This application claims the priorities of Japanese Patent Applications No. 2009-159585, filed Jul. 6, 2009 and No. 2010-11803, filed May 13, 2010. All their disclosures are incorporated herein by reference.
Technical Field
The resent invention relates to an apparatus and a method for feeding inoculants into a flow of molten metal and an automatic molten metal pouring machine.
Generally, to produce a casting product, inoculants are fed into a stream of molten metal to be poured into a mold such that material of the molten metal is prepared.
Specifically, the inoculants are penetrated into the molten metal that has been poured into the mold by means of an automatic molten metal pouring machine in a predetermined proportion to obtain a casting product having a predetermined hardness. However, it is difficult to feed the inoculants to the molten metal with the predetermined proportion and thus may cause a problem in which, for instance, the variation of the hardness of the casting products is increased. Therefore, it is preferable to overcome the above problem, since there is neither an apparatus nor a method for appropriately feeding the inoculants into the molten metal that has been poured into the mold.
Means to Solve the Problem
An objective of the present invention is to provide a method and an inoculation apparatus for feeding a predetermined quantity of inoculants into a flow of molten metal to be poured into a mold by means of an automatic molten metal pouring machine, and the automatic molten metal pouring machine that uses the inoculation apparatus.
Means to Solve the Problem
The inoculation apparatus of the present invention feeds inoculants to molten metal that has been poured from an automatic molten metal pouring machine in a mold with a predetermined proportion that corresponds to the quantity of the molten metal to be poured into the mold with a gradual variation. The inoculation apparatus comprising:
a traveling means for traveling along a pouring line in which a plurality of flasks each contains a mold are arranged in a line;
a holding means for holding inoculants, wherein the holding means is mounted on the traveling means;
a feeding means for receiving the inoculants to be fed to the mold from the holding means and feeding the received inoculants, wherein the feeding means is located beneath the holding means;
a driving means, which is drivingly connected to the feeding means, for driving the feeding means; and
a controlling means for controlling the driving means; wherein the controlling means drives the feeding means through the driving means based on the quantity of the molten metal to be poured into the mold such that the inoculants are fed from the feeding means to the molten metal to be poured into the mold from the automatic molten metal pouring machine. In one embodiment of the present invention, the automatic molten metal pouring machine includes a ladle, and wherein the inoculation apparatus further includes a detecting means for detecting the flow rate of the molten metal to be poured into the mold from the ladle and for generating a signal corresponding to the detected flow rate such that the controlling means controls the driving means based on the signal from the detecting means. Alternatively, the inoculation apparatus may further include a load cell for detecting the weight of the molten metal in the ladle and for generating a signal that indicates the detected weight such that the controlling means controls the driving means based on the signal from the load cell. In this configuration, preferably, the controlling means includes:
a first calculating means for calculating the weight of the molting metal in the ladle based on the signal from the load cell;
a second calculating means for calculating the flow rate of the molten metal that has been poured from the ladle into the mold;
an injected-quantity determining means for determining the injected quantity of the inoculants based on the result of the calculation of the second calculating means; and
a driving-indicating means for determining the amount of driving of the driving means such that the feeding means is driven based on the determined injected quantity of the inoculants that is determined by the injected-quantity determining means. In the embodiment using the load cell, the load cell may be located beneath the ladle. The controlling means controls the ladle based on the signal from the ladle, while the controlling means controls the inoculation apparatus such that the inoculants are fed into the molten metal in a proportion that corresponds to the quantity of the molding metal that has been poured from the ladle into the mold.
The method for feeding inoculants of the present invention feeds inoculants from an inoculation apparatus to molten metal to be poured from an automatic molten metal pouring machine to a mold, wherein the inoculation apparatus includes a holding means, which is mounted on a traveling means for traveling along a pouring line in which a plurality of flasks, each containing a mold, are arranged in a line, for holding the inoculants, a feeding means, which is located beneath the holding means, for receiving the inoculants to be fed to the mold from the holding means and feeding the received inoculants, a driving means, which is drivingly connected to the feeding means, for driving the feeding means, and a controlling means for controlling the driving means. The method comprises controlling the driving means by the controlling means such that the inoculants are fed, through the feeding means, into the molten metal to be poured from the automatic molten metal pouring machine to the mold, with a predetermined proportion that corresponds to a quantity of the molten metal to be poured in a gradual variation.
With the present invention, to the molten metal to be poured into the mold from the automatic molten metal pouring machine, the inoculants can be fed with the predetermined proportion corresponding to the quantity of the molten metal to be poured in a gradual variation such that the injected quantity of the inoculants can be reduced to the optimal quantity. Therefore, the present invention provides beneficial advantages in that a contribution of a cost reduction of the casting products and a reduction of the incidence of defective casting products due to a variation in the hardness can be achieved.
The accompanying drawings, which are incorporated in and constitute a part of the specification, schematically illustrate a preferred embodiment of the present invention, and together with the general description given above and the detailed description of the preferred embodiment given below, serve to explain the principles of the present invention.
By reference to
As illustrated in
As illustrated in
The controller 30, which is provided with the control panel 7, controls the driving mechanism 10 in response to a signal from the load cell 14 for detecting the weight of the molten metal in the ladle 13. Specifically, for instance, as illustrated in
The inoculation apparatus 1 that is configured as described above detects and measures the quantity of the molten metal that is poured by means of the load cell 14, under the control of the controller 30 of the control panel 7. Simultaneously, the inoculation apparatus 1 causes the ladle 13 of the main unit 12 of the pouring machine to pour the molten metal into the mold 2. Under the control of the control panel 7, the inoculation apparatus 1 controls the number of rotations and the time of rotations of the driving motor 10a of the driving mechanism 10, while the inoculation apparatus 1 drives the screw conveyor 9 such that the inoculations are fed to the molten metal 16 to be poured into the mold from the chute 11 of the screw conveyor 9 with the predetermined proportion that corresponds to the quantity of the molten metal to be poured in a gradual variation. Namely, the controller 30 drives the screw conveyor 9 through the driving mechanism 10 corresponding to the quantity of the molten metal that has been poured from the ladle 13 of the main unit 12 of the automatic molten metal pouring machine such that an appropriate quantity of the inoculants are fed to the molten metal.
The inoculation apparatus 1 and the method for feeding the inoculants using the apparatus 1 of this embodiment are equipped with the hopper 8, the screw conveyor 9, the driving mechanism 10, and the controller 30. Under the control of the controller 30, the screw conveyor 9 is driven through the driving mechanism 10 corresponding to the quantity of the molten metal that has been poured from the ladle 13 of the main unit 12 of the automatic molten metal pouring machine such that the inoculants feeding from the screw conveyor 9 are fed to the molten metal 16 to be poured into the mold 2 from the ladle 13 of the main unit 12 of the automatic molten metal pouring machine. Therefore, the inoculants can be fed into the molten metal to be poured into the mold from the automatic molten metal pouring machine with the predetermined proportion corresponding to the quantity of the molten metal to be poured in a gradual variation such that the injected quantity of the inoculants can be reduced to the optimal quantity. Therefore, a contribution to the cost reduction of the casting products and a reduction of the incidence of defective casting products due to a variation in the hardness can be achieved.
The inoculation apparatus 1 is configured such that the controller 30 controls the driving mechanism 10 based on the signal from the load cell 14 for detecting the weight of the molten metal in the ladle 13 to achieve the automation of feeding the inoculants with a simple configuration, and the inoculants can be fed with a proportion appropriately corresponding to the quantity of the molten metal to be poured in a gradual variation. Also, in this embodiment, the controller 30 includes the initiation-feeding-indicating means 31 for indicating the initiation of feeding the inoculants in response to a command of the initiation of feeding the inoculants, the first calculating means 32 for calculating the weight of the molten metal, the second calculating means 33 for calculating the flow rate of the molten metal that has been poured, the injected-quantity indicating means 34, which has a function for determining the injected quantity of the inoculants, and the inverter-driving-indicating means 35, which has a function for determining the amount of the driving of the driving mechanism 10 such that an automatization of the in-stream inoculation can be achieved with the simplified configuration to feed the inoculants to the molten metal with a proportion that appropriately corresponds to the quantity of the molten metal to be poured in a gradual variation.
Further, the automatic molten metal pouring machine 20 that is provided with the inoculation apparatus 1 constitutes the configuration in which the ladle 13 and the load cell 14 are provided such that the controller 30 controls the ladle 13 based on the signal from the load cell 14, while the inoculants are fed to the molten metal with a predetermined proportion that corresponds to the quantity of the molten metal to be poured from the ladle 13. With this configuration, the automatization of pouring the molten metal and feeding the inoculants can be achieved with a further simplified configuration to feed the inoculants to the molten metal with a proportion that appropriately corresponds to the quantity of the molten metal to be poured in a gradual variation. Therefore, a further reduction in the incidence of the defective casting products can be achieved.
In the above embodiment, although the controller of the inoculation apparatus 1 uses the controller 30 as illustrated in
Some embodiments of the present invention are described above. Nevertheless, it will be understood that various modifications, variations, and alternatives may be made without departing from the spirit and scope of the invention. For example, the means for traveling along the pouring line 4, the means for holding the inoculants, and the means for conveying the inoculants are not limited to the illustrative shapes of the traveling truck 6, the hopper 8, and the screw conveyor 9 having the chute 11 for the convenience of the explanations. The appended claims are intended to include an embodiment in which these elements are replaced with equivalents.
1 Inoculation apparatus
6 Traveling Truck (Traveling Means)
8 Hopper (Holding Means)
9 Screw Conveyer (Feeding Means)
10 Driving Mechanism (Driving Means)
12 Main Unit of Automatic Molten Metal Pouring Machine
14 Load Cell
20 Automatic Molten Metal Pouring Machine
30, 40 Controllers (Controlling Means)
32 First Calculating Means
33 Second Calculating Means
35 Inverter-Driving Indicating Means (Driving-indicating Means)
41 Flow-rate Detector (Detecting Means)
Number | Date | Country | Kind |
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2009-159585 | Jul 2009 | JP | national |
2010-110803 | May 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/060110 | 6/15/2010 | WO | 00 | 1/5/2012 |