EP1993760A2 - Low cost bronze powder for high performance bearings - Google Patents

Low cost bronze powder for high performance bearings

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Publication number
EP1993760A2
EP1993760A2 EP07752123A EP07752123A EP1993760A2 EP 1993760 A2 EP1993760 A2 EP 1993760A2 EP 07752123 A EP07752123 A EP 07752123A EP 07752123 A EP07752123 A EP 07752123A EP 1993760 A2 EP1993760 A2 EP 1993760A2
Authority
EP
European Patent Office
Prior art keywords
powder
bearings
bronze
sintered
powders
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP07752123A
Other languages
German (de)
French (fr)
Inventor
Nicola Veloff
Anil Vasant Nadkarni
Thomas Matthew Murphy
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
SCM Metal Products Inc
Original Assignee
SCM Metal Products Inc
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Filing date
Publication date
Application filed by SCM Metal Products Inc filed Critical SCM Metal Products Inc
Publication of EP1993760A2 publication Critical patent/EP1993760A2/en
Withdrawn legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F9/00Making metallic powder or suspensions thereof
    • B22F9/16Making metallic powder or suspensions thereof using chemical processes
    • B22F9/18Making metallic powder or suspensions thereof using chemical processes with reduction of metal compounds
    • B22F9/20Making metallic powder or suspensions thereof using chemical processes with reduction of metal compounds starting from solid metal compounds
    • B22F9/22Making metallic powder or suspensions thereof using chemical processes with reduction of metal compounds starting from solid metal compounds using gaseous reductors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F9/00Making metallic powder or suspensions thereof
    • B22F9/02Making metallic powder or suspensions thereof using physical processes
    • B22F9/04Making metallic powder or suspensions thereof using physical processes starting from solid material, e.g. by crushing, grinding or milling
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/008Ferrous alloys, e.g. steel alloys containing tin
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/16Ferrous alloys, e.g. steel alloys containing copper
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C9/00Alloys based on copper
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F2998/00Supplementary information concerning processes or compositions relating to powder metallurgy
    • B22F2998/10Processes characterised by the sequence of their steps
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F2999/00Aspects linked to processes or compositions used in powder metallurgy

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • General Chemical & Material Sciences (AREA)
  • Powder Metallurgy (AREA)
  • Sliding-Contact Bearings (AREA)

Abstract

The present invention provides a new process for making a low cost powder for the manufacture of high performance bearings. Improved powders and sintered parts (e.g., bearings) are also provided. The powders of the present invention are formed by blending iron powder with fine cuprous oxide powder and elemental tin powder. The blended powders are then thermally treated under a reducing atmosphere to form a sintered cake, which is milled to a powder.

Description

141709.1
LOW COST BRONZE POWDER FOR HIGH PERFORMANCE BEARINGS
BACKGROUND OF THE INVENTION
Self lubricated bearings are typically produced from premixed 90 wt. % copper + 10 wt. % tin powders + a lubricant. The preraix is typically pressed into bearings in a die at pressures ranging from 22,000 lb/in2 to 44,000 lb/in2 to green densities in 6.0 g/cm3 to 6.3 g/cm3 range. The lubricant helps minimize friction between the die and the bearing during pressing and subsequent ejection from the die, but must be removed in subsequent processing. The green bearings are typically sintered in a three zone belt conveyor furnace. The first zone, called preheat zone, is set at a temperature (typically 10000F to 12000F) required to burn the lubricant off. The second zone, called high heat zone, is set at a temperature' (typically 15000F to 156O0F) necessary to alloy the copper with the tin to form a bronze. The belt speed is adjusted to provide sufficient time at the sintering temperature to ensure homogeneous alloy formation. The third zone, called cooling zone, is used to cool the bearings to room temperature. All three zones have a protective atmosphere used to prevent the bearings from getting oxidized. The bearings undergo Dimensional Change (DC) during sintering, and are typically repressed in a die (sized) to meet the tight dimensional tolerances required with respect to the mating shafts. The dimensional change during sintering is an important property. It must be controlled closely so that the bearings fit easily into the sizing dies, but at the same time do not undergo excessive deformation during sizing, which can lead to cracking. The density of the sized bearings is controlled to provide defined volume of porosity. The sized bearings are then immersed in oil under vacuum. The oil gets impregnated into the porosity by capillary action.
The bearings are used in motors of varied sizes. During use when the motor- is turned on, the bearing warms up causing the oil to ooze out of the pores and lubricate the mating surfaces. The reverse occurs when the motor is turned off. As the bearing starts to cool the oil goes back into the pores by capillary action. Best capillary action is achieved SCM 0005-US2
when the pores are fine. Lubrication of the mating surfaces lowers the coefficient of friction between the shaft and the bearing, which in turn lowers the wear rate of the bearing. Lower coefficient of friction also lowers the peak and steady state operating temperatures. Lower temperatures are desirable from the standpoint of maintaining the integrity of the oil as well as improving the life of the motor. Another important property of the bearings is the Radial Compressive (Crush) Strength (RCS). Higher strength leads to higher load bearing capacity of the bearing.
To reduce the cost of the bearings, the powder metal industry has used iron powder to replace some of the copper and tin. Such materials are called diluted bronzes. While diluted bronze bearings work satisfactorily in some applications, they typically have higher coefficients of friction and higher peak and steady state operating temperatures than the standard bronze bearings. They also tend to create more noise during operation compared to the standard bronze bearings.
SUMMARY OF THE INVENTION
The present invention provides a new process for making a low cost powder for the manufacture of high performance bearings. Improved powders and sintered parts (e.g., bearings) are also provided.
The powders of the present invention are formed by blending iron powder with fine cuprous oxide powder and elemental tin powder. The blended powders are then thermally treated under a reducing atmosphere to form a sintered cake, which is milled to a powder.
For a better understanding of the present invention together with other and further embodiments, reference is made to the following description taken in conjunction with the examples and figures, the scope of which is set forth in the appended claims. SCM 0005-US2
BRIEF DESCRIPTION OF THE FIGURES
Preferred embodiments of the invention have been chosen for purposes of illustration and description, but are not intended in any way to restrict the scope of the invention. The preferred embodiments of certain aspects of the invention are shown in the accompanying figures, wherein:
Figure 1 shows a photomicrograph of Powder A, an embodiment of the invention.
Figure 2 shows a photomicrograph of Powder D, an additional embodiment of the invention.
Figure 3 shows a photomicrograph of Powder E, yet another embodiment of the invention.
Figure 4 shows a photomicrograph of a bearing made from Powder A.
Figure 5 shows a photomicrograph of a bearing made from Powder D.
Figure 6 shows a photomicrograph of a bearing made from Powder E.
Figure 7 shows a photomicrograph of a bearing made from the diluted bronze powder F.
Figure 8 shows a photomicrograph of a bearing made from the diluted bronze powder G.
Figure 9 shows a photomicrograph of a bearing made from the standard premixed bronze powder.
Figure 10 compares the DC of sintered bearings of this invention using sponge iron powder with the standard premixed bronze bearings and the diluted bronze bearings, made with the same iron powder, as a function of the sintering temperature. SCM 0005-US2
Figure 11 compares the RCS of sintered bearings of this invention using sponge iron powder with the standard premixed bronze bearings and diluted bronze bearings, made with the same iron powder, as a function of the sintering temperature.
Figure 12 shows a photomicrograph of a bearing made from powder H.
Figure 13 shows a photomicrograph of a bearing made from powder I.
Figure Hshows a photomicrograph of a bearing made from powder J.
Figure 15 shows a photomicrograph of a bearing made from powder K.
Figure 16 compares the DC of sintered bearings of this invention using atomized iron powder with the diluted bronze bearings, made with the same iron powder, as a function of the sintering temperature.
Figure 17 compares the RCS of sintered bearings of this invention using atomized iron powder with the diluted bronze bearings, made with the same iron powder, as a function of the sintering temperature.
Figure 18 shows a photomicrograph of the copper coated iron powder.
Figure 19 shows a photomicrograph of a bearing made from powder L.
Figure 20 compares the DC of sintered bearings made from powders L and E, which have similar iron, copper and tin contents, with the standard premixed bronze bearings as a function of sintering temperature.
Figure 21 compares the RCS of sintered bearings made from powders L and E with the standard premixed bronze bearings as a function of sintering temperature SCM 0005-US2
DETAILED DESCRIPTION OF THE INVENTION
In preparing the preferred embodiments of the present invention, various alternatives may be used to facilitate the objectives of the invention. These embodiments are presented to aid in an understanding of the invention and are not intended to, and should not be construed to, limit the invention in any way. All alternatives, modifications and equivalents that may become obvious to those of ordinary skill upon a reading of the present disclosure are included within the spirit and scope of the present invention.
This disclosure is not a primer on the manufacture of bronze powders. Basic concepts known to those skilled in the art have not been set forth in detail.
This invention relates to a new process for making a low cost powder for the manufacture of high performance bearings. Powder cost is lowered by replacing some of the bronze powder with iron powder. However, unlike bearings made from diluted bronze powders of the prior art, the properties of the bearings made from the powder of the instant invention are superior to the conventional bronze bearings, as well as conventional diluted bronze bearings, as shown by the examples.
The process of the invention involves blending an iron powder with fine cuprous oxide and elemental tin powders. Any type of iron powder such as sponge, atomized, electrolytic, etc. can be used; however, sponge iron powder is preferred. Preferred particle size fraction of the iron powder is -150 mesh (<106 μm), although -325 mesh (<44 μm) to -60 mesh (<250 μm)_fractions can be used. The cuprous oxide and tin powders should be as fine as possible. Preferred median particles size (D50) of cuprous oxide powder is 10-25 μm, although powders with D50 of up to 50 μm can be used. Preferred D50 of tin powder is 3-12 μm; however powders with D50 up to 20 μm can be used.
The blended powders are thermally treated in a furnace at a temperature ranging from 8000F to 16000F, the preferred temperature being about 13000F. A reducing atmosphere, SCM 0005-US2
such as pure hydrogen or nitrogen / hydrogen mixture, is maintained in the furnace. The cuprous oxide is reduced to copper, the tin melts and alloys with the copper to form bronze. The liquid tin also alloys with the iron and helps diffusion bond the bronze to the iron powder. The powders form a sintered cake, which is milled and screened to the desired particle size fraction. Preferred particle size fraction of the milled powder is -60 mesh although size fractions up to -20 mesh can be used. The preferred copper content in the final powder is in the range of 20-50 wt. %, although it can be in the 10-70 wt. % range. The preferred tin content in the final powder is in the 2-5 wt. % range, although it can be in the 1-7 wt. % range.
The powders produced as described above are blended with 0.25 wt. % to 1.00 wt. % powdered lubricant, typically a stearate or wax. The blended powders are pressed into bearings to the desired density. The strength of the bearing in the pressed (green) condition is important for the subsequent handling in the manufacturing process. Green strength is measured on a standard bar according to the Metal Powder Industries Federation (MPIF) standard procedure. The powders of this invention had green strength comparable to or exceeding the green strength of standard premixed and diluted bronze powders.
The bearings are then sintered at an appropriate temperature to achieve the desired sintered density. It is important to avoid excessive DC. The powders of this invention showed remarkably low DC during sintering over a fairly wide temperature range. The standard bronze powders show a considerable variation in DC over the 15000F to 156O0F temperature range used in the industry. Such temperatures are necessary to obtain sufficient RCS discussed above. It was surprising to find that the bearings made from the powders of this invention can be sintered at about 14000F, which is substantially lower than the standard premixed bronze bearings. The RCS of the inventive bearings are significantly higher than the standard bronze bearings sintered at their normal sintering temperatures. Lower sintering temperature is desirable from the standpoint of energy savings; energy cost is a major factor in the total cost of manufacturing bearings. SCM 0005-US2
The sintered bearings are sized or repressed by putting them back in a die. The low DC of the inventive bearings is a definite advantage as minimal deformation is required to size the bearings to the desired dimensional tolerances. As mentioned above, excessive deformation can cause the bearings to crack during sizing. The sized bearings are immersed in oil under vacuum. The oil impregnates the porosity in the bearings by capillary action. Small pore size is desirable for the most effective capillary action. The inventive bearings develop smaller pores than the standard bronze bearings and consequently give higher oil efficiency. The latter is a measure of the percentage of total porosity in the bearing that is filled with oil. The high radial crush strengths obtained during sintering of the inventive bearings are retained in the sized and oiled bearings. This is an advantage in applications where the bearing loads are high.
The oiled bearings are tested in a bearing tester. The bearing is mounted on a steel shaft, and a load is applied to the shaft. The shaft is rotated at a high speed (rpm). The friction between the shaft and the bearing causes the bearing to heat up. As the bearing gets warmer, the oil goes to the mating surface and provides lubrication. The better the lubrication, the lower the bearing temperature and the lower the wear on the bearing. The temperature peaks early in the bearing test and eventually reaches a steady state level. Lower peak and steady state temperatures are desirable to maintain the integrity of the oil and improve the life of the motor. The bearings of this invention showed lower coefficient of friction and lower peak and steady state temperatures than the standard bronze and diluted bronze bearings. This is attributed to the fine pores and the superior capillary action they provide. All of these observations are confirmed by the Examples 1 and 2 that follow.
Another embodiment of the present invention is to use a copper coated iron powder and adding sufficient tin powder to it to convert the copper into 90:10 bronze during sintering of the parts. Methods to coat the iron powder with copper are known, and include precipitation, electrolysis, etc. Similar proportions of iron, copper and tin in the final powders can be used as described above. Bearings made from these powders are also SCM 0005-US2
superior to the premixed bronze and diluted bronze bearings. This will become clear from the Example 3 below.
EXAMPLES
The present invention is illustrated by the following examples. These are merely illustrative and should not be construed as limiting the scope of the invention.
Example 1:
70 parts -60 mesh sponge iron powder, 30.3 parts cuprous oxide powder (Dso= 21 μm) and 3 parts tin powder (Dso= 8 μm) were blended in a V-cone blender. The blended powder was thermally treated at a range of temperatures from 13000F to 15000F in hydrogen atmosphere. The milled cake was sieved on a 60 mesh screen. During the thermal treatment, the cuprous oxide was reduced to copper and the resultant powders, labeled A, B and C, contained 70 wt. % iron, 27 wt. % copper and 3 wt. % tin. The copper and tin alloyed with each other and formed bronze.
50 parts -60 mesh sponge iron powder, 50.6 parts fine cuprous oxide powder and 5 parts tin powder were similarly processed. The thermal treatment was carried out at 13000F in hydrogen. The resultant powder, labeled D, had a composition of 50 wt. % iron, 45 wt. % copper and 5 wt. % tin.
80 parts -60 mesh sponge iron powder, 20.2 parts fine cuprous oxide powder and 2 parts tin powder were similarly processed. The thermal treatment was carried out at 13000F in hydrogen. The resultant powder, labeled E, had a composition of 80 wt. % iron, 18 wt. % copper and 2 wt. % tin.
Table- 1 shows the processing parameters for the five powders of this invention. SCM 0005-US2
Figures 1, 2 and 3 show photomicrographs of Powders A, D and E, respectively. They show that most of the iron and bronze particles are diffusion bonded to each other. This prevents segregation and gives a more uniform powder. As will become clear from the data presented below, a thermal treatment at 13000F is sufficient to produce a good quality bronze for the bearings.
Two grades of diluted bronze powders were made by blending 70 parts -60 mesh sponge iron powder and 30 parts -150 mesh premixed bronze powder (labeled F), and 50 parts -60 mesh sponge iron powder and 50 parts -150 mesh premixed bronze powder (labeled G).
The powder properties were measured. A standard premixed bronze powder (90 wt. % copper + 10 wt. % tin) was used for comparison. The data are shown in Table-2 below.
SCM 0005-US2
The powders were blended with 0.50 wt. % zinc stearate and 0.25 Wt. % lithium stearate as lubricants. The properties of the lubricated powder are shown in Table-3.
The powders were pressed into standard transverse rupture strength bars to 6.3 g/cm density and the green strength was measured - see Table-4.
SCM 0005-US2
All five powders made by the process of this invention (powders A through E) had green strength higher than the standard premixed bronze powder and at least as good as the diluted bronze powders.
The powders were pressed into bearings with nominally 0.75 inch inside diameter X 1.0 inch outside diameter X 0.75 inch length. They were preheated at 10000F to burn off the lubricant and sintered at temperatures ranging from 14000F to 156O0F in a belt conveyor furnace under a reducing atmosphere composed of 75% hydrogen and 25% nitrogen.
Figures 4 through 6 show the photomicrographs of the sintered bearings made from powders A, D and E of this invention. Figures 7 and 8 show the photomicrographs of the bearings made from the diluted bronze powders F and G respectively. Figure 9 shows the photomicrograph of the sintered bearing made from the premixed bronze powder. The bearings of the present invention clearly show a finer pore structure (dark areas) than the conventional premixed and diluted bronze bearings.
Figure 10 compares the DC of sintered bearings of this invention with the standard premixed bronze bearings and the diluted bronze bearings as a function of the sintering temperature. The data shows that the bearings made from the powders of this invention undergo consistent and low DC during sintering. This is desirable because it provides predictability in terms of die sizes required for the sizing operation and also minimizes deformation necessary during sizing. The DC is also stable over the temperature range SCM 0005-US2
normally used in the industry. This is very desirable in that it provides some flexibility in the sintering temperature needed to achieve the desired sintered properties.
Figure 11 compares the RCS of sintered bearings of this invention with the standard premixed bronze bearings and diluted bronze bearings as a function of the sintering temperature/ The bearings of this invention have higher RCS than the premixed and diluted bronze bearings over the entire temperature range. One major advantage of the powders of this invention is that the bearings can be sintered at 14000F, and still achieve a higher RCS than bearings made from the standard premixed bronze and the diluted bronze powders sintered at higher temperatures. Lower sintering temperature is beneficial from the energy savings standpoint, and adds to the already lower cost of the powder resulting from replacement of some of the bronze powder by iron powder.
The bearings sintered at 1400 and 15000F were immersed in oil under vacuum. The oil penetrated the porosity by capillary action. Table-5 shows the oil content and oil efficiency (% pores filled with oil) data on these bearings.
SCM 0005-US2
The bearings made from the powders of this invention had oil efficiencies (94-96%) comparable to the standard premixed bronze bearings (94%) and the diluted bronze bearings (97-98 %). Oil efficiency is measured as a percentage of porosity present in the bearings that is filled with oil.
The sintered bearings made from powder A (70 wt. % iron, 27 wt. % copper, 3 Wt. % tin), powder D (50 wt. % iron, 45 wt. % copper, 5 wt. % tin), powder E (80 wt.% iron, 18 wt.% copper, 2 wt. % tin), powder F (70 wt.% iron, 30 wt.% premixed bronze), powder G (50 wt. % iron, 50 wt. % premixed bronze), and the standard premixed bronze were sized and filled with oil as indicated above. The premixed bronze and diluted bronze bearings SCM 0005-US2
sintered at higher temperatures were used here in order to meet the DC and RCS requirements. Table-6 shows the oil content and oil efficiency of these bearings.
Bearings that met the industry specifications, including RCS, were selected for bearing test performance. They were tested on a Falex F1505 bearing tester. The bearings were evaluated with a shaft speed of 1750 rpm and 85 lbs load to attain PV values of around 50,000. The bearings reach a peak temperature and then drop down to a stable steady state operating temperature. The coefficient of friction was calculated from the formula ((Torque reading from load cell - in.lb / Shaft radius - in.) / Load suspended on bearing - Ib.)). Oil loss was measured after the bearing test was completed. Table 7 shows the properties of the bearings tested. SCM 0005-US2
The bearings made from the powders of this invention (A, D and E) had lower coefficients of friction than the bearings made from the standard premixed bronze (Std.) and the diluted bronze powders (F and G). This is due to the smaller pores in the bearings, which provide more efficient transport of oil to the mating surface between the bearing and the shaft. The lower coefficient of friction leads to lower peak and steady state operating temperatures in the bearing. This translates into lower oil loss, and is desirable from the standpoint of the oil integrity and the long term performance of the bearing.
Example 2:
In this example the sponge iron powder in Example 1 above was replaced with an atomized iron powder. The rest of the processing was similar.
70 parts -60 mesh atomized iron powder, 30.3 parts cuprous oxide powder (Dso= 21μm) and 3 parts tin powder (Dso= 8 μm) were blended in a V-cone blender. The blended powder was thermally treated at 13000F in hydrogen atmosphere. The milled cake was sieved on a 60 mesh screen. The resultant powder was labeled H. SCM 0005-US2
50 parts -60 mesh atomized iron powder, 50.6 parts fine cuprous oxide powder and 5 parts tin powder were similarly processed. The thermal treatment was carried out at 13000F in hydrogen. The resultant powder was labeled I.
Two grades of diluted bronze powders were made by blending 70 parts -60 mesh atomized iron powder and 30 parts -150 mesh premixed bronze powder (labeled J), and 50 parts -60 mesh atomized iron powder and 50 parts -150 mesh premixed bronze powder (labeled K).
The microstructures of these powders were similar to the corresponding powders made using the sponge iron powder as in Example 1, and are not shown here. Table-8 shows the properties of these powders.
Properties of the powders blended with 0.5 wt. % zinc stearate and 0.25 wt. % lithium stearate are shown in Table-9. SCM 0005-US2
The powders were pressed into standard transverse rupture strength bars to a nominal 6.3 g/cm3 density and the green strength was measured - see Table- 10.
The powders of this invention (H and I) have superior green strength compared to the diluted bronze powders made using the same atomized iron powder, and the standard premixed bronze of Example 1 (Table-4).
The powders were pressed into bearings with nominally 0.75 inch inside diameter X 1.0 inch outside diameter X 0.75 inch length. They were preheated at 10000F to burn off the lubricant and sintered at a temperature in the 14000F to 156O0F range, in the belt conveyor furnace under a reducing atmosphere composed of 75% hydrogen and 25% nitrogen. SCM 0005-US2
Table- 1 1 shows the DC and RCS of sintered bearings of this invention and the corresponding diluted bronze bearings. Like the previous bearings of this invention using the sponge iron powders (A through E), the bearings made using the atomized iron powder (H and I) have lower DC and higher RCS values than the corresponding diluted bronze bearings (J and K).
Figures 12 through 15 show the photomicrographs of the sintered bearings. The bearings of this invention (powders H and I) show finer pore structures than the corresponding diluted bronze bearings (powders J and K).
The sintered bearings were immersed in oil under vacuum. Table-12 shows the oil content and oil efficiency data on these bearings.
SCM 0005-US2
The bearings made from the powders of this invention had oil efficiencies at least as good as or better than the diluted bronze bearings and the standard premixed bronze bearings of Eaxmple-1.
The sintered bearings were sized and filled with oil as described previously. Tab Ie- 13 shows the oil content and oil efficiency of these bearings. The sized bearings of this invention were at least as good as or better than the diluted bronze bearings and the standard premixed bronze bearings of Example- 1.
The bearings were performance tested as described in Example-1. Table-14 shows the bearing performance data. SCM 0005-US2
The bearings made from the powders of this invention had lower coefficients of friction than the bearings made from the diluted bronze powders and the standard premixed bronze powder (Table-7). The lower coefficients of friction resulted in lower peak and steady state operating temperatures in the bearing. This, in turn, translated into lower oil loss, which would be expected to give better oil integrity and long term performance of the bearings.
The bearing performance data in Tables-7 and 14 shows that the sponge iron and atomized iron powders are equivalent in practicing this invention.
Example-3:
In this example, a commercially available copper coated iron powder was used to produce bearings. Figure- 18 shows a photomicrograph of this powder. The bearings made from this powder were compared with the bearings made from powder E, having a similar composition, and the standard premixed bronze powder discussed in Example-1. The copper coated iron powder contained 82% iron (core) and 18% copper (coating). 98 parts of this powder were blended with 2 parts of fine tin powder, 0.50 parts of zinc stearate and 0.25 parts of lithium stearate. The powder was labeled L. SCM 0005-US2
Table-15 shows the properties of this powder along with powder E and the standard premixed bronze powder. The powder properties are similar to powder E.
The powders were pressed into standard transverse rupture strength bars to a nominal 6.3 g/cm3 density and the green strength was measured — see Table-16.
The powder L has green strength superior to powder E and the standard premixed bronze powder of Example 1.
The powder was pressed into bearings with nominally 0.75 inch inside diameter X 1.0 - inch outside diameter X 0.75 inch length. They were preheated at 10000F to burn off the lubricant and sintered at 14000F in the belt conveyor furnace under a reducing atmosphere composed of 75% hydrogen and 25% nitrogen.
Table-17 shows the DC and RCS of the sintered bearings, comparing them to bearings made from powder E and the standard premixed bronze powder. The bearings made from powder L have a DC similar to those made from powder E. Powder L also gives an SCM 0005-US2
RCS similar to powder E, and much higher than the premixed bronze powder, The standard premixed bronze bearings were sintered at a higher temperature (15000F) to obtain the desired RCS.
Figure 19 shows the photomicrograph of a sintered bearing. The bearing shows a similar pore size as the bearing made from powder E (Figure 6), but a finer pore size than the bearing made from the premixed bronze powder (Figure 9).
The sintered bearings were immersed in oil under vacuum. Table- 18 shows the oil content and oil efficiency data on these bearings.
The bearings made from the powders of this invention had oil efficiencies similar to powder E and the standard premixed bronze bearings of Eaxmple-1. SCM 0005-US2
The sintered bearings were sized and filled with oil as described previously. Table-19 shows the oil content and oil efficiency of these bearings. The sized bearings made from powder L were similar to bearings made from powder E and the standard premixed bronze bearings of Example- 1.
The bearings were tested as described in Example- 1. Table-20 shows the bearing performance data.
The bearings made from the powder L had a lower coefficient of friction than the bearings made from the standard premixed bronze powder. The lower coefficient of friction resulted in lower peak and steady state operating temperatures in the bearings. This, in turn, translated into lower oil loss, which would be expected to give better oil integrity and long term performance of the bearings. The coefficient of friction, the peak SCM 0005-US2
and steady state operating temperatures, and the oil loss were similar to the bearings made from powder E.
Conclusion
The bearings made from the powders of this invention (A, B, C, D, E5 H, I and L) showed superior performance in the bearing tests than the bearings made from the standard premixed bronze powder (Std.) and the diluted bronze bearings ( F, G, J and K). They had lower coefficients of friction, which resulted in lower peak and steady state operating temperatures, and less oil loss. The latter is a sign of better oil integrity and excellent bearing performance over a long period of time.
While the invention has been described with reference to specific embodiments thereof, it should be understood that the invention is capable of further modifications and that this application is intended to cover any and all variations, uses, or adaptations of the invention which follow the general principles of the invention. All such alternatives, modifications and equivalents that may become obvious to those of ordinary skill in the art upon reading the present disclosure are included within the spirit and scope of the invention as reflected in the appended claims.

Claims

SCM 0005-US2What is claimed:
1. A process for making a bronze powder comprising the following steps: a. blending an iron powder with a cuprous oxide powder and a tin powder to form a blended powder, b. thermally treating the blended powder in a reducing atmosphere at a temperature between about 6000F and about 17000F to form a sintered cake, and c. milling the sintered cake to form the bronze powder.
2. The process of claim 1 which further comprises screening the bronze powder to a desired particle size fraction.
3. The process of claim 1, wherein the iron powder is sponge, atomized, or electrolytic iron powder.
4. The process of claim 3, wherein the iron powder is sponge iron powder.
5. The process of claim 1, wherein the iron powder has a particle size between about -325 mesh (<44 μm) and about -60 mesh (<250 μm).
6. The process of claim 5, wherein the iron powder has a particle size of approximately -150 mesh (<106 μm).
7. The process of claim 1 , wherein the cuprous oxide powder has a median particle size (Dso) below about 50 μm.
8. The process of claim 7, wherein the cuprous oxide powder has a median particle size (Ds0) of about 10-25 μm. SCM 0005-US2
9. The process of claim 1, wherein the tin powder has a median particle size (D50) below about 20 μm.
10. The process of claim 9, wherein the tin powder has a median particle size (D50) of about 3-12 μm.
11. The process of claim 1, wherein the thermal treatment temperature is between about 8000F to about 16000F.
12. The process of claim 11, wherein the thermal treatment temperature is about 13000F.
13. The process of claim 1, wherein the reducing atmosphere is pure hydrogen or a nitrogen / hydrogen mixture.
14. A bronze powder made by the process of claim 1.
15. The powder of claim 14, wherein the bronze powder has a particle size below about -20 mesh.
16. The powder of claim 15, wherein the bronze powder has a particle size of about -60 mesh.
17. The powder of claim 14, wherein the bronze powder has a copper content of about 10-70 wt.% .
18. The powder of claim 17, wherein the bronze powder has a copper content of about 20-50 wt. %.
19. The powder of claim 14, wherein the bronze powder has a tin content of about 1-7 wt. %. SCM 0005-US2
20. The powder of claim 19, wherein the bronze powder has a tin content of about 2-5 wt. %.
21. The powder of claim 14, wherein the bronze powder is blended with 0.25 wt. % to 1.00 wt. % powdered lubricant.
22. The powder of claim 21, wherein the lubricant is a stearate or wax.
23. A sintered part comprising a powder made by the process of claim 1.
24. The sintered part of claim 23, wherein the part is a bearing.
25. The sintered part of claim 24, wherein the bearing is a oil impregnated self lubricating bearing.
26. A composite powder made by mixing the powder of claim 1 with other alloying elements, plastics, solid lubricants, ceramics, or the like.
27. An article made from the powder of claim 26.
28. A sintered part having 10 to 70 wt. % copper, 1 to 7 wt. % tin and 23 to 89 wt. % iron, wherein a substantial portion of pores present in the sintered part have dimensions less than 100 μm, and wherein the sintered part has a radial crush strength higher than 30,000 psi at a nominal sintered density of 6.3 g/cm3.
EP07752123A 2006-03-02 2007-02-28 Low cost bronze powder for high performance bearings Withdrawn EP1993760A2 (en)

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US77881406P 2006-03-02 2006-03-02
US83526206P 2006-08-03 2006-08-03
US11/710,688 US20070231182A1 (en) 2006-03-02 2007-02-26 Low cost bronze powder for high performance bearings
PCT/US2007/005402 WO2007103193A2 (en) 2006-03-02 2007-02-28 Low cost bronze powder for high performance bearings

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Families Citing this family (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CA2673774C (en) * 2006-12-29 2015-12-01 Mats Larsson Powder, method of manufacturing a component and component
US20090263267A1 (en) * 2008-04-17 2009-10-22 Foxconn Technology Co., Ltd. Method for manufacturing a porous oil-impregnated revolving shaft assembly
CN102794457A (en) * 2012-03-21 2012-11-28 朱湖泽 Method for producing bronze coated iron powder
JP6011805B2 (en) * 2013-04-22 2016-10-19 日立化成株式会社 Sintered oil-impregnated bearing and manufacturing method thereof
US10474961B2 (en) 2013-06-20 2019-11-12 Viv Labs, Inc. Dynamically evolving cognitive architecture system based on prompting for additional user input
JP6199106B2 (en) * 2013-07-22 2017-09-20 Ntn株式会社 Sintered bearing, method for manufacturing the same, and fluid dynamic bearing device provided with the sintered bearing
CN104550906B (en) * 2014-12-22 2017-01-04 昆山德泰新材料科技有限公司 A kind of premixing bronze powder, preparation method and applications
CN105458275B (en) * 2015-12-10 2018-01-30 湖南省天心博力科技有限公司 A kind of manufacture method of the alloy powder of powder used in metallurgy copper and tin 10
CN112444152B (en) * 2019-09-03 2022-01-11 广州力及热管理科技有限公司 Chain-shaped copper metal capillary structure and manufacturing method thereof
CN113399669A (en) * 2020-03-17 2021-09-17 永源科技材料股份有限公司 Capillary structure
CN111451519B (en) * 2020-04-03 2022-10-14 龙门金南磁性材料有限公司 Preparation method of brass-coated iron powder
CN112756608A (en) * 2020-12-14 2021-05-07 北京有研粉末新材料研究院有限公司 Preparation method for in-situ generation of liquid absorbent core material of copper-clad iron heat pipe

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3888657A (en) * 1970-12-30 1975-06-10 Scm Corp Process for production of metal powders having high green strength
US4604259A (en) * 1983-10-11 1986-08-05 Scm Corporation Process for making copper-rich metal shapes by powder metallurgy

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO2007103193A2 *

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