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[求助] 超级奥氏体不锈钢904L资料求助

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签到天数: 410 天

[LV.9]以坛为家II

发表于 2010-4-25 19:39:19 | 显示全部楼层 |阅读模式
北京中仪天信科技有限公司
接触此材料,超级奥氏体不锈钢904L,资料很少,有此材料的各位专家能否提供一下?有金相那是更好不错,只字片语也行。

签到天数: 4 天

[LV.2]偶尔看看I

发表于 2010-5-14 21:45:07 | 显示全部楼层
四川惊雷做的比较多,有碳钢+904L复合板等。
Stainless Steel – Grade 904L
Chemical Formula
Fe, <0.02% C, 19-23% Cr, 23-28% Ni, 4-5% Mo, <2.0% Mn, <1.0% Si, <0.045% P, <0.035% S, 1.0-2.0% Cu
Topics Covered

Background
904L is a non-stabilised low carbon high alloy austenitic stainless steel. The addition of copper to this grade gives it greatly improved resistance to strong reducing acids, particularly sulphuric acid. It is also highly resistant to chloride attack - both pitting / crevice corrosion and stress corrosion cracking.
This grade is non-magnetic in all conditions and has excellent weldability and formability. The austenitic structure also gives this grade excellent toughness, even down to cryogenic temperatures.
904L does have very substantial contents of the high cost ingredients nickel and molybdenum. Many of the applications in which this grade has previously performed well can now be fulfilled at lower cost by duplex stainless steel 2205 (S31803 or S32205), so it is used less commonly than in the past.
Key Properties
These properties are specified for flat rolled product (plate, sheet and coil) in ASTM B625. Similar but not necessarily identical properties are specified for other products such as pipe, tube and bar in their respective specifications.
Composition
Table 1. Composition ranges for 904L grade of stainless steels.
Grade        C        Mn        Si        P        S        Cr        Mo        Ni        Cu
904L        min.
max.        -
0.020        -
2.00        -
1.00        -
0.045        -
0.035        19.0
23.0        4.0
5.0        23.0
28.0        1.0
2.0
                                                                               
Mechanical Properties
Table 2. Mechanical properties of 904L grade stainless steels.
Grade        Tensile Strength (MPa) min        Yield Strength 0.2% Proof (MPa) min        Elongation (% in 50mm) min        Hardness
                                Rockwell B (HR B)        Brinell (HB)
904L        490        220        35        70-90 typical        -
Rockwell Hardness value range is typical only; other values are specified limits.
Physical Properties
Table 3. Typical physical properties for 904L grade stainless steels.
Grade        Density
(kg/m3)        Elastic Modulus
(GPa)        Mean Co-eff of Thermal Expansion (&micro;m/m/°C)        Thermal Conductivity
(W/m.K)        Specific Heat 0-100°C
(J/kg.K)        Elec Resistivity
(nΩ.m)
                        0-100°C        0-315°C        0-538°C        At 20°C        At 500°C               
904L        8000        200        15        -        -        13        -        500        850
Grade Specification Comparison
Table 4. Grade specifications for 904L grade stainless steels.
Grade        UNS No        Old British        Euronorm        Swedish SS        Japanese JIS
                BS        En        No        Name               
904L        N08904        904S13        -        1.4539        X1NiCrMoCuN25-20-5        2562        -
These comparisons are approximate only. The list is intended as a comparison of functionally similar materials not as a schedule of contractual equivalents. If exact equivalents are needed original specifications must be consulted.
Possible Alternative Grades
Table 5. Possible alternative grades to 904L stainless steel.
Grade        Why it might be chosen instead of 904L
316L        A lower cost alternative, but with much lower corrosion resistance.
6Mo        A higher resistance to pitting and crevice corrosion resistance is needed.
2205        A very similar corrosion resistance, with the 2205 having higher mechanical strength, and at a lower cost to 904L. (2205 not suitable for temperatures above 300°C.)
Super duplex        Higher corrosion resistance is needed, together with a higher strength than 904L.
Corrosion Resistance
Although originally developed for its resistance to sulphuric acid it also has a very high resistance to a wide range of environments. A PRE of 35 indicates that the material has good resistance to warm sea water and other high chloride environments. High nickel content results in a much better resistance to stress corrosion cracking than the standard austenitic grades. Copper adds resistance to sulphuric and other reducing acids, particularly in the very aggressive "mid concentration" range.
In most environments 904L has a corrosion performance intermediate between the standard austenitic grade 316L and the very highly alloyed 6% molybdenum and similar "super austenitic" grades.
In aggressive nitric acid 904L has less resistance than molybdenum-free grades such as 304L and 310L.
For maximum stress corrosion cracking resistance in critical environments the steel should be solution treated after cold work.
Heat Resistance
Good resistance to oxidation, but like other highly alloyed grades suffers from structural instability (precipitation of brittle phases such as sigma) at elevated temperatures. 904L should not be used above about 400°C.
Heat Treatment
Solution Treatment (Annealing) - heat to 1090-1175°C and cool rapidly. This grade cannot be hardened by thermal treatment.
Welding
904L can be successfully welded by all standard methods. Care needs to be taken as this grade solidifies fully austenitic, so is susceptible to hot cracking, particularly in constrained weldments. No pre-heat should be used and in most cases post weld heat treatment is also not required. AS 1554.6 pre-qualifies Grade 904L rods and electrodes for welding of 904L.
Fabrication
904L is a high purity, low sulphur grade, and as such will not machine well. Despite this the grade can be machined using standard techniques.
Bending to a small radius is readily carried out. In most cases this is performed cold. Subsequent annealing is generally not required, although it should be considered if the fabrication is to be used in an environment where severe stress corrosion cracking conditions are anticipated.
Applications
Typical applications include:
&#8226;         Processing plant for sulphuric, phosphoric and acetic acids
&#8226;         Pulp and paper processing
&#8226;         Components in gas scrubbing plants
&#8226;         Seawater cooling equipment
&#8226;         Oil refinery components
&#8226;         Wires in electrostatic precipitators


Source: Atlas Steels Australia

For more information on this source please visit Atlas Steels Australia


Date Added: Nov 7, 2001

签到天数: 410 天

[LV.9]以坛为家II

 楼主| 发表于 2010-5-16 17:01:30 | 显示全部楼层
本帖最后由 盛丽丽 于 2010-5-16 17:03 编辑

谢谢楼上,英语不太好,只能理解一点。现在生产工件里外均是裂纹,分析无法下手,金相也是很难做。很希望能得到一些有用的资料。

签到天数: 1 天

[LV.1]初来乍到

发表于 2010-5-22 09:05:30 | 显示全部楼层
日本冶金做这个比较多 有个资料你可以参考一下
NAS 255   20Cr-24Ni-4.3 Mo-1.5Cu AL   904L&#8482;      N08904  是一个钢种 都是904L
最后问一下 可以问一下你们买的谁的料吗?

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签到天数: 410 天

[LV.9]以坛为家II

 楼主| 发表于 2010-5-22 18:31:26 | 显示全部楼层
我们自己铸造的产品,现在老毛病又犯了,裂纹较多,均沿晶界,有一种理论是铁元素和铜元素冷却不同时,造成的,是否可以解释通?

签到天数: 1 天

[LV.1]初来乍到

发表于 2010-5-24 08:51:07 | 显示全部楼层
对铸造不是特别了解 尤其这种高Ni合金
国内好像没有大厂生产 都是进口小日本的比较多

签到天数: 410 天

[LV.9]以坛为家II

 楼主| 发表于 2010-5-26 19:13:31 | 显示全部楼层
现在铸造认为是固溶时形成的,准备在油里做固溶处理,大家认为可以吗?为什么?

签到天数: 58 天

[LV.5]常住居民I

发表于 2010-5-26 20:35:31 | 显示全部楼层
本帖最后由 烟不离手 于 2010-5-26 20:45 编辑

回复 7# 盛丽丽


         对该钢不是很了解,从楼主的几段描述来看,以前生产是正常的,最近有问题了。提供一个笨笨的思路供参考。
     如果怀疑是冷却过程造成的,不知楼主的工件有多大,材料成本如何,不行就直接留一件在炉内冷却到室温,如无缺陷,那么冷却速度可能是造成缺陷的一个诱导因素,但是该钢本身就要求快冷,窃以为这个可能性不大。即便真的没有裂纹,水冷开裂也不是热处理的责任,还得从熔炼和铸造上找原因。
     那么有没有可能是加热过快的热应力引起的开裂呢?试着控制加热速度,之后水冷、随炉冷分别做几件,就可找出。
     另外,可能还要考虑加热介质的影响,不知道介质中硫含量如何?需要注意介质中硫含量过高时,渗流后与镍在晶界形成镍的硫化物和镍的共晶组织引起晶界开裂。当然,材料中本身硫含量过高,那么这种共晶体早已存在于晶界,也可能造成这种加热过程的沿晶开裂。
     呵呵,只怕热心办坏事,欢迎楼下拍砖。只因个人对此也感兴趣。也望楼主随时上传进展。

签到天数: 410 天

[LV.9]以坛为家II

 楼主| 发表于 2010-5-31 17:18:06 | 显示全部楼层
谢谢楼上的回复,将一件无裂纹的叶轮按楼主所考虑的情况作了实验,未发现裂纹。
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