CN102433510A - Iron-based powder metallurgy alloy with high strength and high toughness and preparation method thereof - Google Patents

Iron-based powder metallurgy alloy with high strength and high toughness and preparation method thereof Download PDF

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CN102433510A
CN102433510A CN2011104039806A CN201110403980A CN102433510A CN 102433510 A CN102433510 A CN 102433510A CN 2011104039806 A CN2011104039806 A CN 2011104039806A CN 201110403980 A CN201110403980 A CN 201110403980A CN 102433510 A CN102433510 A CN 102433510A
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潘冶
吴建全
申承秀
王春官
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Southeast University
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Abstract

The invention relates to an iron-based powder metallurgy alloy with high strength and high toughness and a preparation method thereof. The preparation method comprises the following steps of: mixing diffused alloying powder Fe-1.75Ni-0.5Mo-1.5Cu, high-carbon ferrochromium powder, high-carbon ferromanganese powder, ceria powder, graphite powder and zinc stearate powder for 1 hour in a ball milling mixer, performing pressure molding, sintering for 1 hour at the temperature of between 1,200 and 1,260 DEG C, and thus obtaining the iron-based powder metallurgy alloy. Based on the mass of the diffused alloying powder Fe-1.75Ni-0.5Mo-1.5Cu, the adding amounts of the high-carbon ferrochromium powder, the high-carbon ferromanganese powder, the ceria powder, the graphite powder and the lubricating agent powder are respectively 1 to 5 percent, 1 to 4 percent, 0.1 to 0.8 percent, 0.1 to 0.7 percent and 0.4 to 0.9 percent; the mass ratio of carbon, chromium and iron in the added high-carbon ferrochromium powder is 1: (7-8): (2-3); and the mass ratio of carbon, manganese and iron in the added high-carbon ferromanganese powder is 1: (9-10): (4-5).

Description

High-strength and high ductility ferrous based powder metallurgical Alloy And Preparation Method
Technical field
The present invention relates to a kind of high-strength and high ductility ferrous based powder metallurgical Alloy And Preparation Method.
Background technology
The ferrous based powder metallurgical structural part need not machining, has practiced thrift material and manufacturing procedure, has practiced thrift cost greatly.The mmaterial segregation is little in addition, organizes more evenly, so the ferrous based powder metallurgical product is widely used in automobile, agricultural tools, the household electrical appliance.The ratio of employed ferrous based powder metallurgical product is in rising trend in each automobile in nearly decades.Yet the iron-base powder metallurgy material mesoporosity is more, and alloy strength toughness is lower, has limited its further use.
The domestic method that improves mmaterial at present is for adding expensive alloy element (like Ni, Mo etc.), improve pressing process, increasing the subsequent disposal operation.Yet expensive alloying element has increased considerably the cost of material; Temperature and pressure, fast compacting waits needs new equipment and instrument, and the present invention does not conflict with compacting method such as temperature and pressure; And ooze the use that subsequent disposal such as copper have increased the operation and the energy, increase considerably cost and production cycle.
Summary of the invention
The purpose of this invention is to provide a kind of high-strength and high ductility ferrous based powder metallurgical Alloy And Preparation Method; Can obtain ys through the present invention is that 520-566MPa, tensile strength are that 900-953MPa, hardness are 94-101HRB, and impelling strength is the ferrous based powder metallurgical alloy of 27-31J.
The present invention adopts following technical scheme:
A kind of high-strength and high ductility ferrous based powder metallurgical Alloy And Preparation Method:
Be that particle diameter is placed ball mill mixing machine on batch mixing 1 hour less than 300 purpose Graphite Powder 99s and particle diameter less than 100 purpose lubricant powders less than 200 purpose cerium oxide powder, particle diameter less than 200 purpose high carbon ferromanganese powder, particle diameter less than 200 purpose high carbon ferro-chrome powder, particle diameter less than 100 purpose diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu, particle diameter; Compression moulding again; Obtain green compact, and green density is controlled at 6.9-7.2g/cm 3, 1200-1260 ℃ of following sintering 1 hour, finally obtain the ferrous based powder metallurgical alloy at last.
Said diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu is common commercial commercial powder.
The addition of said high carbon ferro-chrome powder, high carbon ferromanganese powder, cerium oxide powder, powdered graphite and lubricant powder is 1-5%, 1-4%, 0.1-0.8%, 0.1-0.7%, the 0.4-0.9% of diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu quality; Mass ratio between carbon, chromium and the iron in the high carbon ferro-chrome powder that is added is 1: 7-8: 2-3, the mass ratio between carbon, manganese and the iron in the high carbon ferromanganese powder that is added is 1: 9-10: 4-5.
Said lubricant powder is a Zinic stearas.
Compared with prior art, the present invention has following advantage:
Chrome iron powder, the ferromanganese powder price of 1, adding are cheaper, be easy to obtain, and have reduced the use of expensive alloy element Ni, Mo.High carbon ferro-chrome, high carbon ferromanganese are easy to grind and process powder in addition.
2, need not martensite, the lower bainite tissue that special process for cooling can obtain high strength and high hardness.
3, need not extra procedure and equipment, flow process is simple
4, prepared alloy satisfies HS, H.T. and high firmness simultaneously, has widened the Application Areas of iron-base powder metallurgy material.
Description of drawings
The mechanical property contrast of the ferrous based powder metallurgical alloy of Fig. 1 the present invention preparation and other alloys.
The density of Fig. 2 the present invention preparation is 7.0g/cm 3Ferrous based powder metallurgical alloy organizing structure.
The density of Fig. 3 the present invention preparation is 7.0g/cm 3The stretching fracture pattern of ferrous based powder metallurgical alloy.
The density of Fig. 4 the present invention preparation is 7.15g/cm 3Ferrous based powder metallurgical alloy organizing structure.
The density of Fig. 5 the present invention preparation is 7.15g/cm 3The stretching fracture pattern of ferrous based powder metallurgical alloy.
Upper bainite/divorce pearlitic structure in the ferrous based powder metallurgical alloy of Fig. 6 the present invention preparation.
Lower bainite tissue in the ferrous based powder metallurgical alloy of Fig. 7 the present invention preparation.
Martensitic stucture in the ferrous based powder metallurgical alloy of Fig. 8 the present invention preparation.
Embodiment
A kind of high-strength and high ductility ferrous based powder metallurgical Alloy And Preparation Method:
Be that particle diameter is placed ball mill mixing machine on batch mixing 1 hour less than 300 purpose Graphite Powder 99s and particle diameter less than 100 purpose lubricant powders less than 200 purpose cerium oxide powder, particle diameter less than 200 purpose high carbon ferromanganese powder, particle diameter less than 200 purpose high carbon ferro-chrome powder, particle diameter less than 100 purpose diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu, particle diameter; Compression moulding again; Obtain green compact, and green density is controlled at 6.9-7.2g/cm 3, 1200-1260 ℃ of following sintering 1 hour, finally obtain the ferrous based powder metallurgical alloy at last.
Said diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu is common commercial commercial powder.
The addition of said high carbon ferro-chrome powder, high carbon ferromanganese powder, cerium oxide powder, powdered graphite and lubricant powder is 1-5%, 1-4%, 0.1-0.8%, 0.1-0.7%, the 0.4-0.9% of diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu quality; Mass ratio between carbon, chromium and the iron in the high carbon ferro-chrome powder that is added is 1: 7-8: 2-3; Mass ratio between carbon, manganese and the iron in the high carbon ferromanganese powder that is added is 1: 9-10: 4-5; In the present embodiment; The addition of said high carbon ferro-chrome powder, high carbon ferromanganese powder, cerium oxide powder, powdered graphite and lubricant powder can be 1%, 1%, 0.1%, 0.1%, 0.4%, 3%, 2%, 0.4%, 0.3%, 0.7% or 5%, 4%, 0.8%, 0.7%, 0.9% of diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu quality.
Said lubricant powder is a Zinic stearas.
1-concrete technology of the present invention is following:
1, carbon content is made up of the carbon in the high carbon ferromanganese, carbon and Graphite Powder 99 three parts in the high carbon ferro-chrome in the powder behind the batch mixing, and total carbon content accounts for that the quality of powder very is controlled at 0.3-0.8% behind the batch mixing.
2, the total amount of powder and mill ball is not higher than 1/3 of ball grinder volume during ball milling, and ball milling speed is 70r/min.
3, sintering atmosphere is an ammonia dissolving atmosphere during sintering, and the atmosphere dew point is not higher than-20 ℃, and the reduction of dew point helps the raising of alloy obdurability.
4, the heat-up rate of pressed compact is controlled at 10-20 ℃/min during sintering, in addition should 700 ℃ down insulation 20-30min to reach the purpose of degreasing.
Comparative example 1: alloy and other alloys 1 of the present invention's preparation are compared with other alloys 2.Following table is the composition and the technology contrast of alloy and other alloys of the present invention's preparation.As shown in Figure 1, the bright alloy for preparing of this law has HS and H.T. simultaneously, and compares with other alloys 2, contains the Ni of costliness still less in the ferrous based powder metallurgical of the present invention's preparation, has reduced cost, and has had higher hardness.
Alloy and the composition of other alloys and the contrast of technology of the present invention's preparation
Figure BDA0000117318260000031
Embodiment 1: particle diameter is placed ball mill mixing machine on batch mixing 1 hour less than 300 purpose Graphite Powder 99s and particle diameter less than 100 purpose lubricant powders less than 200 purpose cerium oxide powder, particle diameter less than 200 purpose high carbon ferromanganese powder, particle diameter less than 200 purpose high carbon ferro-chrome powder, particle diameter less than 100 purpose diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu, particle diameter, and being pressed into and being pressed into density again is 7.0g/cm 3Green compact, 1200-1260 ℃ of following sintering 1 hour, finally obtaining ys was that 540MPa, tensile strength are that 848MPa, hardness are that 95HRB, impelling strength are the ferrous based powder metallurgical alloy of 27J/cm3 at last.
Said diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu is common commercial commercial powder.
The addition of said high carbon ferro-chrome powder, high carbon ferromanganese powder, cerium oxide powder, powdered graphite and lubricant powder is 1-5%, 1-4%, 0.1-0.8%, 0.1-0.7%, the 0.4-0.9% of diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu quality; Mass ratio between carbon, chromium and the iron in the high carbon ferro-chrome powder that is added is 1: 7-8: 2-3, the mass ratio between carbon, manganese and the iron in the high carbon ferromanganese powder that is added is 1: 9-10: 4-5.
Said lubricant powder is a Zinic stearas.
As shown in Figure 2, the alloy organizing structure is made up of hole, ferritic, upper bainite/divorce perlite, lower bainite and martensite.
As shown in Figure 3, stretching fracture effluent stream style, the brilliant brittle rupture characteristic of dimple and edge of alloy constitute, and wherein river pattern is less, and is very high along brilliant brittle rupture characteristic ratio.
Embodiment 2: particle diameter is placed ball mill mixing machine on batch mixing 1 hour less than 300 purpose Graphite Powder 99s and particle diameter less than 100 purpose lubricant powders less than 200 purpose cerium oxide powder, particle diameter less than 200 purpose high carbon ferromanganese powder, particle diameter less than 200 purpose high carbon ferro-chrome powder, particle diameter less than 100 purpose diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu, particle diameter, and being pressed into and being pressed into density again is 7.15g/cm 3Green compact, at last 1200-1260 ℃ of following sintering 1 hour, final ys is that 564MPa, tensile strength are that 949MPa, hardness are that 97HRB, impelling strength are 30J/cm 3The ferrous based powder metallurgical alloy.
Said diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu is common commercial commercial powder.
The addition of said high carbon ferro-chrome powder, high carbon ferromanganese powder, cerium oxide powder, powdered graphite and lubricant powder is 1-5%, 1-4%, 0.1-0.8%, 0.1-0.7%, the 0.4-0.9% of diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu quality; Mass ratio between carbon, chromium and the iron in the high carbon ferro-chrome powder that is added is 1: 7-8: 2-3, the mass ratio between carbon, manganese and the iron in the high carbon ferromanganese powder that is added is 1: 9-10: 4-5.
Said lubricant powder is a Zinic stearas.
As shown in Figure 4, density is 7.15g/cm 3Ferrous based powder metallurgical alloy organizing structure form by hole, ferritic, upper bainite/divorce perlite, lower bainite and martensite, but hole is less.
As shown in Figure 5, density is 7.15g/cm 3The ferrous based powder metallurgical alloy stretching fracture effluent stream style, dimple and constitute along brilliant brittle rupture characteristic, the river pattern ratio is higher, dimple is more.
Embodiment 3: a kind of high-strength and high ductility ferrous based powder metallurgical Alloy And Preparation Method:
Be that particle diameter is placed ball mill mixing machine on batch mixing 1 hour less than 300 purpose Graphite Powder 99s and particle diameter less than 100 purpose lubricant powders less than 200 purpose cerium oxide powder, particle diameter less than 200 purpose high carbon ferromanganese powder, particle diameter less than 200 purpose high carbon ferro-chrome powder, particle diameter less than 100 purpose diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu, particle diameter; Compression moulding again; Obtain green compact, and green density is controlled at 6.9-7.2g/cm 3, 1200-1260 ℃ of following sintering 1 hour, finally obtain the ferrous based powder metallurgical alloy at last.
Said diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu is common commercial commercial powder.
The addition of said high carbon ferro-chrome powder, high carbon ferromanganese powder, cerium oxide powder, powdered graphite and lubricant powder is 1-5%, 1-4%, 0.1-0.8%, 0.1-0.7%, the 0.4-0.9% of diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu quality; Mass ratio between carbon, chromium and the iron in the high carbon ferro-chrome powder that is added is 1: 7-8: 2-3, the mass ratio between carbon, manganese and the iron in the high carbon ferromanganese powder that is added is 1: 9-10: 4-5.
Said lubricant powder is a Zinic stearas.
The known method that can adopt of said green density control confirms, that is: the powder through the weighing certain mass presses down at different pressure and processes standard specimen (for example: tensile test specimen or impact test piece) and control green density, specifically,
(1) quantitatively take by weighing powder behind batch mixing on the ball mill mixing machine, then the powder compression behind the batch mixing is become standard specimen, the density of measurement standard test specimen again,
(2) the continuous quality of the powder behind the batch mixing that taken by weighing of adjustment repeats (1), is 6.9-7.2g/cm until the density of standard specimen 3Thereby, obtain the quality of powder behind the batch mixing, the volume and the green density of green compact is 6.9-7.2g/cm 3Between relation, be 6.9-7.2g/cm according to the quality of powder behind the batch mixing, the volume and the green density of green compact again 3Between relation; The quality of powder behind the batch mixing is suppressed in corresponding the waiting of final volume that calculates green compact; At last, according to waiting of calculating suppress the quality of powder behind the batch mixing take by weighing behind the batch mixing powder and with the final volume of the powder compression behind the batch mixing that is taken by weighing to green compact.
With reference to Fig. 1, the mechanical property contrast of the alloy of the present invention's preparation and other alloys in the comparative example 1, the alloy of the present invention's preparation has HS and H.T. simultaneously.
With reference to Fig. 2, the ferrous based powder metallurgical alloy organizing structure for preparing among the embodiment 1 is made up of hole, ferritic, upper bainite/divorce perlite, lower bainite and martensite.
With reference to Fig. 3, the stretching fracture pattern of the ferrous based powder metallurgical alloy for preparing among the embodiment 1, effluent stream style, the brilliant brittle rupture characteristic of dimple and edge constitute, and wherein river pattern is less, and is very high along brilliant brittle rupture characteristic ratio
With reference to Fig. 4, the ferrous based powder metallurgical alloy organizing structure for preparing among the embodiment 2 be made up of hole, ferritic, upper bainite/divorce perlite, lower bainite and martensite, but hole is less.
With reference to Fig. 5, the stretching fracture pattern of the ferrous based powder metallurgical alloy for preparing among the embodiment 2, effluent stream style, the brilliant brittle rupture characteristic of dimple and edge constitute, and the river pattern ratio is higher, dimple is more.
With reference to Fig. 6, the upper bainite/divorce pearlitic structure among the embodiment 2 in the ferrous based powder metallurgical alloy microstructure of preparation, this organizes toughness higher, but intensity is lower.
With reference to Fig. 7, the lower bainite tissue among the embodiment 2 in the ferrous based powder metallurgical alloy microstructure of preparation, this tissue has good obdurability.
With reference to Fig. 8, the martensitic stucture among the embodiment 2 in the ferrous based powder metallurgical alloy microstructure of preparation, this tissue intensity is high, hardness is high, but toughness is lower.

Claims (3)

1. high-strength and high ductility ferrous based powder metallurgical alloy; It is characterized in that; Comprise: particle diameter less than 100 purpose diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu, particle diameter less than 200 purpose high carbon ferro-chrome powder, particle diameter less than 200 purpose high carbon ferromanganese powder, particle diameter less than 200 purpose cerium oxide powder, particle diameter less than 300 purpose Graphite Powder 99s and particle diameter less than 100 purpose lubricant powders; Said diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu is that particle diameter is less than the common commercial commercial powder of 100 purposes; The addition of said high carbon ferro-chrome powder, high carbon ferromanganese powder, cerium oxide powder, powdered graphite and lubricant powder is 1-5%, 1-4%, 0.1-0.8%, 0.1-0.7%, the 0.4-0.9% of diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu quality; Mass ratio between carbon, chromium and the iron in the high carbon ferro-chrome powder that is added is 1: 7-8: 2-3; Mass ratio between carbon, manganese and the iron in the high carbon ferromanganese powder that is added is 1: 9-10: 4-5; Said lubricant powder is a Zinic stearas, and the density of said high-strength and high ductility ferrous based powder metallurgical alloy is 6.9-7.2g/cm 3, ys is that 520-566MPa, tensile strength are that 900-953MPa, hardness are that 94-101HRB, impelling strength are 27-31J.
2. the preparation method of a high-strength and high ductility ferrous based powder metallurgical alloy is characterized in that:
Particle diameter is placed ball mill mixing machine on batch mixing 1 hour less than 300 purpose Graphite Powder 99s and particle diameter less than 100 purpose lubricant powders less than 200 purpose cerium oxide powder, particle diameter less than 200 purpose high carbon ferromanganese powder, particle diameter less than 200 purpose high carbon ferro-chrome powder, particle diameter less than 100 purpose diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu, particle diameter; Compression moulding again; Obtain green compact; And green density is controlled at 6.9-7.2g/cm3; 1200-1260 ℃ of following sintering 1 hour, finally obtain the ferrous based powder metallurgical alloy at last
The addition of said high carbon ferro-chrome powder, high carbon ferromanganese powder, cerium oxide powder, powdered graphite and lubricant powder is 1-5%, 1-4%, 0.1-0.8%, 0.1-0.7%, the 0.4-0.8% of diffusion alloyed powder Fe-1.75Ni-0.5Mo-1.5Cu quality; Mass ratio between carbon, chromium and the iron in the high carbon ferro-chrome powder that is added is 1: 7-8: 2-3, the mass ratio between carbon, manganese and the iron in the high carbon ferromanganese powder that is added is 1: 9-10: 4-5.
3. preparation method according to claim 2 is characterized in that: said lubricant powder is a Zinic stearas.
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CN102672176A (en) * 2012-05-23 2012-09-19 海安县鹰球集团有限公司 High-abrasion-resistance powder metallurgical spherical hinge for excavating machine and manufacture method of spherical hinge
CN102814495A (en) * 2012-09-10 2012-12-12 北京科技大学 Method for improving iron powder forming property
CN103521757A (en) * 2013-10-22 2014-01-22 东南大学 Powder metallurgy iron copper-based oiliness antifriction material containing rare earth oxides and preparing method
CN104550922A (en) * 2014-12-25 2015-04-29 铜陵市经纬流体科技有限公司 Powder metallurgy material for high-finish-degree valve and preparation method of powder metallurgy material
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CN102814495A (en) * 2012-09-10 2012-12-12 北京科技大学 Method for improving iron powder forming property
CN102814495B (en) * 2012-09-10 2014-09-17 北京科技大学 Method for improving iron powder forming property
CN103521757A (en) * 2013-10-22 2014-01-22 东南大学 Powder metallurgy iron copper-based oiliness antifriction material containing rare earth oxides and preparing method
CN103521757B (en) * 2013-10-22 2015-10-28 东南大学 Containing powder metallurgy iron copper base oil-containing antifriction material and the preparation method of rare earth oxide
CN104550922A (en) * 2014-12-25 2015-04-29 铜陵市经纬流体科技有限公司 Powder metallurgy material for high-finish-degree valve and preparation method of powder metallurgy material
CN104550919A (en) * 2014-12-25 2015-04-29 铜陵市经纬流体科技有限公司 Heat-resistant powder metallurgy material for valve and preparation method of heat-resistant powder metallurgy material
CN105154768A (en) * 2015-09-10 2015-12-16 苏州莱特复合材料有限公司 Powder metallurgy material for oil-impregnated bearings and preparation method thereof
CN105240487A (en) * 2015-10-19 2016-01-13 泰州市科诚汽车零配件有限公司 Timing belt wheel for battery electric vehicle engine crankshaft and manufacturing method of timing belt wheel
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CN115612942B (en) * 2022-11-07 2024-04-02 山东威达粉末冶金有限公司 High-density iron-based powder metallurgy material and preparation method thereof

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