Oven device for heat-treating a metal blank
11131001 · 2021-09-28
Assignee
Inventors
- Gerald Eckertsberger (Wilhering, AT)
- Thomas Fuchs (Wallsee, AT)
- Fritz Josef Ebner (Wilhering, AT)
- Heribert Lochner (Leonding, AT)
- Robert Ebner (Leonding, AT)
Cpc classification
F27D99/0001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D99/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an oven device for heat-treating a blank. The oven device has an oven housing having an oven chamber, in which the blank can be heat-treated with a defined temperature, and a tempering body, which is arranged in the oven chamber. Furthermore, the oven device has a tempering body and a tempering device. The tempering device is arranged within the oven chamber movably between a first position and a second position, such that the tempering device is, at least in the first position, in thermal contact with the tempering body and can, in the second position, be brought in thermal contact with the blank.
Claims
1. Oven device for heat-treating a metal blank, the oven device having: an oven housing having an oven chamber, in which the metal blank is heat-treatable with a defined temperature, a tempering body, which is arranged in the oven chamber, wherein the tempering body has a tempering surface, a tempering device, wherein the tempering device is arranged within the oven chamber movably with respect to the tempering body between a first position and a second position, such that a tempering section of the tempering device is in thermal contact with the tempering body and spaced apart from the metal blank at least in the first position for being tempered by the tempering body via the tempering surface and the tempering section can be brought spaced apart from the tempering body in direct contact and in thermal contact with the metal blank in the second position for tempering the metal blank wherein pre-defined regions of the metal blank can be cooled or heated up by the thermal contact between the tempering section and a pre-defined surface region of the pre-defined regions of the metal blank, wherein the tempering device has a plurality of tempering pins, wherein the tempering body has a plurality of receiving boreholes, into each of which one of the tempering pins can be introduced, respectively, wherein the plurality of tempering pins is arranged movably between the first position and a second position, such that the plurality of tempering pins is, in the first position, in thermal contact with the tempering body and can, in the second position, be brought in thermal contact with the blank; and a drive device, wherein the drive device is configured to move the tempering device between the first position and the second position.
2. Oven device according to claim 1, wherein the tempering device is formed as a belt element, wherein the belt element has a first section, wherein the belt element is arranged within the oven chamber movably between the first position and the second position, such that the first section is in thermal contact with the tempering surface in the first position and that the first section can be brought in thermal contact with the blank in the second position, wherein the belt element further has a second section, which is spaced apart from the first section, and wherein the second section is formed such that in the second position the second section can be arranged spaced apart from the blank.
3. Oven device according to claim 2, wherein the belt element forms a belt loop, which surrounds the tempering body, wherein the belt element is arranged such that, in the second position, the first section can be arranged between the tempering body and the blank.
4. Oven device according to claim 2, wherein, in the second position, the first section is spaced apart from the tempering body.
5. Oven device according to claim 1, wherein the second section is formed such that, in the second position, the second section is in thermal contact with the tempering surface of the tempering body.
6. Oven device according to claim 2, wherein the belt element is configured such that it can be laid on the blank, such that, upon movement of the blank, a movement of the belt element relative to the tempering body is generatable.
7. Oven device according to claim 2, wherein the belt element has a ring webbing.
8. Oven device according to claim 1, wherein the tempering pins are arranged slidably in the respective receiving, such that the tempering pins, in the second position, can be laid on a surface of the blank and can be fitted to a contour of the surface of the blank.
9. Oven device according to claim 1, wherein the tempering body is arranged exchangeably in the oven chamber.
10. Oven device according to claim 1, wherein the tempering body is arranged movably in the direction towards the blank.
11. Oven device according to claim 1, wherein the tempering device is a temperature control device.
12. Oven device according to claim 11, wherein the tempering control device has a pipe, which extends within the tempering body, wherein a medium for tempering the tempering body can be fed into the pipe.
13. Oven device according to claim 1, further having an insulation housing, which is arranged in the oven chamber, wherein the insulation housing surrounds the tempering body at least partially, such that insulation housing screens thermally the tempering body from a region of the oven chamber, which surrounds the insulation housing.
14. Oven device according to claim 1, further having an insulation element, which can be introduced selectively between the tempering body and the blank.
15. Oven device according to claim 1, further having a conveying device for conveying the blank within the oven chamber.
16. Oven device for heat-treating a metal blank, the oven device having: an oven housing having an oven chamber, in which the metal blank is heat-treatable with a defined temperature, a tempering body, which is arranged in the oven chamber, wherein the tempering body has a tempering surface, wherein the tempering body is arranged movably in the direction towards the metal blank, a tempering device, wherein the tempering device is arranged within the oven chamber movably with respect to the tempering body between a first position and a second position, such that a tempering section of the tempering device is in thermal contact with the tempering body and spaced apart from the metal blank at least in the first position for being tempered by the tempering body via the tempering surface and the tempering section can be brought spaced apart from the tempering body in direct contact and in thermal contact with the metal blank in the second position for tempering the metal blank wherein pre-defined regions of the metal blank can be cooled or heated up by the thermal contact between the tempering section and a pre-defined surface region of the pre-defined regions of the metal blank, and a drive device, wherein the drive device is configured to move the tempering device between the first position and the second position.
17. Oven device for heat-treating a metal blank, the oven device having: an oven housing having an oven chamber, in which the metal blank is heat-treatable with a defined temperature, a tempering body, which is arranged in the oven chamber, wherein the tempering body has a tempering surface, a tempering device, wherein the tempering device is arranged within the oven chamber movably with respect to the tempering body between a first position and a second position, such that a tempering section of the tempering device is in thermal contact with the tempering body and spaced apart from the metal blank at least in the first position for being tempered by the tempering body via the tempering surface and the tempering section can be brought spaced apart from the tempering body in direct contact and in thermal contact with the metal blank in the second position for tempering the metal blank wherein pre-defined regions of the metal blank can be cooled or heated up by the thermal contact between the tempering section and a pre-defined surface region of the pre-defined regions of the metal blank, a drive device, wherein the drive device is configured to move the tempering device between the first position and the second position, and an insulation element, which can be introduced selectively between the tempering body and the metal blank.
Description
SHORT DESCRIPTION OF THE DRAWINGS
(1) In the following, embodiment examples are described in more detail with reference to the appended drawings for a further explanation and a better understanding of the present invention. In the figures:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
(7) Same or similar components in different figures are provided with the same reference numerals. The representations in the drawings are schematically.
(8)
(9) Furthermore, the oven device 100 may have a tempering device 105, 405, wherein the tempering device 105, 405 may be arranged movably within the oven chamber 113 between a first position and a second position, such that the tempering device 105, 405 may be, at least in the first position, in thermal contact with the tempering body 103, and can, in the second position, be brought in thermal contact with the metal blank 101.
(10) In an exemplary embodiment, the tempering device may be formed (or implemented) as a belt element 105 (see
(11) According to the exemplary embodiment in
(12) The oven device 100 may be configured for heating the metal blank 101. The metal blank 101 may be heated up or cooled down in the oven device 100 to a desired temperature, e.g. to the austenitizing temperature. The austenitizing temperature may amount, for example, to from approximately 750° C. to approximately 1000° C., wherein the lower boundary of the austenitizing temperature may depend on the material of the metal component part (steel and alloy percentages).
(13) The oven device 100 may have the oven chamber (see
(14) In
(15) Tempering elements 111, e.g. heating elements or cooling elements, can be arranged in the oven chamber, in order to possibly adjust a desired temperature profile in the oven chamber, such that the metal blank 101 may be selectively heated up, cooled down or kept at a constant temperature. The temperature in the oven chamber of the oven device 100 can be adjusted, for example, between approximately 100° C. up to approximately 1000° C.
(16) In order to selectively adjust different ductile regions of a metal blank 101, specific regions of the metal blank may be selectively heated up temporally differently and may in particular be cooled down temporally differently, in order to thereby possibly adjust different microstructure regions in the different regions of the metal blank 101.
(17) In particular, pre-determined regions of the metal blank 101 can be cooled down in the oven device 100, by bringing a first section 101 of the band element 105 in thermal contact with a pre-determined surface region of the metal blank 101, which is to be cooled down. In the embodiment example in
(18) The tempering body 103 may have, in particular, a high heat storage capacity, such that the latter can perform plural cooling cycles of the first section 106 or of a second section 107 of the belt element.
(19) The belt element 105 may consist of a flexible and/or deformable material, and may be arranged movably between the first position and the second position by a drive device 201 (see
(20) The belt element 105 further may have a second section 107, which may be spaced apart from the first section 106. The second section 107 may be configured e.g. such that, in the second position, the second section 107 can be arranged spaced apart from the metal blank 101. In particular, the second section 107 may be configured such that, in the second position, the second section 107 may be in thermal contact with the tempering surface 104 of the tempering body 103 and/or may lie on the tempering surface 104.
(21) While, in the second position, the first section 106, for example, may cool a metal blank 101, the second section 107 may be cooled by the tempering body 103 and vice versa. In a following production step, the belt element 105 may then be moved from the second position to the first position, such that the first section 106 may be tempered (or temperature-controlled) by the tempering body 103 and the second section 107 may temper the metal blank 101 or a further metal blank.
(22) Accordingly, the belt element 105 may comprise further, third sections, which may be arranged between the first section 106 and the second section 107, and which may be, in a third position of the belt element 105, in thermal contact either with the tempering surface 104 of the tempering body 103 and/or with a metal blank 101.
(23) The first section 106 (and/or the second section 107) of the belt element 105 can be moved to the first position after cooling the metal blank 101, in which first position the first section 106 may be in thermal contact with the tempering surface 104 of the tempering body 103. This may mean that in the first position of the first section 106, the latter e.g. may lie on the tempering surface 104. In the first position, the first section 106 of the belt element 105 may thus be pre-cooled, and may subsequently be moved to (or in) the second position in which the first section 106 may be in thermal contact with the metal blank 101, in order to possibly quench the latter. Subsequently, the first section 106 may be moved anew to the first position for a pre-cooling.
(24) Thus, a defined region of the metal blank 101 or the whole metal blank 101 can be cooled down or alternatively heated up effectively with (or by) the first section 106 (and/or the second section 107) of the belt element 105. At the same time, the first section 106 can be cooled down multiple times by the tempering body 103 in order to possibly temper a plurality of metal blanks 101 and/or regions of metal blanks 101, without a high constructive effort or a time-costly changeover of the oven device 100 being necessary.
(25) The tempering body 103 in
(26) The tempering device 108 may have a pipe 109, which may extend within the tempering body 103. The medium for tempering the tempering body can be introduced in (or fed into) the pipe 109 (in particular from the exterior of the oven housing 102). The medium for tempering may be in particular gaseous or liquid. For example, the medium may be a cooling agent and/or a cooling liquid for cooling the tempering device 108. Thus, a liquid cooling of the tempering body 103 can be realized, such that those sections 106, 107 of the belt element 105, which may be in thermal contact with the tempering surface 104, may be cooled permanently in order to possibly subsequently temper anew the metal blank 101. In a preferred embodiment, in other words, the tempering body 103 may be a cooling body, which may have a temperature that may be significantly cooler than the temperature in the oven chamber, in particular less than half of the temperature in the oven chamber.
(27) In the embodiment example in
(28) In the embodiment example in
(29) Furthermore, an insulation housing 110 may be arranged in the oven chamber. The insulation housing 110 may surround at least partially the tempering body 103 and the belt element 105, such that the insulation housing 110 may screen thermally the tempering body 103 and the belt element 105 from a region of the oven chamber, which region may surround the insulation housing 110. The insulation housing 110 may, for example, have a cap shape and can be put over the tempering body 103, wherein the insulation housing 110 may have an opening in the direction towards the metal blank 101, such that the belt element 105 can be brought in contact with the metal blank 101 with one section 106, 107. For example, the region of the oven chamber, which may surround the insulation housing 110, may have a high temperature and may thus be used for heating the metal blank 101. Within the insulation housing 110, lower temperatures may then prevail, because the insulation housing 110 may insulate thermally the interior space of the insulation housing 110 from the surroundings of the insulation housing 110. Thus, a tempering of the metal blank 101 by the belt element 105 can be performed more efficiently, because lower thermal influences from other regions of the oven chamber may have a disturbing influence.
(30) The oven device 100 further may have a conveying device 112 for conveying the metal blank 101 within the oven chamber along the conveying direction 114. The conveying device 112 may have, for example, a plurality of conveying rollers, which can be driven. A metal blank 101 that may be arranged on the conveying rollers can be conveyed through the oven chamber along a conveying direction 114 by rotating the conveying rollers.
(31) Instead of the belt element 105 as the tempering device, also the plurality of tempering pins 405 together with a corresponding implementation of the tempering body 103 may be used in the oven device 100 from
(32)
(33) The belt element 105 as a belt loop may extend, for example, over one or plural driving rollers 201, wherein at least one driving roller may be driven and thus may drive the belt element in order to possibly move the sections 106, 107 back and forth between the first position and the second position. The belt element 105 as a belt loop may be arranged, for example, loosely over one driving roller 202, or pre-stressed around a driving roller 202. The belt element 105 may, for example, be driven according to the type of a belt drive. Thus, the belt element 105 may have, for example, tooth elements of the type of a toothed belt, which tooth elements may engage in corresponding tooth elements of a driving roller 202 in order to thus possibly drive the belt element 105. In other words, a V-belt (or fan belt) drive and/or a toothed belt drive can be enabled. Alternatively, for a pre-stress of the belt element 105 around the driving roller 202, a flat belt drive can be enabled.
(34)
(35) Furthermore, the tempering bodies 103, 103′ can be arranged exchangeably in the oven housing 102 and/or may be provided with a cooling or heating device (i.e. by the tempering device 108).
(36) The tempering bodies 103, 103′ may thus be substituted (or replaced) after tempering the first section 106 and/or the second section 107 and/or after a specific number of tempering cycles for maintenance or for their own tempering.
(37) The tempering bodies 103, 103′ may, for example, be formed as passive tempering bodies 103, 103′. This may mean that the tempering bodies 103, 103′ may have a high heat storage capacity, and may not actively be tempered during the arrangement in the oven chamber. This may mean that the tempering bodies 103, 103′ may heat up and/or may cool down themselves after plural (cycles of) heating up and/or cooling down of the corresponding sections 106 and 107 of the belt element 105. After a pre-defined boundary temperature of the respective tempering body 103, 103′ may be reached, the latter can be substituted and can, for example, be replaced by another, pre-tempered tempering body 103, 103′. Thus, the oven device 100 may be able to still temper corresponding metal blanks 101 without long changeover times.
(38)
(39) The tempering body 103 can be moved together with the tempering pins 405 relative to the blank 101. Alternatively, the plurality of tempering pins 405 can move relative to the tempering body 103 and the blank 101 (see the embodiment example in
(40) The tempering pins 405 may be arranged slidably in the respective receiving boreholes 501, such that the tempering pins 405 can, in the second position, be laid on a surface of the blank 101 and can be fitted to a contour of the surface of the blank 101.
(41) In the second position, the tempering pins 405 may lie directly on the surface of the blank 101. Upheavals of the contour of the surface of the blank 101 may shift the corresponding tempering pins 405 in the direction towards the tempering body 103, and recesses in the contour of the surface of the blank 101 may shift the corresponding tempering pins 405 away from the tempering body 103. Thus, even for an uneven (or non-planar) implementation of the blank 101 (see
(42) The tempering pins 405 and/or the tempering body 103 can be moved towards the blank 101, or depart from the latter, along a lifting direction 402 by a drive device 401. The drive device 401 may have, for example, a lifting device that is driven pneumatically or hydraulically.
(43) As is represented in
(44) As is further represented in
(45) Supplementarily, it is noted that “having” (or “comprising”) does not exclude other elements or steps, and “a” or “an” does not exclude a plurality. Furthermore, it is noted that features or steps, which have been described with reference to one of the embodiment examples above, can be used also in combination with other features or steps of other embodiment examples that are described above. Reference numerals in the claims are not to be considered as limitations.
LIST OF REFERENCE NUMERALS
(46) 100 oven device 101 metal blank 102 oven housing 103 tempering body 104 tempering surface 105 belt element 106 first section 107 second section 108 tempering device 109 pipe 110 insulation housing 111 tempering elements 112 conveying device 113 oven chamber 114 conveying direction 201 drive device 202 driving roller 401 drive device 402 drive direction 405 tempering pin 501 receiving borehole 502 insulating element 503 movement direction of insulating element