in a content of between 0.0005% and 0.015%, - cptionally one or more elements from among sulphur, selenium and tellurium, the sum of contents of these elements being less than or equal to 0.2%, - optionally one or more elements from among lead and bismuth, the sum of contents of these elements being less than or equal to 0.2%, - optionally calcium in a content of less than or equal to
    0.1%,
    the remainder being iron and impurities resulting from production, the copper being an impurity, the chemical composition also satisfying the following equations:
    3.2 £ Tr £9 85 < Dr £ 95 U/Dr < 10.0 Mo* + 3xV* => 0.4% in which, for contents expressed in %: Tr = 1.8xC + 1.1xMn + 0.7xNi + 0.6xCr + 1.6xMo* + K wherein X = 0 if the steel does not contain boron and K = 0.5 if the steel contains boron Dr = 54xC%? + 24.5x(Mo* + 3xv*)%3% 4+ 1.58xMn + 0.74xNi +
    1.8x81 + 12.5% (Cr)%?° U = 1600xC + 100x(0.25%xCr + Mo* + 4.5xV¥*) R = 3.8xC + 10xSi + 3.3xMn + 2.4xNi + 1.4x(Cr + Mox) Mo* = Mo + W/2 V* = V + Nb/2 + Ta/4 the contents of boren, aluminium, titanium, zirconium and nitrogen, expressed in thousandths of % by weight, being such that: 1 B22 — x KL + 0.5 3 wherein Kl = Min (I*;J¥*)
    I = Min(N; N-0.29(Ti+Zx/2-5)) J = Min (Ni0.5(N-0.52 41+ [N-0.52 AT +289)
    2. Steel block according to claim 1, of which the chemical composition is such that R > 11
    3. Steel block according to claim 1 or claim 2, characterised in that R £ 2.7xTr
    4. Steel block according to any of claims 1 to 3, characterised in that the silicon content 1s strictly less than 0.45 % by weight and the carbon content less than or equal to 0.35 % by weight.
    5. Steel block according to any of claims 1 to 4, characterised in that R/(2.7xTr) < 0.90.
    6. Steel block according to claim 5, characterised in that R/(2.7xTr) < 0.80.
    7. Steel block according to any of claims 1 to 6, characterised in that U/Dr < 9.0.
    8. steel block according to claim 7, characterised in that the composition is such that:
    0.230% £ C £ 0.350%
    Si £ 0.30%
    0.1% £< Mn £ 1.8% Ni £ 2%
    0.2% < Cr £ 3% Mo + W/2 £ 2.5% V + Nb/2 + Ta/4 £ 0.3% Mo* + 3xV* > 0.8%
    9. Steel block according to claim 8, characterised in that its composition is such that:
    0.240% < C £ 0.320% Si £ 0.15%
    0.1% < Mn £ 1.6% Ni £ 2%
    0.2% < Cr £ 2.5%
    0.3% < Mo + W/2 £ 2.5% V + Nb/2 + Ta/4 £ 0.3% Mo* + 3xV* > 1.2%
    10. Steel block according to claim 8 or 9, characterised in that Tr > 4.5.
    11. Steel mould part machined in a block according to any of claims 1 to 10, of which at least a portion of the surface is hardened by nitriding and of which the hardness at all points is between 430 HB and 530 HB.
ZA2004/07399A 2002-04-03 2004-09-15 Bulk steel for the production of injection moulds for plastic material or for the production of pieces for working metals ZA200407399B (en)

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FR0204115A FR2838138B1 (en) 2002-04-03 2002-04-03 STEEL FOR THE MANUFACTURE OF PLASTIC INJECTION MOLDS OR FOR THE MANUFACTURE OF WORKPIECES FOR METAL WORKING
PCT/FR2003/001013 WO2003083153A1 (en) 2002-04-03 2003-04-01 Bulk steel for the production of injection moulds for plastic material or for the production of pieces for working metals

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Families Citing this family (41)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7229665B2 (en) 2001-05-22 2007-06-12 Millipore Corporation Process of forming multilayered structures
KR100836699B1 (en) * 2005-10-27 2008-06-10 히타치 긴조쿠 가부시키가이샤 Die steel
US20080073006A1 (en) * 2006-09-27 2008-03-27 Henn Eric D Low alloy steel plastic injection mold base plate, method of manufacture and use thereof
WO2009018522A1 (en) 2007-08-01 2009-02-05 Ati Properties, Inc. High hardness, high toughness iron-base alloys and methods for making same
US8444776B1 (en) 2007-08-01 2013-05-21 Ati Properties, Inc. High hardness, high toughness iron-base alloys and methods for making same
RU2365664C1 (en) * 2007-12-03 2009-08-27 Открытое акционерное общество "КАМАЗ-Металлургия" Alloy structural steel largely for cold die forging
RU2361008C1 (en) * 2008-04-17 2009-07-10 Юлия Алексеевна Щепочкина Die steel
RU2361963C1 (en) * 2008-04-17 2009-07-20 Юлия Алексеевна Щепочкина Die steel
EP2123787A1 (en) * 2008-05-06 2009-11-25 Industeel Creusot High-grade steel for massive parts.
JP5412851B2 (en) * 2009-01-29 2014-02-12 大同特殊鋼株式会社 Steel for plastic molds and plastic molds
US9182196B2 (en) 2011-01-07 2015-11-10 Ati Properties, Inc. Dual hardness steel article
ES2716421T3 (en) * 2011-06-15 2019-06-12 Buderus Edelstahl Gmbh Tool steel for high performance hot forming tools as well as its production process
US9657363B2 (en) * 2011-06-15 2017-05-23 Ati Properties Llc Air hardenable shock-resistant steel alloys, methods of making the alloys, and articles including the alloys
EP2746419A1 (en) * 2012-12-20 2014-06-25 Sandvik Intellectual Property AB Bainitic steel for rock drilling component
CN103334061B (en) * 2013-06-18 2016-01-20 上海大学 High thermal conductivity large section die-casting die steel and preparation thereof and heat treating method
SI2789699T1 (en) * 2013-08-30 2017-06-30 Rautaruukki Oyj A high-hardness hot-rolled steel product, and a method of manufacturing the same
AT515157B1 (en) * 2013-11-21 2016-12-15 Böhler Edelstahl GmbH & Co KG Process for producing plastic molds from martensitic chromium steel and plastic mold
KR20150061516A (en) * 2013-11-27 2015-06-04 두산중공업 주식회사 Mold Steel and Manufacturing Method Thereof
JP6645725B2 (en) * 2014-04-30 2020-02-14 大同特殊鋼株式会社 Mold steel and mold
RU2555319C1 (en) * 2014-09-15 2015-07-10 Федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Южно-Уральский государственный университет" (национальный исследовательский университет) (ФГБОУ ВПО "ЮУрГУ" (НИУ)) Easy treated structural chrome-manganese-nickel-molybdenum steel
RU2561558C1 (en) * 2014-09-15 2015-08-27 Федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Южно-Уральский государственный университет" (национальный исследовательский университет) (ФГБОУ ВПО "ЮУрГУ" (НИУ)) Easy-to-machine structural chromium-manganese-nickel steel
RU2586933C1 (en) * 2015-06-08 2016-06-10 Федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Южно-Уральский государственный университет" (национальный исследовательский университет) (ФГБОУ ВПО "ЮУрГУ" (НИУ)) Martensite corrosion-resistant chrome-containing steel with improved machinability
DE102015113058A1 (en) 2015-08-07 2017-02-09 Böhler Edelstahl GmbH & Co. KG Method for producing a tool steel
CN105063514B (en) * 2015-09-07 2017-05-10 宁波瑞国精机工业有限公司 Iron chain pin for vehicles and processing method thereof
CN105112802B (en) * 2015-09-09 2017-10-27 滁州迪蒙德模具制造有限公司 A kind of method for preparing wear-resistant plastic mould
CN105112801B (en) * 2015-09-09 2017-05-17 滁州迪蒙德模具制造有限公司 Manufacturing method for nonmetal mold
TWI756226B (en) 2016-06-30 2022-03-01 瑞典商伍德赫爾恩股份有限公司 A steel for a tool holder
JP7069654B2 (en) * 2017-11-14 2022-05-18 大同特殊鋼株式会社 Mold repair welding material
CN108220810A (en) * 2017-12-29 2018-06-29 钢铁研究总院 High tough high temperature nitriding steel of a kind of high abrasion and preparation method thereof
US10760150B2 (en) * 2018-03-23 2020-09-01 General Electric Company Martensitic alloy component and process of forming a martensitic alloy component
JP7167483B2 (en) * 2018-05-15 2022-11-09 大同特殊鋼株式会社 Steel for die casting molds and die casting molds
DE102018207888A1 (en) * 2018-05-18 2019-11-21 Volkswagen Aktiengesellschaft Steel material and method for producing a steel material
CN108774712A (en) * 2018-06-21 2018-11-09 河南中原特钢装备制造有限公司 Superelevation thermal conductivity hot stamping die steel and its manufacturing method
JP2020132891A (en) * 2019-02-12 2020-08-31 山陽特殊製鋼株式会社 Mold steel with excellent thermal conductivity
JP7544488B2 (en) * 2020-02-13 2024-09-03 山陽特殊製鋼株式会社 Hot work tool steel with excellent manufacturability and thermal conductivity
JP7524586B2 (en) * 2020-04-10 2024-07-30 大同特殊鋼株式会社 Case hardening steel, high strength member and manufacturing method thereof
WO2021208181A1 (en) * 2020-04-14 2021-10-21 北京科技大学 Low-temperature, high-toughness, high-temperature, high-intensity and high-hardenability hot mold steel and preparation method therefor
DE102020134484A1 (en) * 2020-12-21 2022-06-23 Preh Gmbh Manufacturing process for an optically improved plastic composite cover and associated arrangement of the plastic composite cover and a carrier
JP7772618B2 (en) * 2022-03-01 2025-11-18 山陽特殊製鋼株式会社 Hot work tool steel with excellent thermal conductivity
CN114875335A (en) * 2022-05-31 2022-08-09 宝武集团鄂城钢铁有限公司 Pre-hardened mirror plastic die steel with uniform section hardness
CN115786819A (en) * 2022-12-09 2023-03-14 广东新兴铸管有限公司 Large-pipe-diameter pipe die with long service life and high metallurgical quality and preparation method thereof

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR1551909A (en) * 1967-08-08 1969-01-03
JPH0250910A (en) * 1988-08-15 1990-02-20 Nippon Steel Corp Manufacturing method of mold steel plate with good thermal fatigue properties
SU1622418A1 (en) * 1989-01-10 1991-01-23 Специальное Конструкторско-Технологическое Бюро Металловедения С Опытным Заводом "Кристалл" Ан Азсср Die steel
AT392982B (en) * 1989-04-24 1991-07-25 Boehler Gmbh MARTENSITABLE STEEL
JP2881869B2 (en) * 1989-12-06 1999-04-12 大同特殊鋼株式会社 Steel for plastic molds with excellent weldability
DE4223895C1 (en) * 1992-07-21 1994-03-17 Thyssen Stahl Ag Process for the production of thick armored sheets
JP3440547B2 (en) * 1994-04-11 2003-08-25 大同特殊鋼株式会社 High hardness precipitation hardening mold material
FR2726287B1 (en) * 1994-10-31 1997-01-03 Creusot Loire LOW ALLOY STEEL FOR THE MANUFACTURE OF MOLDS FOR PLASTICS OR FOR RUBBER
JPH08165542A (en) * 1994-12-08 1996-06-25 Daido Steel Co Ltd Steel for plastic molds with excellent weldability
FR2729974B1 (en) * 1995-01-31 1997-02-28 Creusot Loire HIGH DUCTILITY STEEL, MANUFACTURING PROCESS AND USE
FR2733516B1 (en) * 1995-04-27 1997-05-30 Creusot Loire STEEL AND PROCESS FOR THE MANUFACTURE OF PARTS WITH HIGH ABRASION RESISTANCE
CN1106454C (en) * 1995-05-25 2003-04-23 空气及水株式会社 Nitrizing for steel
FR2745587B1 (en) * 1996-03-01 1998-04-30 Creusot Loire STEEL FOR USE IN PARTICULAR FOR THE MANUFACTURE OF MOLDS FOR INJECTION OF PLASTIC MATERIAL
FR2748036B1 (en) * 1996-04-29 1998-05-22 Creusot Loire LOW ALLOYED STEEL FOR THE MANUFACTURE OF MOLDS FOR PLASTIC MATERIALS
SE506918C2 (en) * 1996-06-26 1998-03-02 Uddeholm Tooling Ab Steel alloy, steel product made from the alloy and use of the alloy / product
FR2764308B1 (en) * 1997-06-04 1999-07-23 Thyssen France Sa PROCESS FOR THE MANUFACTURE OF A STEEL FOR LARGE DIMENSION MOLDS
CA2323952A1 (en) * 1999-01-28 2000-08-03 Yasutaka Okada Machine structural steel product
KR20020031557A (en) * 2000-10-21 2002-05-02 이계안 Alloy composition for plastic injection molding

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