System and Method for Induction Hardening of Metal Rings
20180179609 · 2018-06-28
Inventors
Cpc classification
C21D11/00
CHEMISTRY; METALLURGY
H05B6/40
ELECTRICITY
C21D2221/10
CHEMISTRY; METALLURGY
F27D2099/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21D1/18
CHEMISTRY; METALLURGY
International classification
H05B6/40
ELECTRICITY
C21D1/18
CHEMISTRY; METALLURGY
Abstract
System and method for induction hardening of metal rings, which includes two heads, each of which is attached to an induction medium; a system for vertical approximation of the two induction media to the metal ring; a system for horizontal approximation of the induction media to walls of an internal surface of the metal ring; and an oscillating circuit, wherein the system of vertical approximation displaces simultaneously in a vertical direction the two induction media until they are introduced into the metal ring; the system of horizontal approximation separates the two induction media from each other in a horizontal direction to bring each induction medium closer to the walls of the inner surface of the metal ring to heat it for a pre-established time, and to displace vertically the two induction media simultaneously until they reach a shower position to obtain the hardening of the metal ring.
Claims
1. A system for induction hardening of metal rings comprising: two heads arranged opposite each other, where each head is attached to an induction medium; a system for vertical and simultaneous approximation of the two heads together with the two induction media to the metal ring; a system for horizontal and simultaneous approximation of the two heads together with the two induction media to the walls of an inner surface of the metal ring; and an oscillating circuit which fixes a working frequency for the system, wherein the vertical approximation system displaces simultaneously in a vertical direction the two induction media until the two induction media are introduced into the metal ring, the horizontal approximation system separates the two induction media from each other, to bring each half inductor closer to the walls of the inner surface of the metal ring to heat the metal ring for a pre-established time, and displace the two induction media vertically and simultaneously until they reach the shower position to obtain hardening of the metal ring.
2. The system for induction hardening of metal rings according to claim 1, wherein the vertical approximation system comprises first guiding means for vertical displacement of each head with the respective induction medium.
3. The system for induction hardening of metal rings according to claim 1, wherein the horizontal approximation system comprises second guiding means for horizontal displacement of each head with the respective induction medium.
4. The system for induction hardening of metal rings according to claim 1, wherein each induction medium comprises at a lower end a quenching shower device.
5. A method for induction hardening of metal rings which uses the system defined in claim 1, comprising: i) displacing simultaneously and vertically, using the system of vertical approximation, the two heads arranged opposite each other, each with the respective induction medium, until both induction media are introduced into the metal ring to be heated, where said induction media are in the rest position; ii) bringing the two induction media horizontally closer to the walls of the inner surface of the metal ring using the horizontal approximation system; iii) injecting current into the two induction media to heat the metal ring for a pre-established time until the austenitizing temperature is reached; iv) returning both induction media to the rest position and displacing them vertically and simultaneously until they reach the shower position; and showering the metal ring with two quenching shower devices until hardening is obtained.
6. The system for induction hardening of metal rings according to claim 2, wherein the horizontal approximation system comprises second guiding means for horizontal displacement of each head with the respective induction medium.
7. The system for induction hardening of metal rings according to claim 2, wherein each induction medium comprises at a lower end a quenching shower device.
8. The system for induction hardening of metal rings according to claim 3, wherein each induction medium comprises at a lower end a quenching shower device.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0026] To complete the description and in order to give a better understanding of the characteristics of the invention, this descriptive report is accompanied by a series of drawings that are an integral part of the report, wherein, for illustration purposes and without limitation, the following has been represented:
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043] A list of the different components that have been represented in the figures and that comprise the invention is detailed below: [0044] 1. System for induction hardening of rings. [0045] 2. Metal ring. [0046] 3. Susceptible areas of the metal ring. [0047] 4. Conventional inductor. [0048] 5. Head. [0049] 6. Induction medium. [0050] 7. Quenching shower device. [0051] 8. Vertical approximation system. [0052] 9. Horizontal approximation system. [0053] 10. First guiding means. [0054] 11. Second guiding means. [0055] 12. Oscillating circuit. [0056] 13. Condensers. [0057] 14. Output transformers. [0058] 15. Current generator. [0059] 16. Effective section the conventional inductor facing the track of the metal ring. [0060] 17. Effective section of the two induction media facing the track of the metal ring. [0061] 18. Current transformer.
DETAILED DESCRIPTION
[0062] The object of this invention refers to a system (1) and a method developed for the induction hardening of metal rings.
[0063] The system (1) for induction hardening of metal rings (2) comprises:
[0064] a current generator (15): which converts the energy obtained from the electricity grid into a medium or high frequency signal suitable for powering the system (1);
[0065] an oscillating circuit (12): which fixes the system working frequency (1), allowing the heating to present characteristics which are in tune with the process to be achieved.
[0066] Essentially, the oscillating circuit (12) comprises one or more condensers (13), the number and type of which depends on the electrical characteristics of the oscillating circuit (12) to be established, and a current transformer (18);
[0067] output transformers (14): defines the multiplication factor of the inductor impedance and, together with the condensers (13), fixes the operating frequency of the oscillating circuit (12). In this case, two output transformers are used (14);
[0068] two heads (5) arranged opposite each other, where each head (5) is attached to an induction medium (6), where said induction media (6) are responsible for heating the susceptible areas (3) of the walls of the inner surface of the metal ring (2). In turn, each induction medium (6) is attached to a quenching shower device (7);
[0069] a system of vertical and simultaneous approximation (8) of the two heads (5) together with the two induction media (6) to the metal ring (2) to be heated: Responsible for performing the vertical movement of the set of inductors (6) and output transformers (14). Comprises first guiding means (10), preferably guides, to displace each head (5) with its respective induction medium (6) in a vertical direction;
[0070] a system of horizontal and simultaneous approximation (9) of the two heads (5) together with the two induction media (6) to the metal ring (2) to be heated: Responsible for performing the horizontal movement of the set of inductors (6) and output transformers (14). Comprises second guiding means (11), preferably guides, to displace each head (5) with its respective induction medium (6) in a horizontal direction;
wherein:
[0071] in a first step, the first guiding means (10) of the vertical approximation system (8) allow the two heads (5) arranged opposite each other, each with its respective induction medium (6), to be displaced simultaneously and vertically until both induction media (6) opposite each other are introduced into the metal ring (2) to be heated, where said induction media (6) are in the rest position (so close to each other that it might be a single inductor).
[0072] in a second step, the second guiding means (11) of the horizontal approximation system (9) allow the two heads (5) arranged opposite each other, together with the two induction media (6), to be separated and opened, in such a way that each induction medium (6) moves closer to the walls of the inner surface of the metal ring (2) to be heated for a pre-established time until the austenitizing temperature is reached. Subsequently, once said induction media (6) return to the rest position, they are displaced vertically and simultaneously until they reach the shower position to obtain hardening of the metal ring (2).
[0073] As each induction medium (6) is attached in turn to a shower device (7), it is obvious that the two shower devices (7) make the same movements as the induction media (6) and the two heads (5).
[0074] The two shower devices (7) are metal or polymer parts which have been drilled with holes so that liquid can be projected onto the surface to be cooled.
[0075] Part of the oscillating circuit (12) (condensers (13) and current transformer (18)) is located, generally, in the current generator cupboard (15). The current transformer (18) allows the charge to be adapted to the output power of the current generator (15).
[0076] The power received by each induction medium (6) is approximately between 75-125 kW, while the voltage received by each induction medium (6) is around 72-125 Vrms, and the current received in each induction medium (6) 4000-6500 Irms. The working frequency of the induction hardening system (1) is usually between 11-18 kHz, approximately.
[0077]
[0078] Initially, both induction media (6) are in the rest position (
[0079] Once the two induction media (6) opposite each other have been introduced into the metal ring (2) to be heated (
[0080] Once in the working position (
[0081] By bringing the two induction media (6) as close as possible to the walls of the inner surface of the metal ring (2), more energy can be applied to the metal ring (2) in the same time; consequently, the heating times are short, unlike current systems. In addition, the effective section (17) covered by each half inductor (6) facing the metal ring (2) is approximately 150 degrees, i.e. 300 degrees in total with both induction media (6), whereas the effective section (16) of the conventional inductor (4) covers only 120 degrees.
[0082] Subsequently, once the austenitizing temperature is reached, both induction media (6) return to the rest position (together) by means of the horizontal approximation system (9) which separated them, and are now displaced vertically and simultaneously using the vertical approximation system (8) until they reach the shower position, and are kept in this shower position for the time necessary to obtain the hardening.
[0083] The invention also describes the method for induction hardening of metal rings (2), where the method comprises the following stages: [0084] i) displacing simultaneously and vertically, using the system of vertical approximation (8), the two heads (5) arranged opposite each other, each with its respective induction medium (6), until both induction media (6) are introduced into the metal ring (2) to be heated, where said induction media (6) are in the rest position. [0085] ii) bringing the two induction media (6) horizontally closer to the walls of the inner surface of the metal ring (2) using the horizontal approximation system (9), [0086] iii) injecting current into the two induction media (6) to heat the metal ring (2) for a pre-established time until the austenitizing temperature is reached, [0087] iv) returning the induction media (6) to the rest position and displacing them vertically and simultaneously until they reach the shower position, [0088] v) showering the metal ring (2) with the two quenching shower devices (7) until hardening is obtained.
[0089] This method allows the life of both the metal ring (2) and the induction media (6) to be longer, as the density of current and the thermal stress are reduced by increasing the efficiency and having the induction media (6) working closer to the walls of the metal ring (2).
[0090] The present invention is not limited by the embodiment disclosed herein. Other embodiments can be made by persons skilled in the art in light of this description. In consequence, the scope of the invention is defined by the following claims.