EP0054343B1 - Method for manufacturing tapered rods and apparatus therefor - Google Patents

Method for manufacturing tapered rods and apparatus therefor Download PDF

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Publication number
EP0054343B1
EP0054343B1 EP19810304219 EP81304219A EP0054343B1 EP 0054343 B1 EP0054343 B1 EP 0054343B1 EP 19810304219 EP19810304219 EP 19810304219 EP 81304219 A EP81304219 A EP 81304219A EP 0054343 B1 EP0054343 B1 EP 0054343B1
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EP
European Patent Office
Prior art keywords
metallic material
temperature
heating
blank
accordance
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.)
Expired
Application number
EP19810304219
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German (de)
French (fr)
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EP0054343A3 (en
EP0054343A2 (en
Inventor
Tetsuo Kato
Shozo Abeyama
Makoto Saito
Hiroyasu Nagasaka
Masashi Mizuno
Toshio 1811-5 Aza-Kamiyashiki Endo
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Daido Steel Co Ltd
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Daido Steel Co Ltd
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Publication date
Priority claimed from JP17503180A external-priority patent/JPS5797819A/en
Priority claimed from JP17627680A external-priority patent/JPS57100816A/en
Application filed by Daido Steel Co Ltd filed Critical Daido Steel Co Ltd
Priority to AT81304219T priority Critical patent/ATE8970T1/en
Publication of EP0054343A2 publication Critical patent/EP0054343A2/en
Publication of EP0054343A3 publication Critical patent/EP0054343A3/en
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Publication of EP0054343B1 publication Critical patent/EP0054343B1/en
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    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D9/00Heat treatment, e.g. annealing, hardening, quenching or tempering, adapted for particular articles; Furnaces therefor
    • C21D9/0075Heat treatment, e.g. annealing, hardening, quenching or tempering, adapted for particular articles; Furnaces therefor for rods of limited length
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21CMANUFACTURE OF METAL SHEETS, WIRE, RODS, TUBES OR PROFILES, OTHERWISE THAN BY ROLLING; AUXILIARY OPERATIONS USED IN CONNECTION WITH METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL
    • B21C37/00Manufacture of metal sheets, bars, wire, tubes or like semi-manufactured products, not otherwise provided for; Manufacture of tubes of special shape
    • B21C37/04Manufacture of metal sheets, bars, wire, tubes or like semi-manufactured products, not otherwise provided for; Manufacture of tubes of special shape of bars or wire
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D8/00Modifying the physical properties by deformation combined with, or followed by, heat treatment
    • C21D8/06Modifying the physical properties by deformation combined with, or followed by, heat treatment during manufacturing of rods or wires
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D2281/00Making use of special physico-chemical means
    • C21D2281/02Making use of special physico-chemical means temperature gradient

Definitions

  • This invention relates to a method for manufacturing tapered rods and an apparatus therefor. More particularly, it relates to the method for manufacturing tapered rods and bars from a predetermined metallic material extremely efficiently, i.e., minimizing the material loss and maximizing the productivity, and also to an apparatus applicable for the method.
  • tapered rods employed for the rapidly prevailing tapered coil springs are provided with a larger diametered portion (a) in the central portion and a continuously diameter diminishing tapered portions (b) on either side of the former, as shown in Fig. 1.
  • a rod having the larger diametered portion (a) in the central portion and the diameter diminishing portions (b) on either side is actually employed as a material in production plants of the tapered coil springs.
  • a coil spring made of a tapered rod of this type the varying trend of its height which is observed according to the variation of load is non-linear (A) as can be seen in Fig.
  • the tapered rods as material of the tapered coil springs have been conventionally manufactured chiefly by machining wires or rods of a desired metallic material. Machining of the metallic material naturally yields a great deal of material loss, and needs in addition much time, remarkably degrading the productivity.
  • the invention concerns a method for manufacturing a tapered rod according to claims 1 and 13 and concerns an apparatus for carrying out the method according to claims 17 and 21.
  • the pre-selected metallic material is imparted locally temperature-gradient in the axial direction by heating and that the heated metallic material with the locally gradient temperature pattern is axially stretched by pulling.
  • the metallic material placed under tensile force for pulling will be a tapered rod having a locally varied diameter in the axial direction according to the gradient pattern of the heating temperature.
  • a metallic material or blank can be made into a desired tapered rod, in this invention, only by being imparted a desired pattern of temperature-gradient heating to the taper needed portions thereof alone before being given the axial tensile force.
  • a desired tapered rod can be obtained in a remarkably short time, eliminating all of the conventional tedious and time-consuming processes such as machining process which needs much time and material loss, hot forging process which requires a long and inefficient forging time, etc.
  • This method can be said to have much contributed to the cost reduction of the tapered rods through the simplification of the process and the shortening of the required time.
  • strain rate i.e., rate of deformation of the sectional area of the metallic material per unit of time when it is stretched or pulled to be deformed in the axial direction is of extreme importance. It is furthermore important that the deformation of the sectional area in the minimum diametered portion is kept within a predetermined extent. They have found that effective manufacturing of the desired tapered rods can be achieved by observing this principle in the actual practice.
  • timewise pattern of pulling has given the following features to the method of this invention.
  • a metallic material is pulled by tensile force, under the influence of axially temperature gradient heating, at a rate of strain or deformation within the range of 0.5 %/sec-1000 %/sec in the minimum diametered portion for forming a tapered rod with an axially varied diameter
  • the speed of pulling must be varied such as gradually from high speed to low, reducing intermittently or stepwise the pulling speed by dividing the whole pulling amount into several sections.
  • This pattern of pulling enabled to form effectively a desired tapered portion without incurring breakage of material by local necking and to simultaneously from a cylindrical and parallel portion with a constant diameter in the minimum diametered portion.
  • Metallic materials used for forming the tapered rods in accordance with this invention are usually in the form of wires and rods. Usually they are of steel, but other non-ferrous metals are by no means excluded.
  • the metallic material is desired to be steel wire rod containing carbon of 0.35-1.10% by weight, and further containing, if desired, silicon not exceeding 2.5%, manganese not exceeding 1.5%, copper not exceeding 3.0%, nickel not exceeding 3.0%, chromium not exceeding 5.0%, molybdenum not exceeding 1.0%, vanadium not exceeding 1.0%, boron not exceeding 0.05%, aluminum not exceeding 0.1 %, and titanium, niobium, zirconium, tantalum, tungsten, hafnium respectively not exceeding 0.5%, and the balance in iron.
  • Carbon content of the above-mentioned steel wire rod as the preferable material for the tapered rods should be regulated within the range of 0.35-1.10%.
  • quench hardness is difficult to be obtained in the heat treatment process after the coil formation, which deteriorates necessary characteristics as a spring.
  • proeutectoid cementite will become enormous, which deteriorates life of the spring due to fatige.
  • silicon is effective for improving load loss resistance
  • manganese is good for improving hardenability
  • copper is effective for enhancing weather proof and preventing decarburization during the heat treatment
  • nickel is effective for improving the hardenability and strength (toughness)
  • chromium and molybdenum improve hardenability and resistance to temper softening
  • vanadium is good for improving strength by fining crystal particles
  • boron is capable of improving hardenability by adding trace amount thereof
  • aluminum is effective in elongating the life against fatigue as well as in fining crystal particles so as to lower the ductile-to-brittle transition temperature
  • titanium, niobium, zirconium, tantalum, tungsten, hafnium are respectively advantageous in forming fine carbides so as to improve the resistance to temper softening.
  • All of those additives may be contained separately or in combination within the predetermined ratio of content.
  • Other inevitably contained elements as trace amount of impurities in the course of industrial manufacturing process of the steel wires as the material such as phosphorus, sulphur, arsenic, tin, antimony, zinc, selenium, etc. are all harmless.
  • the pattern thereof should be varied in many ways according to the materalistic quality and dimension of the steel wire, the heating temperature, the tensile condition, the shape of the taper desired, etc. It may be determined specifically for each case, not be decided uniformly or indiscriminately. What can be said in general is that a portion of the steel wire under a high temperature will become finer or thinner in the later tensile operation and a portion under a low temperature less thin. Consequently, for the formation of a continuous taper where the diameter increases or decreases continuously as shown in Fig. 1 a temperature gradient pattern in (a) or (b) of Fig. 3, for example, is preferably utilized.
  • the maximum heating temperature is preferred to be maintained within the range of 600°C-1000°C.
  • breaking elongation of the material becomes low, for example, in case of the earlier mentioned steel wire the elongation against breakage being less than 40%.
  • the material may be broken before it is finally made into an aimed tapered rod due to a possible local necking.
  • oxidization and decarburization of the material surface rapidly progresses so as to greatly deteriorate the life of the final product as a spring against fatigue, which is an undesirable phenomenon.
  • the temperature gradient heating As to a way of imparting the temperature gradient heating, all of the known methods such as direct heating, high frequency induction heating, gas burning heating, infrared ray heating, indirect heating by an electric furnace, etc. are permissible. Any one of those methods may be chosen in accordance with the circumstances.
  • the following two are, for example, recommended as preferable, (1) heating the metallic material directly so that the predetermined temperature-gradient pattern may be formed thereon in the axial direction, and (2) after having heated or while heating the metallic material up to a predetermined high temperature cooling down the same, thereby adjusting the temperature, so as to form the predetermined gradient pattern thereon in the axial direction.
  • heating amount or cooling amount per each portion of the metallic material in the axial direction can be varied according to the pattern of the desired taper, such as by dividing the whole length of a taper, from the central portion to the end portion on either side thereof, into several sections for giving to each section respectively varied amount of cooling air required according to the pattern of the taper, by positionwise varying the diameter or the pitch of electric coils used in a high frequency induction heater in the axial direction of the metallic material according to the pattern of the taper, or by positionwise varying the flow amount of the fuel gas for varying the extent of heating according to position in the axial direction of the metallic material according to the pattern of the taper, and in case of electric resistance heater input amount of the power to a plural series of resistance heating elements can be preferably adjusted per each position of the metallic material according to the pattern of the taper.
  • a metallic material which is given in this predetermined temperature gradient pattern is applied tensile force in the axial direction while being under the gradient heat so as to become a desired tapered rod by gradually changing its diameter according to the pattern of the temperature gradient.
  • a portion under a high temperature becomes small in the diameter and a portion under a low temperature becomes less small in diameter.
  • This tensile force is applied on a metallic material under the influence of the temperature-gradient heating according to the quality, shape, and the targeted form of the taper so as to get a desired rate or speed of strain on the material.
  • this rate of strain of the material must be controlled by all means, for efficiently producing tapered rods of desired shape, while the material is pulled under the temperature-gradient heating. It was also discovered by the inventors that controlling of the rate of strain is preferably made at the minimum diametered portion (maximum uniformly contracted portion) of the formed tapered rod within the range of a certain predetermined value.
  • the tapered rods made by the method of this invention should be applied tensile force at the minimum diametered portion, i.e., the portion under the highest temperature of heating, within the range of process-strain rate (e) 0.5 %/sec-1000 %/sec.
  • process-strain rate e
  • 0.5%/sec should be regarded the lowest limit, because the temperature-gradient pattern in the axial direction actually functions as if it were flat or non- gradient at a rate less than this limit value 0.5%/sec.
  • the rate or speed of strain (e) is meant the amount of deformation per unit of time at the minimum diametered portion, more specifically, the amount of variation of the sectional area, which can be determined in general by the following formula, wherein
  • a metallic material under a predetermined temperature gradient heating when it is pulled at a constant crosshead speed, possibly produces a contracted (constricted) portion at a relatively early stage of pulling, forming a tapered portion only without parallel portion some time, or forming parallel portion only some other time with a tapered portion, even if it is made, having a relatively small rate of reduction.
  • a good tapered rod with a large rate of reduction can not be got by this pulling way of a constant speed.
  • This invention has succeeded in obtaining an excellent tapered rod with a large rate of reduction, perfectly eliminating the conventional disadvantage, by adopting the above-mentioned specific pattern or mode of pulling.
  • Theoretical reasoning for this simultaneous achieving of the tapered portion with a large rate of reduction and the parallel portion can be made as follows:
  • tapered rods having a pair of opposite tapered portions c, d are made from a continuous long wire or a rod by a continuous and repetitive forming operation
  • a long wire or rod having a plurality of tapered portions with a predetermined equal distance therebetween can be, before or after a necessary after-treatment and/or after-process, cut at a predetermined position one after another to have finished tapered rods of constant length.
  • this method is also effective to form one or two tapered rods from a relatively short material of limited length instead of the earlier mentioned long material.
  • the taper portion formed on the material may be various in its shape, such as linearly and continuously diameter increasing or decreasing like one show in Fig. 3(c), with one or two steps in c (d) portion, or outwardly convex or inwardly concave.
  • various modifications are permissible, for example, forming only one taper portion, forming a large diametered portion in the middle with two small diametered portions on either side thereof just contrary to the mode in Fig. 3(c), in addition to the mode having two large diametered portions on either end as can be seen in Fig. 3(c).
  • the undermentioned apparatus is preferably employed.
  • An apparatus including a pulling mechanism for pulling a metallic material of wire stack chucked at two points on the axial direction of the material in a direction enlarging the distance between the two points, and heating means composed of plural steps arranged between the two points for heating the metallic material at each step so as to form a predetermined temperature gradient pattern to the material, whereby the metallic material is imparted the temperature-gradient heating while being pulled in either direction by the pulling mechanism to become a tapered rod with a varying diameter in the axial direction thereof.
  • An example of the apparatus is shown as a diagrammatic view in Fig. 4, wherein numeral 1 designates a round steel rod.
  • the rod 1, which is chucked at a chuck 2, 2 on either end thereof is pulled by a suitable means such as a hydraulic cylinder (not shown) so that the distance between the two chucks 2, 2 may be enlarged. That is to say, the rod 1, is pulled in two directions marked with D arrows so as to be elongated between the chucks 2, 2.
  • a suitable means such as a hydraulic cylinder (not shown) so that the distance between the two chucks 2, 2 may be enlarged. That is to say, the rod 1, is pulled in two directions marked with D arrows so as to be elongated between the chucks 2, 2.
  • high frequency induction heaters n pieces from H 1 to H n , whose number of coil winding is identical for each, are arranged in the axial direction of the rod 1 such that each of the heaters constitutes a heating zone for each position of the rod 1 in the axial direction thereof.
  • each of the coils H 1 ⁇ H n independently controlled or regulated high-frequency current to a predetermined extent is flowed from a controlling means 3.
  • a controlling means 3 By means of varying the amount of current flowed to each coil H,-Hn' density of the induction current flowed in each position of the rod 1 is varied, which means the heating amount to the rod 1 is varied according to the position thereof. It can be said further in other words that a temperature-gradient pattern is formed corresponding to each position of the rod 1.
  • the invented apparatus is further provided with a series of heat-measuring meters or temperature detectors T l- T n , each being faced to each of the heating zones on the rod 1, for measuring or detecting the actual temperature of the heated zone respectively. In order to adjust the heating temperature at each heating zone, the temperature picked up at the meters T,-T n is respectively fed back to the controlling means 3 for thereby controlling the current amount flowed to each of the coils H,-H n independently.
  • the rod 1 which is given a temperature-gradient heating to each heating zone thereof while being pulled in either D direction at the chuck 2, 2, is affected by respectively different amounts of high-frequency heating according to position in the axial direction.
  • the rod 1 will show different rates of extension or elongation, although it is under one uniform tensile force, according to the position in the axial direction of the rod 1. This is why a desired taper is formed.
  • the current flowing to the stepped coils H i -H n is respectively controlled or regulated, and the actual temperature at each heating zone formed by the coils H I -H n is measured by the meters T I -T N and fed back for thereby controlling the temperature of the coils H i -H n to a target value. Consequently the temperature of each coil H i -H n can be regulated at will for desirably varying the form of the taper. The heating temperature and consequently the form of the taper can be exactly controlled in such an apparatus.
  • the density of the coil turn number should be made larger in the induction heating coils located in the central portion of the metallic material in the axial direction and that of the coils located the farther away from the central portion made smaller, and similarly the diameter of the coil should be, if a way of varying the coil diameter is adopted, made smaller in the induction heating coil located in the central portion of the metallic material in the axial direction and that of the coils located the farther away from the central portion made larger.
  • direct resistance heating method is also preferably applicable. While directly flowing electric current to a wire state metallic material from the two points thereon in the axial direction, dispose a plurality of cooling zones in the axial direction of the material for imparting portionwise controlled cooling to each of the positions on the material. The heated material by the current flowing while being under pulling in either direction is pattern- wise cooled by the temperature gradient cooling zone. The material thus can be formed into a tapered rod with varying diameter in the axial direction.
  • the heating amount by the direct resistance heating is measured at any suitable position between the two points on the material for controlling the heating amount by the data of the measurement.
  • This apparatus is characterized in that the temperature of heating at the measuring position itself is so controlled as to be at the targeted level.
  • Numeral 11 designates a round steel rod, each end thereof is chucked respectively by a chuck 12, 22 for being pulled by a not-shown suitable pulling means such as a hydraulic cylinder in an inter-chuck distance enlarging direction, i.e., in the direction marked with D arrows enlarging the length of the rod.
  • the chucks 12, 22 simultaneously function in this connection as a contact for flowing the current of direct resistance heating.
  • the current led through a current adjuster 15 is fed, having been regulated to a predetermined amount, to the rod 11 by way of the chucks 12, 22 to directly heat the same.
  • C 1 -C n are arranged to constitute cooling zones at each position of the rod 11 to be cooled.
  • cooled gas such as air is supplied from a gas supplying means 14, for example, a compressor, through each passage P 1 ⁇ P n under control of flow amount controllers S 1 ⁇ S n so as to cool each position of the rod 11 faced respectively to the coolers-by-air C 1 -C n .
  • a known temperature detector consisting of a lense 16 capable of detecting the surface temperature of the rod 11 covering the whole length thereof and an image sensor 17 is disposed for measuring the surface temperature of the rod 11 at least at a portion opposite to a cooler C m located in the central portion of the rod 11 between the two chucks 12, 22.
  • the temperature detector collects radiated energy from the surface of the rod 11 to generate a signal corresponding to the temperature.
  • the signal from the temperature detector (16, 17) which is corresponding to the surface temperature of the rod 11, is applied to a temperature converter 19 for being, after having been converted there to an electric signal, led to the current adjuster 15 and a cooling control system 18.
  • the current to be flowed to the rod 11 is so regulated based on the received temperature signal as to be adapted to the set value therein, i.e., the targeted heating temperature at the measurement position.
  • a commanding signal is generated, caused by an electric signal from the temperature convertor 19, to motors M 1 ⁇ M n according to the set controlling pattern therein.
  • Flow amount adjustors S 1 ⁇ S n are respectively actuated by each motor M 1 ⁇ M n to adjust the air amount V 1 ⁇ V n led to each of the coolers-by-air C 1 -C n .
  • the rod 11 is cooled in this mode to a predetermined temperature at a desired axial position, that is to say, the rod 11 receives a predetermined pattern of heating under a predetermined pattern of temperature-gradient.
  • the temperature of the central portion m of the rod 11 is adjusted by the regulation of the current amount flowed there. This adjustment of heating is carried out by regulating with PID action the current amount flowed to the rod 11, through the current adjuster 15 aiming the target temperature value Tm, based on the input value from the temperature converter 19 which is under the influence of the detected data of the surface temperature of the rod 11 at the middle portion by means of the temperature detector (16, 17).
  • the whole heating condition of the rod 11 can be detected or known.
  • heat adjustment or regulation conducted at the middle portion of the rod 11 is preferably adopted. It is of course possible to detect the surface temperature at a place of the rod 11 other than the middle portion for presuming therefrom the whole heating condition of the rod 11 and conduct the heat adjustment suited for the detected condition. If and when the temperature pattern given to the rod 11 is altered the detection places of the surface temperature are naturally altered, and it is also possible to detect the surface temperature at plural places of the rod 11 for performing the heating regulation based on the predetermined targeted value.
  • the cooling control i.e., current flow heating plus air cooling
  • the cooling control is normally not practiced. Only when the temperature T m at the position m has largely overshot cooled air is blown through the passage P m into the cooler-by-air C m . In some cases, however, it is rather preferable, according to the pattern of the temperature-gradient, to carry out the heating regulation at the position m by parallelly using the current flow heating and the air cooling, which naturally permits the heating regulation at other places of the rod 11.
  • Temperature at other places than the position m is usually started to be adjusted by cooling when the temperature at the position m has reached the targeted temperature T m , because the position m is the place to be heated highest. It is of course permissible to begin adjusting the temperature of the other places by regulating the heating temperature by air cooling at the beginning of heating, if the circumstances require.
  • the cooling adjustment is executed by controlling the flow amount V 1 ... V n of cooling gas (air) delivered to the coolers-by-air C, ... Cn which is conducted by the motors M,, M 2 , ... M n through suitable adjustment of the degree of opening of the valve or slit in the flow amount adjusters S 1 ,... S n .
  • the flow amount or supply amount of the cooling gas can be determined beforehand, according to each temperature gradient pattern by experiments or the like.
  • the temperature of the rod 11 can be thus regulated in two ways, one being the heating regulation to the current flowing thereto by regulating the current amount through adapting the actually measured surface temperature of the rod 11 to the target temperature, and the other being the cooling control executed by the plurality of coolers-by-air C1,... C n axially arranged which are variable in the cooling capacity from each other due to the predetermined amount of cooling gas flown to each of them.
  • Such parallel regulation of heating and cooling enables effective formation of a temperature-gradient pattern shown in Fig. 3(a), for example.
  • a material, or a rod 11, placed under such a temperature gradient is, when bidirectional predetermined tensile force is applied between the two chucks 12, 22, formed into a tapered rod with taper portions c, d shown in Fig. 3(c) because of positionwise different rate of elongation of the material.
  • the temperature of the rod 11 at the temperature measuring position m which is the reference for the heating regulation, can be exactly controlled to the target value T m , but as to the temperature at other places some discrepancy or difference may take place between the actual heating temperature and the target temperature, because it is controlled in two ways, i.e., cooling from the coolers-by-air C 1 ,..., C n , whose amount of cooling gas is determined by experiments or the like, and direct resistance heating.
  • the flow amount of the cooling gas introduced to the coolers-by-air C 1 ,..., C n is also controlled by the temperature data measured by the temperature detector (16, 17).
  • the temperature detector (16, 17) carries out for this reason the temperature detecting at plural positions in the axial direction of the rod 11, and a commanding signal from the cooling control system 18 is generated after each termination of one taper formation cycle for being received by the coolers-by-air C 1 ,..., C n as data for controlling the flow amount of the cooling gas in the next taper formation cycle.
  • determination of the cooling gas flow amount is executed per each heating and temperature raising of the rod 11 for one taper formation cycle, but the determined value is by no means changed during one heating and temperature raising cycle, which means the control of the cooling gas flow amount is executed only intermittently.
  • Determination of cooling gas flow amount to each of the coolers-by-air C 1 ,..., C n is performed, more specifically, in the undermentioned mode.
  • set value un of the motor M 1 for determining the cooling gas flowing amount for the next controlling cycle of the cooler-by-air C is determined by the calculation of the following equation in the cooling control system 18 wherein designates a set value for the motor M, in the previous cooling cycle, and k and k' are constants in the adjusting operation.
  • the set value for the motor M for determining the flow amount of the cooling gas can be calculated in the above-mentioned method, which enables a further exact cooling control well suited to the target temperature distribution in the next taper formation process or cycle. It is also possible, instead of respectively calculating from the data of actual measurement of the surface temperature at each position of the rod 11, to measure at plural positions thereon the actual temperature for deducting the temperature distribution in general and to determine the cooling amount or blowing air amount each of the coolers-by-air C 1 ,..., C n , based on comparison between the measured temperature distribution and the targe temperature distribution.
  • FIG. 8 A further excellent embodiment of an apparatus for this direct resistance heating method is shown in Fig. 8, wherein dimensional data of the actually produced taper pattern is entered to a calculator, in addition to the conventional control of the taper pattern based only on the surface temperature of the rod 11, for performing more exact cooling control adapted to the target taper pattern. Allotting the same numerals and signs to the same places as in the previous embodiment for omitting the description, only the dissimilar places are explained hereunder.
  • Numeral 13 designates a temperature detector including a lense and an image sensor as in the previous embodiment, and to each of the coolers-by-air C,, ... , C n arranged in the axial direction of the rod 11 predetermined amount of cooling gas which is controlled under a command from the cooling control system will be led in.
  • a tapered portion in an article processed in one taper formation cycle is measured dimensionally of its taper portion by a dimension measuring device 20 for being entered to a temperature pattern adjuster 21, wherein adjustment or correction of the target temperature distribution pattern is carried out. More specifically, comparison between the target temperature pattern set in the temperature pattern adjuster 21 and the measured temperature pattern just entered is conducted for altering the temperature pattern which has been so far the reference for the cooling control. Relation between the dimensionally indicated taper and the temperature distribution pattern is made more close and intimate. Relation between the attempted taper pattern and the temperature pattern are not necessarily accordance in actual experiments, but discrepant sometime, wherein the temperature pattern adjuster 21 has ita raison d'etre.
  • Adjusted temperature pattern information from the temperature pattern adjuster 21 is entered into the cooling adjustment system 18, wherein regulating command for directing the cooling gas flow amount to each of the coolers-by-air C 1 ,..., C n for the next taper pattern formation process is generated based on the entered temperature pattern from the temperature converter 19 according to the corrected temperature pattern.
  • the metallic material made into tapered rods is usually in a wire state, but it may be a rod member, a hollow pipe member.
  • shape of the material rectangular, square, etc. in section are all permissible; as to the species of the material non-ferrous metals are permissible besides the usually employed steel.
  • the tapered rods obtained by a method as claimed have a variety of uses, besides the use as tapered coil springs, such as for antennas, ski stocks if the material is of hollow, lamp posts, etc.
  • Test pieces (round bars) A and B of steel material SAE 9254 at room temperature, whose diameter was 6.35 mm and length 170 mm, were grasped on either end by a water cooling chuck leaving the heatable area approx. 100 mm inbetween. Direct resistance heating was made in both pieces so that the middle portion thereof might be heated up to 850°C ⁇ 5°C. Temperature distribution at that time is shown in Fig. 9. The piece A which was imparted such a temperature distribution was applied tensile force at an average rate of strain 10%/sec under the pulling speed of 50 mm/sec, and the piece B under the same condition of the temperature distribution was applied tensile force at an average rate of strain 100%/sec under the pulling speed of 100 mm/sec. Result of taper formation on both pieces are shown in Fig. 10.
  • both pieces A and B which had been heated to form a temperature gradient were stretched or elongated by the axial pulling action at the validly affected distance from 100 mm up to 130 mm.
  • a taper having the minimum diametered portion substantially in the middle thereof was formed, with a diameter continuously increasing towards either end in both pieces.
  • the diameter in the middle of both pieces A, B were respectively 4.83 mm, wherein rate of reduction was 42.1%, and 4.70 mm wherein rate of reduction 45.2%.
  • test piece (round bar) C of the same steel material was heated so as to be of uniform temperature in the axial direction distribution for being pulled axially at an average rate of strain 100%/sec, at a pulling speed of 100 mm/sec, as shown in Fig. 9. It was turned out, as can be seen in Fig. 10, that the minimum diameter portion did not fall in the middle portion of the piece, the diameter did not continuously diminish, and a local necking took place.
  • the resultant temperature distribution is shown in Fig. 11.
  • the diameter in the central portion was 7.1 mm and the rate of reduction observed there was 44.1%.
  • a test piece E of steel rod of JIS SUP 7 at room temperature having a diameter of 9.50 mm and a length of 900 mm, was chucked by a water cooling chuck and applied high-frequency induction heating, with coil individually different in diameter so as to form a temperature gradient pattern along the heatable area of 500 mm, wherein the temperature in the central portion being 900°C ⁇ 5°C and that on either end portion 650°C.
  • the temperature distribution was in such a state as shown in Fig. 11.
  • an average rate of strain was 60%/sec and speed of pulling 300 mm/sec.
  • the piece E which possessed the inter-chuck distance of 500 mm was elongated to 700 mm, and the formed taper had the minimum diametered portion in the central portion and a continuously diminishing diameter.
  • the diameter of the piece E in the central portion was 6.45 mm and the then rate of reduction was 53.0%.
  • Axial tensile force applied afterwards with an average rate of strain 50%/sec at a pulling speed of 150 mm/sec showed an elongation of the inter-chuck distance of 300 mm up to 390 mm.
  • the minimum diametered portion was located substantially in the middle thereof and the diameter was continuously decreased towards the middle.
  • the diameter in the central portion of the piece F was 4.55 mm and the rate of reduction observed there was 48.9%.
  • the piece was heated by directly current flowing, while simultaneously employing a plurality of air cooling means, individually different in the amount of blowing air, arranged in the axial direction of the test piece, so as to form a mountain "like temperature gradient pattern along the inter-chuck distance of 200 mm, with a peak in the central portion of 850°C.
  • the piece of steel having the above-mentioned temperature gradient pattern was deformed afterwards by pulling while varying the rate of strain i in the central minimum diametered portion.
  • the maximum reduced ratio under uniform deformation at each rate of strain are shown in Table 1 as the resultant data.
  • the maximum reduced ratio under uniform deformation (%) signifies here the amount of deformation until immediately before the occurring of a necking as a premonition to a breakage, that is (A o ⁇ A) ⁇ 100/A o , i.e., (sectional area of the material-sectional area of the minimum diametered portion) ⁇ 100/sectional area of the material.
  • the numerical data in Table 1 is shown in Fig. 15 as a graph.
  • the resultant data of the MR ratio (%) is parallelly shown in Table 3. In any case of steel material an excellent MR ratio was well proved.
  • a piece of steel rod containing C: 0.61 %, Si: 1.94%, and Mn: 0.81%, having a diameter of 6.35 mm, obtained by rolling and drawing was grasped on either end by a water cooling chuck for being heated by the direct resistance heating method, accompanied by a plurality of cooling means individually different in the amount of air blowing and arranged in each position in the axial direction of the piece so as to form a mountain like temperature gradient pattern along the heatable distance between the chucks of 200 mm wherein the peak of the pattern was 850°C.
  • the MR ratio i.e., the rate of reduction could be made large by the gradual decrease of the rate of strain. Deformation by pulling in the range of such a large MR ratio made the formation of an aimed taper quite easy, because it diminishes the labour hour or labour amount. As can be observed in the figure the larger the rate of variation from the initial speed to the final speed becomes, the larger MR ratio is obtained.
  • the obtained MR ratio was only 26% or so.
  • Example 6 On a piece which had been imparted the temperature gradient pattern in Example 6 was applied a two-stepped pulling as shown in Fig. 17(a) and (b).
  • the two-stepped pulling mode is effective in improving the MR ratio, and further the higher the rate of strain in the first stage is, the larger becomes the MR ratio.
  • a test piece of steel rod which had been imparted a predetermined temperature gradient pattern by the mode described in Example 6 was given a three-stepped pulling operation as shown in Fig. 8(a) and (b).
  • Second way was different from the first way only in the rate of strain applied in the third stage, which was changed to 10%/sec.

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Description

  • This invention relates to a method for manufacturing tapered rods and an apparatus therefor. More particularly, it relates to the method for manufacturing tapered rods and bars from a predetermined metallic material extremely efficiently, i.e., minimizing the material loss and maximizing the productivity, and also to an apparatus applicable for the method.
  • In recent times coils springs used for cars and railroad wagons have been gradually changed, for improving the comfortableness of riding to the passengers, from the conventional constant diametered ones to tapered coil springs made of tapered rods featured in the so-called non-linear characteristics. The tapered rods employed for the rapidly prevailing tapered coil springs are provided with a larger diametered portion (a) in the central portion and a continuously diameter diminishing tapered portions (b) on either side of the former, as shown in Fig. 1. In one example, the ratio between the larger diametered portion (a) and the progressively diameter diminishing portion (b) is b:a:b=1:1:1, and the whole length L, i.e., (a)+2(b) designates the length of a material for one coil. In this way a rod having the larger diametered portion (a) in the central portion and the diameter diminishing portions (b) on either side is actually employed as a material in production plants of the tapered coil springs. In a coil spring made of a tapered rod of this type the varying trend of its height which is observed according to the variation of load is non-linear (A) as can be seen in Fig. 2, while in a conventional coil spring made of a constant diametered rod the trend of the height thereof as the load varies is regularly linear (B). This difference (A) and (B), i.e., the height in proportion to the load variation constitutes the difference in the comfortableness. In other words, the tapered coil springs showing the non-linear trend line of the height greatly contributes to the betterment of the riding comfort of various wagons.
  • The tapered rods as material of the tapered coil springs have been conventionally manufactured chiefly by machining wires or rods of a desired metallic material. Machining of the metallic material naturally yields a great deal of material loss, and needs in addition much time, remarkably degrading the productivity.
  • In some cases hot forging method which is called rotary swaging method employing a swaging machine is adopted to manufacture this type of tapered rods. This method is meritorious indeed in diminishing the material loss, leaving however inevitable long machining hours still unchanged.
  • All of the conventional manufacturing methods of the tapered rods were extremely low in productivity. And no appreciably improved apparatuses or systems were developed for the solution of the above-mentioned problems.
  • It is a primary object of this invention which was made from the above-mentioned background to provide a method or process for manufacturing a tapered rod or bar.
  • It is another object of this invention to provide a practical method, being high in productivity and low in material loss yielding, for manufacturing a tapered rod having an axially varying diameter from a predetermined metallic material.
  • The invention concerns a method for manufacturing a tapered rod according to claims 1 and 13 and concerns an apparatus for carrying out the method according to claims 17 and 21.
  • What were essentially attempted in this invention for attaining above objects can be summarized to that the pre-selected metallic material is imparted locally temperature-gradient in the axial direction by heating and that the heated metallic material with the locally gradient temperature pattern is axially stretched by pulling. The metallic material placed under tensile force for pulling will be a tapered rod having a locally varied diameter in the axial direction according to the gradient pattern of the heating temperature. By means of this unique method a desired tapered rod can be obtained in a remarkably shortened time of process, yielding much lesser material loss. This method has thus succeeded in enhancing the operation efficiency to the highest possible extent.
  • A metallic material or blank can be made into a desired tapered rod, in this invention, only by being imparted a desired pattern of temperature-gradient heating to the taper needed portions thereof alone before being given the axial tensile force. By this method a desired tapered rod can be obtained in a remarkably short time, eliminating all of the conventional tedious and time-consuming processes such as machining process which needs much time and material loss, hot forging process which requires a long and inefficient forging time, etc. This method can be said to have much contributed to the cost reduction of the tapered rods through the simplification of the process and the shortening of the required time. If the above described method is applied to such a long metallic material as a coiled wire by forwardly moving it, step by step, by a predetermined length, a long series of continued tapered rods having a desired tapered portion for each desired distance can be produced. By cutting this long material already processed per each desired section, many tapered rods of predetermined length can be obtained efficiently and advantageously.
  • The inventors of this method have discovered from further studying that strain rate, i.e., rate of deformation of the sectional area of the metallic material per unit of time when it is stretched or pulled to be deformed in the axial direction is of extreme importance. It is furthermore important that the deformation of the sectional area in the minimum diametered portion is kept within a predetermined extent. They have found that effective manufacturing of the desired tapered rods can be achieved by observing this principle in the actual practice.
  • This invention which has been completed from the above discovery or knowledge is characterized in the following mode of process. The strain rate or speed, when the metallic material is given axial tensile force while being under an axial temperature gradient heating for being made into a tapered rod, is according to claim 10 maintained in the range of 0.5 %/sec­-1000 %/sec. It was ascertained that a metallic material can be efficiently processed into a desired tapered rod by this method without inviting any breakage of material due to the so-called local necking or contraction.
  • Through still further studying the inventors have found the following fact. That is, pattern or mode of pulling the metallic material, more particularly timewise pattern of pulling is of more importance, when the material is stretched so that the rate of strain in the minimum diametered portion is kept within a predetermined range. By observing the discovered timewise pattern of pulling pattern, a good tapered rod of large rate of reduction, i.e., the sectional area of the maximum diametered portion divided by that of the minimum diametered portion (Amax/Amin), can be obtained. Formation of a cylindrical, not tapered but parallel, portion with a constant diameter in the minimum diametered portion is also effectively obtained by observing this pattern.
  • The idea of the above-mentioned timewise pattern of pulling has given the following features to the method of this invention. When a metallic material is pulled by tensile force, under the influence of axially temperature gradient heating, at a rate of strain or deformation within the range of 0.5 %/sec-1000 %/sec in the minimum diametered portion for forming a tapered rod with an axially varied diameter, the speed of pulling must be varied such as gradually from high speed to low, reducing intermittently or stepwise the pulling speed by dividing the whole pulling amount into several sections. This pattern of pulling enabled to form effectively a desired tapered portion without incurring breakage of material by local necking and to simultaneously from a cylindrical and parallel portion with a constant diameter in the minimum diametered portion.
  • By this invented method, i.e., by applying the suitably timewise controlled pattern of pulling, a desired tapered rod with a fairly strickly controlled diameter in precision can be got. This method enabled formation of a precisely controlled tapered rod in one pulling process without requiring any finish machining, contributing a great deal to shortening of the process time and consequent production cost reduction.
  • The invention will now be described, by way of example, with reference to the accompanying drawings, in which:
    • Fig. 1 is a schematic view for showing an example of a tapered rod used as a coil spring;
    • Fig. 2 is a graph for comparatively showing the feature of an ordinary coil spring and a tapered coil spring;
    • Fig. 3(a) and (b) are respectively a graph for showing a different temperature distribution in the axial direction on a metallic material, and (c) is a schematic view for showing the status of a metallic material after pulling;
    • Fig. 4 is a diagrammatic view for showing an example of apparatus preferably employable for reducing the method of this invention;
    • Fig. 5 is a diagrammatic view for showing another example of apparatus preferably employable for reducing the method of this invention;
    • Fig. 6 is a sectional view of Fig. 5 taken along the section line 6-6;
    • Fig. 7 is a graph for showing relation between the targeted temperature gradient pattern and the actually measured temperature pattern;
    • Fig. 8 is a diagrammatic view for showing still another example of apparatus preferably employable for reducing the method of this invention;
    • Fig. 9, Fig. 11, and Fig. 13 are respectively a graph for showing temperature distribution on test pieces according to Example 1, 2, and 3 before the pulling operation;
    • Fig. 10, Fig. 12, and Fig. 14 are respectively a graph for showing diameter distribution on test pieces according to Example 1, 2, and 3 after the pulling operation;
    • Fig. 15 is a graph for showing relation observed in Example 4 between the rate of strain (deformation) in the minimum section of the bar and the maximum reduced ratio under uniform deformation;
    • Fig. 16(a) and (b) are respectively a graph for showing the result observed in Example 6 of progressively speed reducing tensile force pulling and a graph for showing the curve of progressively reduced speed;
    • Fig. 17(a) and (b) are respectively a graph for showing the result observed in Example 7 of two-stepped tensile force pulling and a graph for showing the pattern of the two-stepped pulling;
    • Fig. 18(a) and (b) are respectively a graph for showing the result observed in Example 8 of three-stepped tensile force pulling and a graph for showing the pattern of the three-stepped pulling.
  • Metallic materials used for forming the tapered rods in accordance with this invention are usually in the form of wires and rods. Mostly they are of steel, but other non-ferrous metals are by no means excluded. As preferably usable material for the tapered coil springs the metallic material is desired to be steel wire rod containing carbon of 0.35-1.10% by weight, and further containing, if desired, silicon not exceeding 2.5%, manganese not exceeding 1.5%, copper not exceeding 3.0%, nickel not exceeding 3.0%, chromium not exceeding 5.0%, molybdenum not exceeding 1.0%, vanadium not exceeding 1.0%, boron not exceeding 0.05%, aluminum not exceeding 0.1 %, and titanium, niobium, zirconium, tantalum, tungsten, hafnium respectively not exceeding 0.5%, and the balance in iron.
  • Carbon content of the above-mentioned steel wire rod as the preferable material for the tapered rods should be regulated within the range of 0.35-1.10%. In case of the carbon content less than 0.35% quench hardness is difficult to be obtained in the heat treatment process after the coil formation, which deteriorates necessary characteristics as a spring. On the contrary, in case of the carbon content more than 1.10% proeutectoid cementite will become enormous, which deteriorates life of the spring due to fatige. Among the occasionally added elements, silicon is effective for improving load loss resistance, manganese is good for improving hardenability, copper is effective for enhancing weather proof and preventing decarburization during the heat treatment, nickel is effective for improving the hardenability and strength (toughness), chromium and molybdenum improve hardenability and resistance to temper softening, vanadium is good for improving strength by fining crystal particles, boron is capable of improving hardenability by adding trace amount thereof, aluminum is effective in elongating the life against fatigue as well as in fining crystal particles so as to lower the ductile-to-brittle transition temperature, and titanium, niobium, zirconium, tantalum, tungsten, hafnium are respectively advantageous in forming fine carbides so as to improve the resistance to temper softening. All of those additives may be contained separately or in combination within the predetermined ratio of content. Other inevitably contained elements as trace amount of impurities in the course of industrial manufacturing process of the steel wires as the material such as phosphorus, sulphur, arsenic, tin, antimony, zinc, selenium, etc. are all harmless.
  • As to the temperature gradient imparted to the steel wire as the metallic material, the pattern thereof should be varied in many ways according to the materalistic quality and dimension of the steel wire, the heating temperature, the tensile condition, the shape of the taper desired, etc. It may be determined specifically for each case, not be decided uniformly or indiscriminately. What can be said in general is that a portion of the steel wire under a high temperature will become finer or thinner in the later tensile operation and a portion under a low temperature less thin. Consequently, for the formation of a continuous taper where the diameter increases or decreases continuously as shown in Fig. 1 a temperature gradient pattern in (a) or (b) of Fig. 3, for example, is preferably utilized. In particular, when a pattern of mountain form temperature gradient, as in Fig. 3(a) and (b), is adopted where the central portion in the axial direction of the metallic material is high in temperature and the further portions away from the central portion are lower, tapered portions c, d, facing to each other as shown in Fig. 3(c) are produced. So a continuously pulled steel wire with many mutually facing tapered portions c, d, at a predetermined interdistance in the axial direction of the wire may be cut at each of the minimum diametered portions e inbetween the tapered portions c, d for providing many tapered rods with a predetermined length shown in Fig. 1 effectively and continuously.
  • As for the imparting of the temperature gradient heating, the maximum heating temperature is preferred to be maintained within the range of 600°C-1000°C. At a temperature below 600°C breaking elongation of the material becomes low, for example, in case of the earlier mentioned steel wire the elongation against breakage being less than 40%. The material may be broken before it is finally made into an aimed tapered rod due to a possible local necking. At a temperature over 1000°C, on the contrary, oxidization and decarburization of the material surface rapidly progresses so as to greatly deteriorate the life of the final product as a spring against fatigue, which is an undesirable phenomenon.
  • As to a way of imparting the temperature gradient heating, all of the known methods such as direct heating, high frequency induction heating, gas burning heating, infrared ray heating, indirect heating by an electric furnace, etc. are permissible. Any one of those methods may be chosen in accordance with the circumstances. In specifically imparting the temperature gradient heating to the metallic material by selecting a suitable one from the above-mentioned methods, the following two are, for example, recommended as preferable, (1) heating the metallic material directly so that the predetermined temperature-gradient pattern may be formed thereon in the axial direction, and (2) after having heated or while heating the metallic material up to a predetermined high temperature cooling down the same, thereby adjusting the temperature, so as to form the predetermined gradient pattern thereon in the axial direction. More concretely speaking, heating amount or cooling amount per each portion of the metallic material in the axial direction can be varied according to the pattern of the desired taper, such as by dividing the whole length of a taper, from the central portion to the end portion on either side thereof, into several sections for giving to each section respectively varied amount of cooling air required according to the pattern of the taper, by positionwise varying the diameter or the pitch of electric coils used in a high frequency induction heater in the axial direction of the metallic material according to the pattern of the taper, or by positionwise varying the flow amount of the fuel gas for varying the extent of heating according to position in the axial direction of the metallic material according to the pattern of the taper, and in case of electric resistance heater input amount of the power to a plural series of resistance heating elements can be preferably adjusted per each position of the metallic material according to the pattern of the taper.
  • A metallic material which is given in this predetermined temperature gradient pattern is applied tensile force in the axial direction while being under the gradient heat so as to become a desired tapered rod by gradually changing its diameter according to the pattern of the temperature gradient. In general a portion under a high temperature becomes small in the diameter and a portion under a low temperature becomes less small in diameter.
  • This tensile force is applied on a metallic material under the influence of the temperature-gradient heating according to the quality, shape, and the targeted form of the taper so as to get a desired rate or speed of strain on the material. According to studying of the inventors, this rate of strain of the material must be controlled by all means, for efficiently producing tapered rods of desired shape, while the material is pulled under the temperature-gradient heating. It was also discovered by the inventors that controlling of the rate of strain is preferably made at the minimum diametered portion (maximum uniformly contracted portion) of the formed tapered rod within the range of a certain predetermined value.
  • In other words, the tapered rods made by the method of this invention should be applied tensile force at the minimum diametered portion, i.e., the portion under the highest temperature of heating, within the range of process-strain rate (e) 0.5 %/sec-1000 %/sec. Under this condition of tensile deformation desired tapered rods are obtained efficiently, easily, and without giving rise to a problem of material breakage, etc. In this instance the rate of strain or deformation 0.5%/sec should be regarded the lowest limit, because the temperature-gradient pattern in the axial direction actually functions as if it were flat or non- gradient at a rate less than this limit value 0.5%/sec. On the contrary, when the rate of strain exceeds 1000%/sec fairly high heat is generated at the time of plastic deformation of the material, giving rise to local heating and local necking which possibly cause breakage of the material. It must be observed therefore as the upper limit. The rate or speed of strain (e) here is meant the amount of deformation per unit of time at the minimum diametered portion, more specifically, the amount of variation of the sectional area, which can be determined in general by the following formula,
    Figure imgb0001
    wherein
    • Ao: original sectional area of the metallic material (cm 2)
    • A: sectional area of the tapered rod (metallic material after the tensile deformation) at the minimum diametered portion (cm2)
    • t: duration of tensile deformation
  • In this invention, how to pull the metallic material within the predetermined range of the strain rate, or the process-strain speed (e), is a problem, more specifically, (a) gradual changing of the pulling speed, from high to low, of the metallic material at the crosshead when the same is held for pulling, and (b) dividing the pulling amount into several steps for degrading the tensile force stepwise and pulling the material intermittently are two of the preferably employed ways of pulling. Either of those two ways enables easy formation of a tapered rod with a large rate of reduction, which is the rate between the sectional areas at the maximum diametered portion and the minimum diametered portion, and with a sufficient length of the cylindrical or parallel portion having a constant diameter at the minimum diametered portion simultaneously formed with the tapered portion.
  • A metallic material under a predetermined temperature gradient heating, when it is pulled at a constant crosshead speed, possibly produces a contracted (constricted) portion at a relatively early stage of pulling, forming a tapered portion only without parallel portion some time, or forming parallel portion only some other time with a tapered portion, even if it is made, having a relatively small rate of reduction. Anyway a good tapered rod with a large rate of reduction can not be got by this pulling way of a constant speed.
  • This invention has succeeded in obtaining an excellent tapered rod with a large rate of reduction, perfectly eliminating the conventional disadvantage, by adopting the above-mentioned specific pattern or mode of pulling. Theoretical reasoning for this simultaneous achieving of the tapered portion with a large rate of reduction and the parallel portion can be made as follows:
    • Consider first a case wherein the puffing amount is divided into several steps for applying the same stepwise and intermittently while degrading the speed. Deformation of the metallic material under a high temperature is well balanced between strain hardening caused by deformation and softening by restoration. If the pulling is suspended immediately before the first necking begins to take place, that is the __ limit for the uniform deformation of the material, leaving the material as it is for several seconds, the material protected from deformation is annealed in the meantime by the still existing high temperature. The ductility of the material is greatly enhanced by the decrease of extinction of the transition caused by the deformation so far. By means of repeating this process the material will reach far greater rate of reduction in comparison to a case where a constant tensile force is applied in one step. During the initial stage of pulling at a relatively high speed the material is liable to receive the influence of the temperature gradient in general to mainly form the taper portion, while during the later stage of decelerated speed the central part of the material under the high temperature region chiefly receives the deformation, resulting in forming the parallel portion of the constant minimum diameter. It is necessary to make the pulling speed slower when the process stage goes to the later part, because the deformable portion is gradually limited by the temperature lowering of the material. This inevitable lowering of the crosshead speed will naturally decelerate the above-mentioned strain rate (e).
  • On the other hand, even in case of gradual deceleration of the crosshead speed from high to low, in order to decrease the rate of strain little by little, the strain hardening by deformation is overcome by the softening caused by the restoration to give the material self-annealing effect due to the remaining temperature. So in this case the rate of reduction enjoyed is much larger than that observed under the pulling condition of the constant speed. In the invented way of pulling when the speed is lowered stepwise or gradually, the last and slowest pulling speed is of importance for making the parallel or cylindrical portion of constant diameter.
  • When tapered rods, whose preferred form is shown in Fig. 3(c), having a pair of opposite tapered portions c, d are made from a continuous long wire or a rod by a continuous and repetitive forming operation, such a long wire or rod having a plurality of tapered portions with a predetermined equal distance therebetween can be, before or after a necessary after-treatment and/or after-process, cut at a predetermined position one after another to have finished tapered rods of constant length.
  • It is needless to say that this method is also effective to form one or two tapered rods from a relatively short material of limited length instead of the earlier mentioned long material. The taper portion formed on the material may be various in its shape, such as linearly and continuously diameter increasing or decreasing like one show in Fig. 3(c), with one or two steps in c (d) portion, or outwardly convex or inwardly concave. As to the mode of having the taper portion, various modifications are permissible, for example, forming only one taper portion, forming a large diametered portion in the middle with two small diametered portions on either side thereof just contrary to the mode in Fig. 3(c), in addition to the mode having two large diametered portions on either end as can be seen in Fig. 3(c).
  • For carrying out the above-mentioned method of this invention the undermentioned apparatus is preferably employed.
  • An apparatus including a pulling mechanism for pulling a metallic material of wire stack chucked at two points on the axial direction of the material in a direction enlarging the distance between the two points, and heating means composed of plural steps arranged between the two points for heating the metallic material at each step so as to form a predetermined temperature gradient pattern to the material, whereby the metallic material is imparted the temperature-gradient heating while being pulled in either direction by the pulling mechanism to become a tapered rod with a varying diameter in the axial direction thereof. An example of the apparatus is shown as a diagrammatic view in Fig. 4, wherein numeral 1 designates a round steel rod. The rod 1, which is chucked at a chuck 2, 2 on either end thereof is pulled by a suitable means such as a hydraulic cylinder (not shown) so that the distance between the two chucks 2, 2 may be enlarged. That is to say, the rod 1, is pulled in two directions marked with D arrows so as to be elongated between the chucks 2, 2. Along the axial direction of the rod 1 high frequency induction heaters, n pieces from H1 to Hn, whose number of coil winding is identical for each, are arranged in the axial direction of the rod 1 such that each of the heaters constitutes a heating zone for each position of the rod 1 in the axial direction thereof. To each of the coils H1―Hn independently controlled or regulated high-frequency current to a predetermined extent is flowed from a controlling means 3. By means of varying the amount of current flowed to each coil H,-Hn' density of the induction current flowed in each position of the rod 1 is varied, which means the heating amount to the rod 1 is varied according to the position thereof. It can be said further in other words that a temperature-gradient pattern is formed corresponding to each position of the rod 1. The invented apparatus is further provided with a series of heat-measuring meters or temperature detectors Tl-Tn, each being faced to each of the heating zones on the rod 1, for measuring or detecting the actual temperature of the heated zone respectively. In order to adjust the heating temperature at each heating zone, the temperature picked up at the meters T,-Tn is respectively fed back to the controlling means 3 for thereby controlling the current amount flowed to each of the coils H,-Hn independently.
  • In an apparatus of such a structure the rod 1, which is given a temperature-gradient heating to each heating zone thereof while being pulled in either D direction at the chuck 2, 2, is affected by respectively different amounts of high-frequency heating according to position in the axial direction. The rod 1 will show different rates of extension or elongation, although it is under one uniform tensile force, according to the position in the axial direction of the rod 1. This is why a desired taper is formed.
  • In an apparatus of such a structure the current flowing to the stepped coils Hi-Hn is respectively controlled or regulated, and the actual temperature at each heating zone formed by the coils HI-Hn is measured by the meters TI-TN and fed back for thereby controlling the temperature of the coils Hi-Hn to a target value. Consequently the temperature of each coil Hi-Hn can be regulated at will for desirably varying the form of the taper. The heating temperature and consequently the form of the taper can be exactly controlled in such an apparatus.
  • Although in the above exemplified apparatus a plurality of coils with an identical number of coil windings are connected in parallel for being independently controlled in respect of the current amount, some alterations are permissible such as varying the number of coil winding of each coil, connecting each coil in series while varying the number of coil windings or varying the diameter of each coil, etc., in order to flow predetermined current amount to each coil so that each heating zone of the metallic material may be affected by a different current density respectively. More specifically, for obtaining a heating pattern shown in Fig. 2 the density of the coil turn number should be made larger in the induction heating coils located in the central portion of the metallic material in the axial direction and that of the coils located the farther away from the central portion made smaller, and similarly the diameter of the coil should be, if a way of varying the coil diameter is adopted, made smaller in the induction heating coil located in the central portion of the metallic material in the axial direction and that of the coils located the farther away from the central portion made larger.
  • In the exemplified apparatus another heating means such as a plurality of burners arranged stepwise can be practicable in place of the above-mentioned induction heating mechanism.
  • As a manufacturing method for the tapered rods in this invention direct resistance heating method is also preferably applicable. While directly flowing electric current to a wire state metallic material from the two points thereon in the axial direction, dispose a plurality of cooling zones in the axial direction of the material for imparting portionwise controlled cooling to each of the positions on the material. The heated material by the current flowing while being under pulling in either direction is pattern- wise cooled by the temperature gradient cooling zone. The material thus can be formed into a tapered rod with varying diameter in the axial direction.
  • For realizing the above-mentioned tapered rod manufacturing the heating amount by the direct resistance heating is measured at any suitable position between the two points on the material for controlling the heating amount by the data of the measurement. This apparatus is characterized in that the temperature of heating at the measuring position itself is so controlled as to be at the targeted level. By this method various advantages have been achieved, such as, enhancement of the rate of yielding, shortening of the processing time, obtaining of tapered rods substantially as targeted, and easy manufacturing of attempted articles.
  • With reference to Figs. 5 and 6 an apparatus of this type will be described. Numeral 11 designates a round steel rod, each end thereof is chucked respectively by a chuck 12, 22 for being pulled by a not-shown suitable pulling means such as a hydraulic cylinder in an inter-chuck distance enlarging direction, i.e., in the direction marked with D arrows enlarging the length of the rod. The chucks 12, 22 simultaneously function in this connection as a contact for flowing the current of direct resistance heating. The current led through a current adjuster 15 is fed, having been regulated to a predetermined amount, to the rod 11 by way of the chucks 12, 22 to directly heat the same. Along the longitudinal direction of the rod 11, n pieces of coolers-by-air with a sectional configuration of C type; C1-Cn are arranged to constitute cooling zones at each position of the rod 11 to be cooled. To each of the coolers-by-air C1-Cn cooled gas such as air is supplied from a gas supplying means 14, for example, a compressor, through each passage P1―Pn under control of flow amount controllers S1―Sn so as to cool each position of the rod 11 faced respectively to the coolers-by-air C1-Cn.
  • A known temperature detector consisting of a lense 16 capable of detecting the surface temperature of the rod 11 covering the whole length thereof and an image sensor 17 is disposed for measuring the surface temperature of the rod 11 at least at a portion opposite to a cooler Cm located in the central portion of the rod 11 between the two chucks 12, 22. The temperature detector collects radiated energy from the surface of the rod 11 to generate a signal corresponding to the temperature. The signal from the temperature detector (16, 17), which is corresponding to the surface temperature of the rod 11, is applied to a temperature converter 19 for being, after having been converted there to an electric signal, led to the current adjuster 15 and a cooling control system 18. At the current adjuster 15 the current to be flowed to the rod 11 is so regulated based on the received temperature signal as to be adapted to the set value therein, i.e., the targeted heating temperature at the measurement position. At the cooling control system 18 a commanding signal is generated, caused by an electric signal from the temperature convertor 19, to motors M1―Mn according to the set controlling pattern therein. Flow amount adjustors S1―Sn are respectively actuated by each motor M1―Mn to adjust the air amount V1―Vn led to each of the coolers-by-air C1-Cn. The rod 11 is cooled in this mode to a predetermined temperature at a desired axial position, that is to say, the rod 11 receives a predetermined pattern of heating under a predetermined pattern of temperature-gradient.
  • Assuming an example wherein coolers-by-air C1-Cn are disposed in odd number n description of the apparatus will be made. The temperature of the central portion m of the rod 11 is adjusted by the regulation of the current amount flowed there. This adjustment of heating is carried out by regulating with PID action the current amount flowed to the rod 11, through the current adjuster 15 aiming the target temperature value Tm, based on the input value from the temperature converter 19 which is under the influence of the detected data of the surface temperature of the rod 11 at the middle portion by means of the temperature detector (16, 17). Through this heat adjustment at the middle portion of the rod 11, the whole heating condition of the rod 11 can be detected or known. As the direct resistance heating of a rod characteristically forms a peak of the heating at the middle portion thereof in general, in a case wherein a mountain-like pattern of heating with a peak in the middle is formed on the rod 11, as shown in Fig. 3(a), heat adjustment or regulation conducted at the middle portion of the rod 11 is preferably adopted. It is of course possible to detect the surface temperature at a place of the rod 11 other than the middle portion for presuming therefrom the whole heating condition of the rod 11 and conduct the heat adjustment suited for the detected condition. If and when the temperature pattern given to the rod 11 is altered the detection places of the surface temperature are naturally altered, and it is also possible to detect the surface temperature at plural places of the rod 11 for performing the heating regulation based on the predetermined targeted value.
  • In the heating regulation based on the highest temperature portion in the middle (m) of the rod 11, the cooling control, i.e., current flow heating plus air cooling, is normally not practiced. Only when the temperature Tm at the position m has largely overshot cooled air is blown through the passage Pm into the cooler-by-air Cm. In some cases, however, it is rather preferable, according to the pattern of the temperature-gradient, to carry out the heating regulation at the position m by parallelly using the current flow heating and the air cooling, which naturally permits the heating regulation at other places of the rod 11.
  • Temperature at other places than the position m is usually started to be adjusted by cooling when the temperature at the position m has reached the targeted temperature Tm, because the position m is the place to be heated highest. It is of course permissible to begin adjusting the temperature of the other places by regulating the heating temperature by air cooling at the beginning of heating, if the circumstances require. The cooling adjustment is executed by controlling the flow amount V1... Vn of cooling gas (air) delivered to the coolers-by-air C, ... Cn which is conducted by the motors M,, M2, ... Mn through suitable adjustment of the degree of opening of the valve or slit in the flow amount adjusters S1,... Sn. And the flow amount or supply amount of the cooling gas, can be determined beforehand, according to each temperature gradient pattern by experiments or the like.
  • The temperature of the rod 11 can be thus regulated in two ways, one being the heating regulation to the current flowing thereto by regulating the current amount through adapting the actually measured surface temperature of the rod 11 to the target temperature, and the other being the cooling control executed by the plurality of coolers-by-air C1,... Cn axially arranged which are variable in the cooling capacity from each other due to the predetermined amount of cooling gas flown to each of them. Such parallel regulation of heating and cooling enables effective formation of a temperature-gradient pattern shown in Fig. 3(a), for example.
  • A material, or a rod 11, placed under such a temperature gradient is, when bidirectional predetermined tensile force is applied between the two chucks 12, 22, formed into a tapered rod with taper portions c, d shown in Fig. 3(c) because of positionwise different rate of elongation of the material.
  • The temperature of the rod 11 at the temperature measuring position m, which is the reference for the heating regulation, can be exactly controlled to the target value Tm, but as to the temperature at other places some discrepancy or difference may take place between the actual heating temperature and the target temperature, because it is controlled in two ways, i.e., cooling from the coolers-by-air C1,..., Cn, whose amount of cooling gas is determined by experiments or the like, and direct resistance heating. For the purpose of eliminating this discrepancy, the flow amount of the cooling gas introduced to the coolers-by-air C1,..., Cn is also controlled by the temperature data measured by the temperature detector (16, 17). It is of course ideal to give the rod 11 the cooling control and the heating regulation simultaneously, but there is a practical problem there, that is, the current flow heating needs only a few seconds, while the cooling rate in the gas cooling is somewhat low. The temperature data obtained in one taper formation process including heating and pulling is effectively utilized for controlling the cooling amount in the immediately succeeding taper formation process in this invention as a recommendable method. In this way repetition of the same method enables substantially reaching the targeted temperature-gradient pattern finally. In a concrete example shown in Figs. 5 and 6 the temperature detector (16, 17) carries out for this reason the temperature detecting at plural positions in the axial direction of the rod 11, and a commanding signal from the cooling control system 18 is generated after each termination of one taper formation cycle for being received by the coolers-by-air C1,..., Cn as data for controlling the flow amount of the cooling gas in the next taper formation cycle. In other words, determination of the cooling gas flow amount is executed per each heating and temperature raising of the rod 11 for one taper formation cycle, but the determined value is by no means changed during one heating and temperature raising cycle, which means the control of the cooling gas flow amount is executed only intermittently.
  • Determination of cooling gas flow amount to each of the coolers-by-air C1,..., Cn is performed, more specifically, in the undermentioned mode. Taking up a case of cooling i position of the rod 11, for example, assume the temperature of the rod 11 at the position i as
    Figure imgb0002
    , and those at i-1, i+1 respectively
    Figure imgb0003
    , and
    Figure imgb0004
    And declination or deviation of the temperature of those positions,
    Figure imgb0005
    , from the target temperature of those positions, T,, T+i-1, and T i+1, is assumed to be respectively
    Figure imgb0006
    and this relation is shown in Fig. 7 as a graph, wherein the broken line indicates the target temperature distribution and the solid line does the temperature distribution in the previous controlling cycle.
  • In this situation, set value un of the motor M1 for determining the cooling gas flowing amount for the next controlling cycle of the cooler-by-air C, is determined by the calculation of the following equation in the cooling control system 18
    Figure imgb0007
    wherein
    Figure imgb0008
    designates a set value for the motor M, in the previous cooling cycle, and k and k' are constants in the adjusting operation.
  • Therefore, if the surface temperature at each position of the rod 11 corresponding to each of the coolers-by-air C1,..., Cn is measured the set value for the motor M, for determining the flow amount of the cooling gas can be calculated in the above-mentioned method, which enables a further exact cooling control well suited to the target temperature distribution in the next taper formation process or cycle. It is also possible, instead of respectively calculating from the data of actual measurement of the surface temperature at each position of the rod 11, to measure at plural positions thereon the actual temperature for deducting the temperature distribution in general and to determine the cooling amount or blowing air amount each of the coolers-by-air C1,..., Cn, based on comparison between the measured temperature distribution and the targe temperature distribution.
  • In this mode of cooling control, once attained target temperature distribution or gradient pattern will not be changed, but fixed for repeating the taper formation cycle on that fixed condition. The tapered rods having the targeted taper pattern can be obtained in succession in this way.
  • A further excellent embodiment of an apparatus for this direct resistance heating method is shown in Fig. 8, wherein dimensional data of the actually produced taper pattern is entered to a calculator, in addition to the conventional control of the taper pattern based only on the surface temperature of the rod 11, for performing more exact cooling control adapted to the target taper pattern. Allotting the same numerals and signs to the same places as in the previous embodiment for omitting the description, only the dissimilar places are explained hereunder. Numeral 13 designates a temperature detector including a lense and an image sensor as in the previous embodiment, and to each of the coolers-by-air C,, ... , Cn arranged in the axial direction of the rod 11 predetermined amount of cooling gas which is controlled under a command from the cooling control system will be led in.
  • In the apparatus shown in Fig. 8, a tapered portion in an article processed in one taper formation cycle is measured dimensionally of its taper portion by a dimension measuring device 20 for being entered to a temperature pattern adjuster 21, wherein adjustment or correction of the target temperature distribution pattern is carried out. More specifically, comparison between the target temperature pattern set in the temperature pattern adjuster 21 and the measured temperature pattern just entered is conducted for altering the temperature pattern which has been so far the reference for the cooling control. Relation between the dimensionally indicated taper and the temperature distribution pattern is made more close and intimate. Relation between the attempted taper pattern and the temperature pattern are not necessarily accordance in actual experiments, but discrepant sometime, wherein the temperature pattern adjuster 21 has ita raison d'etre. Adjusted temperature pattern information from the temperature pattern adjuster 21 is entered into the cooling adjustment system 18, wherein regulating command for directing the cooling gas flow amount to each of the coolers-by-air C1,..., Cn for the next taper pattern formation process is generated based on the entered temperature pattern from the temperature converter 19 according to the corrected temperature pattern.
  • By entering the dimensional data taken from the actual taper pattern like this for the purpose of correcting the target taper pattern, reference for the cooling control of the next taper formation process is obtained, and the mutual relation between the actual taper pattern and the temperature pattern is improved all the more. Tapered rods closely resembled to the target taper pattern can be thus obtained, and repetition of the correction step of the temperature pattern, i.e., repetition of the taper formation cycle in this mode enables production of tapered rods perfectly accorded to the targeted taper pattern. Upon once having reached the accordance of the two through the repetition of the temperature pattern correction step based on the dimensional data, simple repetition of the taper formation cycle or the repetition of the taper formation cycle aided by the heating regulation as well as the cooling control based on the fixed or finally corrected temperature pattern becomes practicable, with a result of doing away the correction of the temperature pattern and consequently ceasing the measuring of the dimensional data.
  • This invention is by no means limited to those examples or embodiments described above, but various modifications and alterations may be made for those skilled in the art within the spirit and scope of this invention.
  • The metallic material made into tapered rods is usually in a wire state, but it may be a rod member, a hollow pipe member. As to the shape of the material, rectangular, square, etc. in section are all permissible; as to the species of the material non-ferrous metals are permissible besides the usually employed steel.
  • The tapered rods obtained by a method as claimed have a variety of uses, besides the use as tapered coil springs, such as for antennas, ski stocks if the material is of hollow, lamp posts, etc.
  • Some examples of this invention will be described hereunder for further clarifying the concrete features of this invention, by which this invention is never restricted nor bound, as a matter of course.
  • Example 1
  • Test pieces (round bars) A and B of steel material SAE 9254 at room temperature, whose diameter was 6.35 mm and length 170 mm, were grasped on either end by a water cooling chuck leaving the heatable area approx. 100 mm inbetween. Direct resistance heating was made in both pieces so that the middle portion thereof might be heated up to 850°C±5°C. Temperature distribution at that time is shown in Fig. 9. The piece A which was imparted such a temperature distribution was applied tensile force at an average rate of strain 10%/sec under the pulling speed of 50 mm/sec, and the piece B under the same condition of the temperature distribution was applied tensile force at an average rate of strain 100%/sec under the pulling speed of 100 mm/sec. Result of taper formation on both pieces are shown in Fig. 10.
  • As can be seen in two graphs, both pieces A and B which had been heated to form a temperature gradient were stretched or elongated by the axial pulling action at the validly affected distance from 100 mm up to 130 mm. A taper having the minimum diametered portion substantially in the middle thereof was formed, with a diameter continuously increasing towards either end in both pieces. The diameter in the middle of both pieces A, B were respectively 4.83 mm, wherein rate of reduction was 42.1%, and 4.70 mm wherein rate of reduction 45.2%.
  • For the purpose of comparison another test piece (round bar) C of the same steel material was heated so as to be of uniform temperature in the axial direction distribution for being pulled axially at an average rate of strain 100%/sec, at a pulling speed of 100 mm/sec, as shown in Fig. 9. It was turned out, as can be seen in Fig. 10, that the minimum diameter portion did not fall in the middle portion of the piece, the diameter did not continuously diminish, and a local necking took place.
  • Example 2
  • A test piece D of JIS SUP 7 steel rod at room temperature, having a diameter of 9.50 mm and a length of 700 mm, was chucked at either end by a water cooling chuck for being heated by current running at the valid heatable area of 500 mm up to form a temperature gradient pattern of 850°C in the middle and about 620°C on either end. The resultant temperature distribution is shown in Fig. 11. Application of tensile force in this situation to the piece at an average rate of strain 50%/sec, at a pulling speed of 250 mm/sec, resulted in elongation of the inter-chuck distance of the piece D by 150 mm, i.e., from 500 mm to 650 mm. A taper, having the minimum diametered portion in the middle, was formed, with the diameter being gradually increased towards either end. The diameter in the central portion was 7.1 mm and the rate of reduction observed there was 44.1%.
  • On the other hand, a test piece E of steel rod of JIS SUP 7 at room temperature, having a diameter of 9.50 mm and a length of 900 mm, was chucked by a water cooling chuck and applied high-frequency induction heating, with coil individually different in diameter so as to form a temperature gradient pattern along the heatable area of 500 mm, wherein the temperature in the central portion being 900°C±5°C and that on either end portion 650°C. The temperature distribution was in such a state as shown in Fig. 11. When afterwards tensile force was applied to the piece E in the axial direction, an average rate of strain was 60%/sec and speed of pulling 300 mm/sec. The piece E which possessed the inter-chuck distance of 500 mm was elongated to 700 mm, and the formed taper had the minimum diametered portion in the central portion and a continuously diminishing diameter. The diameter of the piece E in the central portion was 6.45 mm and the then rate of reduction was 53.0%.
  • Example 3
  • Another test piece F of steel rod SAE 9254 in a high temperature, immediately after a hot processing, whose diameter being 6.35 mm and length 450 mm, was grasped by a water cooling chuck for being heated by gas burning so as to form a temperature gradient pattern, which was 870°C in the central portion and approx. 650°C on either end, with temperature inbetween being gradually decreased. Then the temperature distribution is shown in Fig. 13. Axial tensile force applied afterwards with an average rate of strain 50%/sec at a pulling speed of 150 mm/sec showed an elongation of the inter-chuck distance of 300 mm up to 390 mm. In the formed taper the minimum diametered portion was located substantially in the middle thereof and the diameter was continuously decreased towards the middle. The diameter in the central portion of the piece F was 4.55 mm and the rate of reduction observed there was 48.9%.
  • Example 4
  • A test piece (rod) of steel containing C: 0.61 %, Si: 2.05%, Mn: 0.81%, and Cr: 0.11% obtained by rolling and drawing, with a diameter of 6.35 mm, was chucked at either end by a water cooling chuck. The piece was heated by directly current flowing, while simultaneously employing a plurality of air cooling means, individually different in the amount of blowing air, arranged in the axial direction of the test piece, so as to form a mountain "like temperature gradient pattern along the inter-chuck distance of 200 mm, with a peak in the central portion of 850°C.
  • The piece of steel having the above-mentioned temperature gradient pattern was deformed afterwards by pulling while varying the rate of strain i in the central minimum diametered portion. The maximum reduced ratio under uniform deformation at each rate of strain are shown in Table 1 as the resultant data. The maximum reduced ratio under uniform deformation (%) signifies here the amount of deformation until immediately before the occurring of a necking as a premonition to a breakage, that is (Ao―A)× 100/Ao, i.e., (sectional area of the material-sectional area of the minimum diametered portion)×100/sectional area of the material. The numerical data in Table 1 is shown in Fig. 15 as a graph.
  • As can be understood from Table 1 and Fig. 15, the maximum reduced ratio under uniform deformation (called "MR ratio" thereafter) is large in the range of the rate of strain by processing 0.5-1000%/sec, and even the largest possible portion thereof exists in this range.
  • By carrying out the deformation by pulling within such a range containing the MR ratio, processing of an aimed taper form turns out easier, because it will economize the processing labour amount.
    Figure imgb0009
  • Example 5
  • A test piece of steel material in wire state containing the various chemical components shown in Table 2, obtained by spheroidizing annealing and drawing was heated by the mode described in Example 4, the maximum heating temperature there is shown in Table 3, until a predetermined temperature gradient pattern was achieved, before it was deformed by pulling in the mode described in Example 4 at the rate of strain (e) shown in Table 3. The resultant data of the MR ratio (%) is parallelly shown in Table 3. In any case of steel material an excellent MR ratio was well proved.
    Figure imgb0010
    Figure imgb0011
  • Example 6
  • A piece of steel rod containing C: 0.61 %, Si: 1.94%, and Mn: 0.81%, having a diameter of 6.35 mm, obtained by rolling and drawing was grasped on either end by a water cooling chuck for being heated by the direct resistance heating method, accompanied by a plurality of cooling means individually different in the amount of air blowing and arranged in each position in the axial direction of the piece so as to form a mountain like temperature gradient pattern along the heatable distance between the chucks of 200 mm wherein the peak of the pattern was 850°C.
  • After the heating the piece with the above-mentioned temperature gradient pattern was deformed by pulling, at a gradually decreasing crosshead speed from high to low as shown in Fig. 16(b). The varying trend of the rate of strain from the initial speed to the final speed is shown in Fig. 16(a).
  • As can be seen in Fig. 16(a) the MR ratio, i.e., the rate of reduction could be made large by the gradual decrease of the rate of strain. Deformation by pulling in the range of such a large MR ratio made the formation of an aimed taper quite easy, because it diminishes the labour hour or labour amount. As can be observed in the figure the larger the rate of variation from the initial speed to the final speed becomes, the larger MR ratio is obtained.
  • In a case wherein the pulling eas carried out at a constant rate of strain 100%/sec, the obtained MR ratio was only 26% or so.
  • In this Example every piece of tapered rod obtained under a gradually decreasing speed could get a parallel portion with a constant diameter.
  • Example 7
  • On a piece which had been imparted the temperature gradient pattern in Example 6 was applied a two-stepped pulling as shown in Fig. 17(a) and (b).
  • As one of those two-stepped pulling modes, a test was made by setting a first stage of 100%/sec rate of strain for five seconds, then as a second stage, 50, 40 and 30%/sec rates of strain were respectively performed one by one. The resultant MR ratios are plotted in Fig. 17(a) as circled marks.
  • Another of the two-stepped pulling modes, a test was made wherein the first stage rate of strain was set at 70%/sec for being held for five seconds, and the second stage rate of strain was set at 50, 40, and 30%/sec respectively in order. The resultant MR ratios are shown in Fig. 17(a) with solid marks of black circle.
  • In single-stepped pulling tests on a same piece with the rate of strain respectively 100%/sec and 70%/sec, which were performed for the purpose of comparison, the resultant MR ratios were respectively 26% and 22%.
  • As can be understood from this result, the two-stepped pulling mode is effective in improving the MR ratio, and further the higher the rate of strain in the first stage is, the larger becomes the MR ratio.
  • Example 8
  • A test piece of steel rod which had been imparted a predetermined temperature gradient pattern by the mode described in Example 6 was given a three-stepped pulling operation as shown in Fig. 8(a) and (b).
  • This experiment was executed specifically in two ways:
    • First way was
      Figure imgb0012
  • Second way was different from the first way only in the rate of strain applied in the third stage, which was changed to 10%/sec.
  • The resultant data were plotted in the graph in Fig. 8(a), the circled marks being the data of the former way and the solid marks of black circle being the data of the latter way experiment.
  • What is observed in the graph of Fig. 8(a) is that the three-stepped pulling mode greatly improved the MR ratio, and that the ratio is larger when the rate of strain in the third stage is larger.

Claims (26)

1. Method for manufacturing a tapered rod from a blank (1, 11) of metallic material, characterized by applying tensile force to the metallic material blank (1, 11) in the axial direction (D) thereof while the metallic material blank (1, 11) is in a heated condition with a temperature gradient in the axial direction (D) of said metallic material blank (1, 11), whereby the formed rod possesses a tapered portion (c, d) having an axially varied diameter corresponding to a pattern of said temperature gradient.
2. A method in accordance with claim 1, wherein said tensile force is applied to said metallic material blank (1, 11) after the metallic material blank (1, 11) has been so heated so as to have the temperature gradient pattern thereon in the axial direction (D) thereof.
3. Method in accordance with claim 1, wherein the blank (1, 11) of metallic material heated up to a predetermined temperature is adjustably cooled (C1-Cn) so as to have the temperature gradient pattern in the axial direction (D) thereof before said tensile force is applied.
4. Method in accordance with claim 1, wherein a tensile force of a predetermined strain rate is applied to the metallic material blank (1, 11) heated with said temperature gradient pattern.
5. Method in accordance with claim 1, wherein said tapered portion (c, d) possesses a diameter continuously varying in the axial direction (D) of said metallic material blank (1, 11
6. Method in accordance with claim 1, wherein said temperature gradient pattern is of mountain like shape in which the temperature is higher in the axially central portion of the metallic material blank (1, 11) and progressively lower at greater distances away from the central portion.
7. Method in accordance with claim 6, wherein said blank (1, 11) of metallic material is a continuous wire or a rod and heating to said temperature gradient pattern is applied repeatedly on the continuous metal wire with a predetermined interval while the blank (1, 11) of metallic material is under said tensile force.
8. Method in accordance with claim 1, wherein the maximum heating temperature, when heating with said temperature gradient pattern is applied to said metallic material in the axial direction (D) thereof, falls within the range of 600°C-1000°C.
9. Method in accordance with any one of claims 1 to 8, wherein the operation of applying heating of said temperature gradient pattern to said metallic material blank (1, 11) in the axial direction (D) thereof is carried out before applying the axial tensile force to the blank (1, 11) so as to deform the same (1, 11) in the axial direction (D) intermittently and repeatedly, and the taper formed metallic material is cut at the minimum diametered portion (e) so as to continuously obtain the tapered rods which are tapered on either end portion thereof.
10. Method in accordance with claim 1, wherein the tensile deformation to obtain the tapered portion (c, d) is applied at a rate of strain within the range of 0.5%/sec- '1000%/sec as measured at a minimum diameter section (e).
11. Method in accordance with claim 10, wherein the tensile force is applied to the blank (1, 11) after said blank of metallic material has been heated to a predetermined temperature gradient pattern, and the speed of pulling the blank (1, 11) of metallic material is gradually varied from high to low.
12. Method in accordance with claim 11, wherein the speed of pulling the blank (1, 11) of metallic material is lowered intermittently and stepwise by means of dividing the pulling amount into several steps.
13. Method for manufacturing a tapered rod from a blank (11) of metallic material in a wire state by directly heating said blank (11) of metallic material by passing electric current between two points on said blank (11) of metallic material and forming a predetermined temperature gradient pattern of heating between the two points on said blank (11) of metallic material through individual control of cooling amount (V1―Vn) at each of a plurality of cooling zones arranged between said two points, before applying tensile force between said two points, so as to form a tapered portion (c, d) having a diameter varying in the axial direction (D) of said blank (D) of metallic material, whereby the surface temperature at any one portion of said blank (11) of metallic material is measured to control the current amount based on the data of this measurement, so that the temperature at the temperature measuring position may be thereby adjusted to a target temperature.
14. Method in accordance with claim 13, wherein the measuring of the surface temperature is carried out at a central portion between said two points on the blank (11) of metallic material.
15. Method in accordance with claim 13, wherein the measuring of the surface temperature is carried out, in addition to the control of the direct resistance heating, at a plurality of positions between said two points on said blank (11) of metallic material, and the temperature data thus obtained is utilized in controlling the cooling amount (V1―Vn) at each of said cooling zones in a next taper forming process.
16. Method in accordance with claim 15, wherein actual dimension of a formed tapered portion (c, d) by the heating and pulling by the tensile force is measured for thereby adjusting the target temperature gradient pattern, and the adjusted temperature gradient pattern is utilized for the cooling amount (V1―Vn) control at each of the cooling zones in a next taper forming process which is based on said temperature data.
17. An apparatus for carrying out the method of claims 13 to 16 for manufacturing a tapered rod from a metallic material (11) in a linear state comprising:
a pulling mechanism (12, 22) for chucking said metallic material (11) at two points thereon and pulling the same (11) by tensile force in a direction (D) enlarging the distance between said two points;
an electric current supplying mechanism (15) for supplying a predetermined amount of current between said two points so as to directly heat said metallic material (11);
a plurality of cooling means (Ci-cn), arranged between the chucked two points of said metallic material (11), respectively adjustable in cooling capacity (V1―Vn) thereof;
a temperature detecting means (16, 17) capable of measuring the surface temperature of said metallic material (11) at least at one position between said two points; and
a heating temperature controlling mechanism (19) for controlling the amount of heating by current from said electric current supplying mechanism (15) based on an input signal from said temperature detecting means (16, 17).
18. An apparatus in accordance with claim 17 which further comprises a cooling control mechanism (18) for controlling the cooling capacity (Vi-Vn) individually at each of said plurality of cooling means (C1―Cn) based on an input signal from said temperature detecting means (16, 17).
19. An apparatus in accordance with claim 18 further comprising a dimension measuring mechanism (20) for measuring actual dimension of a formed tapered portion (c, d) by the heating and pulling and an adjusting mechanism (21) for adjusting the target temperature gradient pattern based on the dimensional data entered from said dimension measuring mechanism (20), whereby cooling capacity control at each cooling means is, according to the temperature gradient pattern adjusted at said adjusting mechanism (21), performed based on an input signal from the temperature detecting means (13; 16, 17) in said cooling control mechanism (18).
20. An apparatus in accordance with any one of the claims 17 to 19, wherein said pulling mechanism (12, 22) functions as a puller in the chucking and pulling of said metallic material (11) as well as a contact for flowing electric current to said metallic material (11) so as to directly heat the same (11).
21. An apparatus for carrying out the method of claims 1 to 9 for manufacturing a tapered rod from a metallic material in a linear state comprising:
a pulling mechanism (2) for chucking said metallic material (1) at two points thereon and pulling the same (1) by tensile force in a direction (D) enlarging the distance between said two points; and
a plurality of heating means (Hi-Hn) for individually heating said metallic material (1) with a thereby predetermined temperature gradient pattern, whereby said metallic material which has been imparted a predetermined temperature gradient pattern thereon by said plurality of heating means (H1―Hn) is pulled by said pulling mechanism (2) so as to be formed into a tapered rod having a tapered portion (c, d) with an axially varying diameter.
22. An apparatus in accordance with claim 21, wherein a heating control mechanism (3) is provided, in addition to a temperature detecting means (T1―Tn) for measuring the temperature of said metallic material (1) which is heated by said plurality of heating means (H1-Hn) for adjustably controlling the heating temperature at each heating zone based on the actual temperature of said metallic material (1) measured by said temperature detecting means (T1-Tn).
23. An apparatus in accordance with claim 21, wherein said plurality of heating means (Hi-H.) are high-frequency induction heating means.
24. An apparatus in accordance with claim 23, wherein said high-frequency induction heating means (Hi-Hn) are composed of a plurality of coils, being respectively varied in the number of coil windings, arranged in the axial direction of said metallic material (1) and connected in series for running predetermined amounts of current therethrough.
25. An apparatus in accordance with claim 23, wherein said high-frequency induction heating means (H1―Hn) are composed of a plurality of coils with different diameters which are arranged in the axial direction of said metallic materiai (1) and connected in series for running predetermined amounts of current therethrough.
26. An apparatus in accordance with claim 23, wherein said high-frequency induction heating means (H1―Hn) are composed of a plurality of coils, to each of which electric current is fed independently, arranged in the axial direction of said metallic material (1), and a predetermined pattern of temperature gradient is formed by means of varying the current density flowed to each portion of said metallic material through variation of the current amount fed to each of said coils.
EP19810304219 1980-12-11 1981-09-15 Method for manufacturing tapered rods and apparatus therefor Expired EP0054343B1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AT81304219T ATE8970T1 (en) 1980-12-11 1981-09-15 METHOD AND APPARATUS FOR MANUFACTURING TAPERED RODS.

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
JP175031/80 1980-12-11
JP17503180A JPS5797819A (en) 1980-12-11 1980-12-11 Manufacture of tapered rod
JP17627680A JPS57100816A (en) 1980-12-13 1980-12-13 Manufacture of tapered rod
JP176276/80 1980-12-13

Publications (3)

Publication Number Publication Date
EP0054343A2 EP0054343A2 (en) 1982-06-23
EP0054343A3 EP0054343A3 (en) 1982-07-21
EP0054343B1 true EP0054343B1 (en) 1984-08-15

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EP19810304219 Expired EP0054343B1 (en) 1980-12-11 1981-09-15 Method for manufacturing tapered rods and apparatus therefor

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EP (1) EP0054343B1 (en)

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4800744A (en) * 1986-09-11 1989-01-31 Kabushiki Kaisha Kobe Seiko Sho Production of a taper rod
DE59502772D1 (en) * 1995-09-14 1998-08-13 Benteler Werke Ag Process for the production of metallic construction elements with different wall thicknesses

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1752609A1 (en) * 1968-06-21 1971-06-03 Brueninghaus Gmbh Stahlwerke Method and device for the continuous production of conical metal rods

Also Published As

Publication number Publication date
EP0054343A3 (en) 1982-07-21
EP0054343A2 (en) 1982-06-23

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