A box-type resistance heating furnace
By using a two-part furnace door structure and a guide lifting assembly, the problem of high furnace door lifting height in existing box-type resistance heating furnaces has been solved, achieving space saving and extended service life.
Patent Information
- Application Number
- CN202511406348.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-29
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2045-09-29
AI Technical Summary
The existing box-type resistance heating furnace door needs to be lifted to a high height to open, which takes up a lot of space and affects transportation and assembly.
The furnace door adopts a two-part structure, and through the cooperation of the guide component and the lifting component, the furnace door can be opened and closed in stages, reducing the height of each lifting operation.
It saves the space required to open the furnace door, facilitates transportation and assembly, and extends the service life of the furnace door.
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Figure CN120907335B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of kiln, in particular to a box type resistance heating furnace. BACKGROUND
[0002] The box type resistance heating furnace is a common industrial heating equipment, mainly used in metal heat treatment, ceramic sintering and other processes requiring high temperature environment. The design of the furnace is usually cubic or cuboid, hence the name "box type". The box type resistance heating furnace is composed of a furnace body, a furnace door, heating elements, a thermal insulation layer, and a control system. The furnace body is hollow with an opening on one side. The furnace door is slidingly connected to the opening side of the furnace body. The heating elements are located inside the furnace body. The thermal insulation layer is laid on the inner circumferential wall of the furnace body. The controller is used to control the opening or closing of the furnace door and the temperature adjustment inside the furnace body.
[0003] The existing box type resistance heating furnace has a vertical sliding groove on the opening side of the furnace body. The furnace door has guide columns on both sides, which are slidingly connected in the sliding groove. The control system controls the furnace door to rise or fall under the guidance of the sliding groove and the guide columns, thereby opening or closing the furnace door. However, the existing box type resistance heating furnace has the following problems when in use: Since the height of the furnace door is usually high, the furnace door needs to be lifted to a high height each time it is opened. This occupies a large space and is not conducive to the transportation and assembly of the box type resistance heating furnace. SUMMARY
[0004] Therefore, it is necessary to provide a box type resistance heating furnace to solve the problem of high lifting height and large space occupation when the furnace door is opened.
[0005] The above-mentioned purpose is achieved by the following technical solutions:
[0006] A box type resistance heating furnace comprises:
[0007] A furnace body with a front end extending inward to form a furnace chamber;
[0008] A furnace door divided into a first furnace door and a second furnace door, with the first furnace door and the second furnace door arranged above and below the front end of the furnace body;
[0009] A lifting assembly provided on the furnace body for driving the first furnace door and the second furnace door to rise or fall to open or close the furnace chamber;
[0010] A guide assembly connected between the furnace body and the first furnace door and the second furnace door;
[0011] The guide assembly guides the rising or falling of the first furnace door and the second furnace door.
[0012] Preferably, the guide assembly comprises a guide slot, a first guide column, and a second guide column.
[0013] The guide slot has two, both of which are arranged on the left and right side walls at the front end of the furnace body. The guide slot comprises a first vertical section, a second vertical section, an upper connecting section, a lower connecting section, a first intermediate connecting section, and a second intermediate connecting section. The first vertical section and the second vertical section are spaced apart front and back and parallel to each other. The upper end of the first vertical section is higher than the upper end of the second vertical section, and the lower end of the first vertical section is lower than the lower end of the second vertical section. The upper connecting section is connected between the upper end of the first vertical section and the upper end of the second vertical section, and the lower connecting section is connected between the lower end of the first vertical section and the lower end of the second vertical section. The lower connecting section and the upper connecting section are parallel to each other. The first intermediate connecting section and the second intermediate connecting section are parallel to the upper connecting section, and the first intermediate connecting section and the second intermediate connecting section are spaced apart and connected between the first vertical section and the second vertical section from top to bottom.
[0014] The side of the second vertical section away from the first vertical section is provided with a first inclined slot, a second inclined slot, a third inclined slot, and a fourth inclined slot from top to bottom at equal intervals. The first inclined slot, the second inclined slot, the third inclined slot, and the fourth inclined slot all incline downward.
[0015] A through slot is provided in the area enclosed by the first vertical section, the first intermediate connecting section, the second vertical section, the second inclined slot, the fourth inclined slot, and the lower connecting section at equal intervals inwardly. The through slot penetrates the side wall of the furnace body.
[0016] The first guide column and the second guide column each have four. Two of the first guide columns are arranged diagonally on the left and right sides of the first furnace door, and the other two of the first guide columns are arranged diagonally on the left and right sides of the second furnace door. Two of the second guide columns are arranged diagonally and slidably on the left and right sides of the first furnace door, and the other two of the second guide columns are arranged diagonally and slidably on the left and right sides of the second furnace door. The center points of the two first guide columns and the center points of the two second guide columns intersect each other.
[0017] The first guide column is slidably connected in the guide slot, and the second guide column is slidably connected in the through slot. The second guide column passes out of the through slot.
[0018] Preferably, the first guide column comprises a central sleeve, a support wheel, a sliding ring, a sliding rod, a spiral guide column and a first elastic member, the central sleeve is rotationally arranged on the side wall of the first furnace body and the second furnace body, the support wheel is provided in plurality, the plurality of support wheels are rotationally arranged on the central sleeve at equal intervals in the circumferential direction of the axis of the central sleeve, the sliding rod is coaxially and slidingly connected inside the central sleeve, the first elastic member is sleeved outside the sliding rod, and the two ends of the first elastic member are fixedly connected with the central sleeve and the sliding ring respectively, the first elastic member is used for moving the sliding rod away from the central sleeve, the sliding ring is coaxially arranged outside the sliding rod, the spiral guide column is arranged outside the sliding ring, a spiral guide groove is formed in the inner circumferal wall of the central sleeve, and the spiral guide column is slidingly connected in the spiral guide groove.
[0019] The spiral guide groove is configured to enable the central sleeve to rotate in the circumferential direction of its axis under the guidance of the spiral guide groove when the sliding rod reciprocally moves along its axis.
[0020] Preferably, an inner groove is formed in the middle position of the upper connecting section.
[0021] When the sliding rod moves to a position corresponding to the position of the inner groove, the sliding rod moves along its axis to abut against the bottom of the inner groove under the action of the first elastic member, thereby enabling the central sleeve to rotate by a preset angle about its axis.
[0022] Preferably, the inclinations of the first inclined groove and the second inclined groove are the same, the inclinations of the third inclined groove and the fourth inclined groove are the same, and the inclination of the first inclined groove is greater than the inclination of the third inclined groove.
[0023] Preferably, an upper clamp is formed in the front side of the upper surface of the first furnace door, a lower clamp is formed in the rear side of the lower surface of the first furnace door, and the outer dimensions of the lower clamp and the upper clamp are the same.
[0024] The first furnace door and the second furnace door are the same in structure.
[0025] Preferably, the lifting assembly comprises a first lifting motor, a first lifting shaft, first lifting wire rollers and first lifting steel cables, the first lifting motor is arranged at the top of the furnace body, the first lifting shaft is fixedly connected with the output shaft of the first lifting motor, the first lifting wire rollers are provided in two, the two first lifting wire rollers are sleeved on the two ends of the first lifting shaft respectively, and the first lifting wire rollers can synchronously rotate and relatively move with the first lifting shaft, the first lifting steel cables are provided in two, one end of each of the two first lifting steel cables is wound around the corresponding first lifting wire roller, and the other ends of the two first lifting steel cables are arranged outside the two second guide columns corresponding to the first furnace door.
[0026] Preferably, the lifting assembly further comprises two first linear drives and two first sliding frames, the two first linear drives are arranged at the left and right sides of the top of the furnace body, the two first sliding frames are arranged at the telescopic ends of the two first linear drives, the first sliding frames are sleeved on the outside of the first lifting shaft, and the first sliding frames and the first lifting shaft can relatively move and relatively rotate.
[0027] Preferably, the lifting assembly further comprises a second lifting motor, a second lifting shaft, two second lifting wire rollers and two second steel cables, the second lifting motor is arranged at the top of the furnace body, the second lifting shaft is fixedly connected with the output shaft of the second lifting motor, the two second lifting wire rollers are sleeved on the two ends of the second lifting shaft, the second lifting wire rollers and the second lifting shaft can synchronously rotate and relatively move, one end of each of the two second steel cables is wound on the corresponding second lifting wire roller, and the other ends of the two second steel cables are arranged outside the two second guide columns corresponding to the second furnace door.
[0028] Preferably, the lifting assembly further comprises two second linear drives and two second sliding frames, the two second linear drives are arranged at the left and right sides of the top of the furnace body, the two second sliding frames are arranged at the telescopic ends of the two second linear drives, the second sliding frames are sleeved on the outside of the second lifting shaft, and the second sliding frames and the second lifting shaft can relatively move and relatively rotate.
[0029] The beneficial effects of the present application are:
[0030] The present application sets the lifting assembly, the guide assembly, the first furnace door and the second furnace door, under the guide action of the guide assembly, the first furnace door and the second furnace door vertically move under the driving action of the lifting assembly, compared with the prior art, by dividing the furnace door into two parts, when the furnace cavity needs to be opened, the required rising height of the first furnace door and the second furnace door is only half of the rising height of the furnace door in the prior art, so as to save the space reserved for opening the furnace door, which is beneficial to the transportation and assembly of the box type resistance heating furnace, in addition, the up and down positions of the first furnace door and the second furnace door are transposed each time the furnace cavity is opened, which can reduce the pressure loss of the first furnace door and the second furnace door, so as to prolong the service life of the first furnace door and the second furnace door. BRIEF DESCRIPTION OF DRAWINGS
[0031] Figure 1 It is a whole schematic view of the box type resistance heating furnace of the present application;
[0032] Figure 2 It is a front view of the box type resistance heating furnace of the present application;
[0033] Figure 3 It isFigure 1 A structure enlarged view at B;
[0034] Figure 4 A structure enlarged view at B; Figure 3 A structure enlarged view at B;
[0035] Figure 5 A structure enlarged view at B;
[0036] Figure 6 A structure enlarged view at B;
[0037] Figure 7 A structure enlarged view at B; Figure 6 A structure enlarged view at B;
[0038] Figure 8 A structure enlarged view at B;
[0039] Figure 9 A structure enlarged view at B; Figure 8 A structure enlarged view at B;
[0040] Figure 10 A structure enlarged view at B; Figure 9 A structure enlarged view at B;
[0041] Figure 11 A structure enlarged view at B;
[0042] Figure 12 A structure enlarged view at B;
[0043] Figure 13 A structure enlarged view at B;
[0044] Figure 14 A structure enlarged view at B;
[0045] Figure 15 A structure enlarged view at B.
[0046] A structure enlarged view at B;
[0047] 100, furnace body; 110, furnace cavity;
[0048] 210, first furnace door; 211, upper clamping opening; 212, lower clamping opening; 220, second furnace door;
[0049] 300, lifting assembly;
[0050] 310, first lifting motor; 320, first lifting shaft; 330, first lifting wire roller; 340, first lifting steel cable; 350, second lifting motor; 360, second lifting shaft; 370, second lifting wire roller; 380, second lifting steel cable;
[0051] 391, first linear drive; 3911, first adjusting motor; 3912, first driving bevel gear; 3913, first driven bevel gear; 3914, first bidirectional screw; 392, first sliding frame;
[0052] 393, second linear drive; 3931, second adjusting motor; 3932, second driving bevel gear; 3933, second driven bevel gear; 3934, second bidirectional screw; 394, second sliding frame;
[0053] 400, guiding assembly; 410, guiding groove; 440, first guide column; 450, second guide column;
[0054] 411, first vertical section; 412, second vertical section; 413, upper connecting section; 4131, inner groove; 414, lower connecting section; 415, first intermediate connecting section; 416, second intermediate connecting section; 418, through groove;
[0055] 4171, first inclined groove; 4172, second inclined groove; 4173, third inclined groove; 4174, fourth inclined groove;
[0056] 441, central sleeve; 4411, helical guide groove; 442, supporting wheel; 443, sliding ring; 444, sliding rod; 445, helical guide column; 446, first elastic member. DETAILED DESCRIPTION
[0057] In order to make the objectives, technical solutions and advantages of the present application clearer, the present application will be further described in detail below with reference to examples and in conjunction with the accompanying drawings. It should be understood that the specific examples described herein are merely used to explain the present application and should not be used to limit the present application.
[0058] The serial numbers of components in this document, such as "first", "second", etc., are only used to distinguish the described objects, and have no technical meaning. Unless otherwise specified, the "connection" and "coupling" in the present application include direct and indirect connections (couplings). In the description of the present application, it should be understood that the orientations or positional relationships indicated by the terms "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc. are based on the orientations or positional relationships shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application.
[0059] In the present application, unless otherwise explicitly specified and limited, the first feature is "on" or "under" the second feature, which can be direct contact between the first and second features, or indirect contact between the first and second features through an intermediate medium. Moreover, the first feature "above", "over" and "on" the second feature can be directly above or obliquely above the first feature, or only indicate that the horizontal height of the first feature is higher than that of the second feature. The first feature "below", "under" and "under" the second feature can be directly below or obliquely below the first feature, or only indicate that the horizontal height of the first feature is less than that of the second feature.
[0060] As shown in Figures 1 to 15 A box-type resistance heating furnace includes a furnace body 100, a furnace door, a lifting assembly 300 and a guide assembly 400. The furnace body 100 extends inwardly at the front end to form a furnace cavity 110. The furnace door is divided into a first furnace door 210 and a second furnace door 220, which are arranged above and below the front end of the furnace body 100. The lifting assembly 300 is arranged on the furnace body 100 and is used to drive the first furnace door 210 and the second furnace door 220 to rise or fall, so as to open or close the furnace cavity 110. The guide assembly 400 is connected between the furnace body 100 and the first furnace door 210 and the second furnace door 220, and is used to guide the rising or falling of the first furnace door 210 and the second furnace door 220.
[0061] In the initial state, the first furnace door 210 is located at the upper part of the furnace body 100, and the second furnace door 220 is located at the lower part of the furnace body 100. When the material (for example, ceramic or metal) needs to be heat treated, the worker first opens the furnace door and then puts the heat-treated material into the furnace cavity 110. Specifically, the worker starts the lifting assembly 300, and under the guidance of the guide assembly 400, the lifting assembly 300 first drives the first furnace door 210 to descend, so that the upper area of the furnace cavity 110 is opened. At this time, the worker can put the material into the upper part of the furnace cavity 110. Next, the first furnace door 210 and the second furnace door 220 are driven to rise by the lifting assembly 300, so that the lower area of the furnace cavity 110 is opened. At this time, the worker can put the material into the lower part of the furnace cavity 110. Compared with the prior art, by dividing the furnace door into two parts, when the furnace cavity 110 needs to be opened, the rising height of the first furnace door 210 and the second furnace door 220 is only half of the rising height of the furnace door in the prior art. Therefore, the space reserved for opening the furnace door can be saved, which is beneficial to the transportation and assembly of the box-type resistance heating furnace. After the material is completely put into the furnace cavity 110, the first furnace door 210 is driven to descend by the lifting assembly 300. At this time, the up-down positions of the first furnace door 210 and the second furnace door 220 are adjusted. Compared with the positions of the first furnace door 210 and the second furnace door 220 that cannot be adjusted, the up-down positions of the first furnace door 210 and the second furnace door 220 are adjusted every time the furnace cavity 110 is opened. Therefore, the pressure loss of the first furnace door 210 and the second furnace door 220 can be reduced, so as to prolong the service life of the first furnace door 210 and the second furnace door 220.
[0062] When the material in the furnace cavity 110 needs to be taken out, similarly, the first furnace door 210 is first driven to descend by the lifting assembly 300, so that the upper part of the furnace cavity 110 is opened. Then, the first furnace door 210 and the second furnace door 220 are synchronously driven to rise by the lifting assembly 300, so that the lower part of the furnace cavity 110 is opened. Finally, the first furnace door 210 is controlled to descend by the lifting assembly 300. Therefore, the positions of the first furnace door 210 and the second furnace door 220 are adjusted again, and the first furnace door 210 and the second furnace door 220 are reset to the initial state.
[0063] In further embodiments, as Figures 9-11As shown, the guide assembly 400 includes guide grooves 410, first guide posts 440, and second guide posts 450. The guide grooves 410 are two, and both are arranged on the left and right side walls at the front end of the furnace body 100. The guide grooves 410 include first vertical sections 411, second vertical sections 412, upper connecting sections 413, lower connecting sections 414, first intermediate connecting sections 415, and second intermediate connecting sections 416. The first vertical sections 411 and the second vertical sections 412 are spaced apart front to back and parallel to each other. The upper end of the first vertical section 411 is higher than the upper end of the second vertical section 412, and the lower end of the first vertical section 411 is lower than the lower end of the second vertical section 412. The upper connecting section 413 is connected between the upper end of the first vertical section 411 and the upper end of the second vertical section 412, and the lower connecting section 414 is connected between the lower end of the first vertical section 411 and the lower end of the second vertical section 412. The lower connecting section 414 and the upper connecting section 413 are parallel to each other. The first intermediate connecting section 415 and the second intermediate connecting section 416 are parallel to the upper connecting section 413, and are spaced apart from top to bottom and connected between the first vertical section 411 and the second vertical section 412. The second vertical section 412 is spaced apart from the first vertical section 411 and has first inclined grooves 4171, second inclined grooves 4172, third inclined grooves 4173, and fourth inclined grooves 4174 arranged at equal intervals from top to bottom on one side away from the first vertical section 411. The first inclined grooves 4171, the second inclined grooves 4172, the third inclined grooves 4173, and the fourth inclined grooves 4174 all incline downward. A through groove 418 is arranged at equal intervals inwardly in a region enclosed by the first vertical section 411, the first intermediate connecting section 415, the second vertical section 412, the second inclined grooves 4172, the fourth inclined grooves 4174, and the lower connecting section 414. The through groove 418 penetrates the side wall of the furnace body 100. The first guide posts 440 and the second guide posts 450 are each four. Two of the first guide posts 440 are arranged diagonally on the left and right sides of the first furnace door 210, and the other two of the first guide posts 440 are arranged diagonally on the left and right sides of the second furnace door 220. Two of the second guide posts 450 are arranged diagonally and slidably on the left and right sides of the first furnace door 210, and the other two of the second guide posts 450 are arranged diagonally and slidably on the left and right sides of the second furnace door 220. The center points of the two first guide posts 440 and the center points of the two second guide posts 450 intersect each other. The first guide posts 440 are slidably connected in the guide grooves 410, the second guide posts 450 are slidably connected in the through grooves 418, and the second guide posts 450 pass out of the through grooves 418. The end of the second guide posts 450 passing out of the through grooves 418 is connected to the lifting assembly 300.
[0064] In the initial state, the positions of the first guide posts 440 and the second guide posts 450 corresponding to the first furnace door 210 and the first guide posts 440 and the second guide posts 450 corresponding to the second furnace door 220 are as shown in Figure 11As shown, when the first furnace door 210 needs to be driven down, the lifting assembly 300 first pulls the first furnace door 210 upward via the second guide post 450 corresponding to the first furnace door 210. At this time, the first guide post 440 corresponding to the first furnace door 210 is moved from the first inclined groove 4171 to the uppermost end of the upper connecting section 413 under force. The second guide post 450 corresponding to the first furnace door 210 moves along the through groove 418 from the second inclined groove 4172 to the uppermost end of the first intermediate connecting section 415. Next, the lifting assembly 300 pulls the first furnace door 210 downward. At this time, the first furnace door 210 is lowered. The first guide post 440 corresponding to 0 moves from the uppermost end of the upper connecting section 413 to the uppermost end of the second intermediate connecting section 416. The second guide post 450 corresponding to the first furnace door 210 moves along the through groove 418 from the uppermost end of the first intermediate connecting section 415 to the uppermost end of the lower connecting section 414. At this time, the upper part of the furnace cavity 110 opens, and the operator can put materials into the upper part of the furnace cavity 110. Next, the operator uses the lifting assembly 300 to sequentially pull the first furnace door 210 and the second furnace door 220 upward, so that the first guide post 440 corresponding to the first furnace door 210 moves to the upper part of the furnace cavity 110. At the uppermost end of connecting section 413, the second guide post 450 corresponding to the first furnace door 210 moves along the through groove 418 to the uppermost end of the first intermediate connecting section 415, so that the first guide post 440 corresponding to the second furnace door 220 moves from the third inclined groove 4173 to the lowermost end of the upper connecting section 413, and the second guide post 450 corresponding to the second furnace door 220 moves along the through groove 418 from the fourth inclined groove 4174 to the lowermost end of the first intermediate connecting section 415. At this time, the lower part of the furnace cavity 110 opens, and the workers can put materials into the lower part of the furnace cavity 110. Next, the workers will... The lifting assembly 300 drives the first furnace door 210 to move downwards. Specifically, this causes the first guide post 440 corresponding to the first furnace door 210 to move from the top of the upper connecting section 413, sequentially through the first vertical section 411 and the second intermediate connecting section 416, into the third inclined groove 4173. Simultaneously, the second guide post 450 corresponding to the first furnace door 210 moves along the through groove 418 from the top of the first intermediate connecting section 415, sequentially through the first vertical section 411 and the lower connecting section 414, into the fourth inclined groove 4174. This completes the exchange of the upper and lower positions of the first furnace door 210 and the second furnace door 220. The same procedure applies when the furnace cavity 110 needs to be opened again; the specific process will not be elaborated further.
[0065] It should be added that, as Figure 5 As shown, the upper surface of the first furnace door 210 has an upper latch 211 on the front side, and the lower surface of the first furnace door 210 has a lower latch 212 on the rear side. The outer end faces of the lower latch 212 and the upper latch 211 are triangular slopes. The first furnace door 210 and the second furnace door 220 have the same structure.
[0066] The upper and lower notches 211 and 212 are arranged to increase the sealing performance of the first and second furnace doors 210 and 220 after they are docked, and the outer end surfaces of the lower and upper notches 212 and 211 are triangular bevels, so that the second guide column 450 is moved from the second vertical section 412 to the second inclined groove 4172 through the guiding cooperation of the lower and upper notches 212 and 211.
[0067] It can be understood that the first guide columns 440 are arranged diagonally on the first and second furnace doors 210 and 220 to guide the movement of the first and second furnace doors 210 and 220, and the second guide columns 450 are arranged diagonally on the first and second furnace doors 210 and 220 to enable the lifting assembly 300 to pull the first and second furnace doors 210 and 220 to stably ascend or descend through the second guide columns 450 on both sides of the first and second furnace doors 210 and 220, thereby preventing the first and second furnace doors 210 and 220 from tilting during the ascending or descending process.
[0068] In further embodiments, as shown in Figure 7 、 Figure 12 and Figure 13 , the first guide column 440 includes a central sleeve 441, a plurality of support wheels 442, a sliding ring 443, a sliding rod 444, a spiral guide column 445, and a first elastic member 446. The central sleeve 441 is rotationally arranged on the side wall of the first and second furnace bodies 100. The plurality of support wheels 442 are rotationally arranged on the central sleeve 441 at equal intervals in the circumferential direction of the axis of the central sleeve 441. The sliding rod 444 is coaxially and slidingly connected inside the central sleeve 441. The first elastic member 446 is sleeved on the outside of the sliding rod 444, and the two ends of the first elastic member 446 are fixedly connected with the central sleeve 441 and the sliding ring 443, respectively. The first elastic member 446 is used to move the sliding rod 444 away from the central sleeve 441. The sliding ring 443 is coaxially arranged outside the sliding rod 444. The spiral guide column 445 is arranged outside the sliding ring 443. A spiral guide groove 4411 is formed in the inner circumferential wall of the central sleeve 441. The spiral guide groove 4411 includes a plurality of first spiral grooves and a plurality of second spiral grooves. The spiral directions of the first and second spiral grooves are opposite. The plurality of first and second spiral grooves are alternately and slidingly connected around the axis of the central sleeve 441, and adjacent first and second spiral grooves form a V-shaped structure with the opening facing one side of the axis of the central sleeve 441. The spiral guide column 445 is slidingly connected in the spiral guide groove 4411. The spiral guide groove 4411 is configured such that, under the guidance of the spiral guide groove 4411, the central sleeve 441 can rotate in the circumferential direction around its axis when the sliding rod 444 reciprocally moves along its axis.
[0069] It should be further pointed out that, asFigure 10 As shown, a middle position of the upper connecting section 413 is provided with an inner groove 4131, when the sliding rod 444 moves to a position corresponding to the position of the inner groove 4131, under the action of the first elastic member 446, the sliding rod 444 moves along its axis to abut against the bottom of the inner groove 4131, thereby causing the central sleeve 441 to rotate around its axis by a preset angle.
[0070] When the lifting assembly 300 pulls the first furnace door 210 or the second furnace door 220 to move to the position corresponding to the sliding rod 444 and the inner groove 4131 of the second guide column 450, under the action of the first elastic member 446, the sliding ring 443 and the sliding rod 444 move synchronously along their axes in the direction of the inner groove 4131 until the end of the sliding rod 444 abuts against the bottom of the inner groove 4131, in the process of the sliding rod 444 moving along its axis, under the guiding cooperation of the spiral guide groove 4411 and the spiral guide column 445, the central sleeve 441 rotates around its axis by a preset angle, since the plurality of support wheels 442 are circumferentially and equidistantly arranged on the central sleeve 441, the central sleeve 441 drives the plurality of support wheels 442 to rotate synchronously by a preset angle, at this time, the positions of the plurality of support wheels 442 circumferentially arranged on the central sleeve 441 are switched, thereby preventing some or some of the support wheels 442 of the first guide column 440 from being damaged due to long-term excessive force.
[0071] Preferably, as shown in the drawings, Figure 12 The number of support wheels 442 is three, in order to ensure that the positions of the support wheels 442 can be switched after the central sleeve 441 rotates by a preset angle, the central sleeve 441 should rotate by one hundred and twenty degrees each time. By having multiple support wheels 442, not only the guiding stability of the first guide column 440 is better, but also the abrasion of the support wheels 442 can be reduced through the rotation of the support wheels 442.
[0072] In further embodiments, as shown in the drawings, Figure 10 The slopes of the first inclined groove 4171 and the second inclined groove 4172 are the same, the slopes of the third inclined groove 4173 and the fourth inclined groove 4174 are the same, and the slope of the first inclined groove 4171 is greater than the slope of the third inclined groove 4173.
[0073] Such an arrangement is to enable the weight of the first furnace door 210 or the second furnace door 220 located at the upper part of the furnace cavity 110 to press on the second furnace door 220 or the first furnace door 210 at the lower part of the furnace cavity 110, thereby enhancing the connection tightness between the first furnace door 210 and the second furnace door 220.
[0074] In further embodiments, as shown in the drawings, Figures 1-4 and Figure 14As shown, the lifting assembly 300 comprises a first lifting motor 310, a first lifting shaft 320, two first lifting wire rollers 330 and two first lifting steel cables 340. The first lifting motor 310 is arranged at the top of the furnace body 100. The first lifting shaft 320 is fixedly connected with the output shaft of the first lifting motor 310. The two first lifting wire rollers 330 are sleeved on the two ends of the first lifting shaft 320 respectively. The first lifting wire rollers 330 can rotate synchronously with the first lifting shaft 320 and move relatively. The two first lifting steel cables 340 are wound on the corresponding first lifting wire rollers 330 at one end respectively. The other ends of the two first lifting steel cables 340 are arranged outside the two second guide columns 450 corresponding to the first furnace door 210.
[0075] When the first furnace door 210 needs to be driven to rise, the first lifting motor 310 is started. The first lifting motor 310 drives the first lifting shaft 320 to rotate. The first lifting shaft 320 drives the two first lifting wire rollers 330 at the two ends to rotate synchronously. The first lifting steel cables 340 are gradually wound on the first lifting wire rollers 330 through the rotation of the first lifting wire rollers 330. At this time, the first lifting steel cables 340 pull the second guide columns 450 corresponding to the first furnace door 210 to move upwards. At this time, the second guide columns 450 drive the first furnace door 210 to rise synchronously.
[0076] When the first furnace door 210 needs to be lowered, the first lifting motor 310 is reversely rotated. The first lifting motor 310 drives the first lifting shaft 320 to reversely rotate synchronously. The first lifting shaft 320 drives the two first lifting wire rollers 330 at the two ends to reversely rotate synchronously. At this time, the first lifting steel cables 340 drive the second guide columns 450 corresponding to the first furnace door 210 to move downwards. The second guide columns 450 drive the first furnace door 210 to descend synchronously.
[0077] In further embodiments, as shown in Figure 13 , Figure 4 and Figure 15 , the lifting assembly 300 further comprises a second lifting motor 350, a second lifting shaft 360, two second lifting wire rollers 370 and two second lifting steel cables 380. The second lifting motor 350 is arranged at the top of the furnace body 100. The second lifting shaft 360 is fixedly connected with the output shaft of the second lifting motor 350. The two second lifting wire rollers 370 are sleeved on the two ends of the second lifting shaft 360 respectively. The second lifting wire rollers 370 can rotate synchronously with the second lifting shaft 360 and move relatively. The two second lifting steel cables 380 are wound on the corresponding second lifting wire rollers 370 at one end respectively. The other ends of the two second lifting steel cables 380 are arranged outside the two second guide columns 450 corresponding to the second furnace door 220.
[0078] Similarly, when the second furnace door 220 needs to be driven to rise, the second lifting motor 350 is started, the second lifting motor 350 drives the second lifting shaft 360 to rotate, the second lifting shaft 360 drives the two second lifting line rollers 370 at both ends thereof to rotate synchronously, the rotation of the second lifting line rollers 370 gradually winds the second lifting steel cable 380 onto the second lifting line rollers 370, the second lifting steel cable 380 pulls the second guide column 450 corresponding to the second furnace door 220 to move upward, and the second guide column 450 drives the second furnace door 220 to rise synchronously.
[0079] When the second furnace door 220 needs to be lowered, the second lifting motor 350 is reversely rotated, the second lifting motor 350 drives the second lifting shaft 360 to reversely rotate, the second lifting shaft 360 drives the two second lifting line rollers 370 at both ends thereof to reversely rotate synchronously, the second lifting steel cable 380 drives the second guide column 450 corresponding to the second furnace door 220 to descend, and the second guide column 450 drives the second furnace door 220 to descend synchronously.
[0080] In order to prevent the first lifting steel cable 340 and the second lifting steel cable 380 from being entangled with each other in the process of rising or descending, in a further embodiment, as shown in Figure 3 , Figure 4 , Figure 14 and Figure 15 , the lifting assembly 300 further comprises a first linear drive 391 and a first sliding frame 392, the first linear drive 391 has two, in the embodiment, the first linear drive 391 is specifically a hydraulic rod, the two first linear drives 391 are respectively arranged at the left and right sides of the top of the furnace body 100, the first sliding frame 392 has two, the two first sliding frames 392 are respectively arranged at the telescopic ends of the two first linear drives 391, the first sliding frame 392 is sleeved outside the first lifting shaft 320, and the first sliding frame and the first lifting shaft 320 can relatively move and relatively rotate, the lifting assembly 300 further comprises a second linear drive 393 and a second sliding frame 394, the second linear drive 393 has two, the second linear drive 393 is specifically a hydraulic rod, the two second linear drives 393 are respectively arranged at the left and right sides of the top of the furnace body 100, the second sliding frame 394 has two, the two second sliding frames 394 are respectively arranged at the telescopic ends of the two second linear drives 393, and the second sliding frame 394 is sleeved outside the second lifting shaft 360, and the second sliding frame and the second lifting shaft 360 can relatively move and relatively rotate.
[0081] Before moving the first furnace door 210, the staff first starts the first linear drive 391, pushes the two first sliding frames 392 away from each other to the first preset position through the first linear drive 391, and the first sliding frame 392 drives the first lifting line roller 330 to move synchronously, and the first lifting line roller 330 drives the first lifting steel cable 340 to move synchronously. At this time, the first lifting steel cable 340 and the second lifting steel cable 380 are staggered with each other in the left-right direction of the furnace body 100, so that the first lifting steel cable 340 and the second lifting steel cable 380 will not be entangled with each other. Next, the first lifting motor 310 is started again, and the first furnace door 210 is lifted or lowered by the first lifting motor 310. When the movement of the first furnace door 210 is completed, the first linear drive 391 is started again, and the two first sliding frames 392 are pushed back to the initial position in the reverse direction through the first linear drive 391.
[0082] Similarly, before moving the second furnace door 220, the staff first starts the second linear drive 393, pushes the two second sliding frames 394 away from each other to the first preset position through the second linear drive 393, and the second sliding frame 394 drives the second lifting line roller 370 to move synchronously, and the second lifting line roller 370 drives the second lifting steel cable 380 to move synchronously. At this time, the first lifting steel cable 340 and the second lifting steel cable 380 are staggered with each other in the left-right direction of the furnace body 100, so that the first lifting steel cable 340 and the second lifting steel cable 380 will not be entangled with each other. Next, the second lifting motor 350 is started again, and the second furnace door 220 is lifted or lowered by the second lifting motor 350. When the movement of the second furnace door 220 is completed, the second linear drive 393 is started again, and the two second sliding frames 394 are pushed back to the initial position in the reverse direction through the second linear drive 393.
[0083] In other embodiments, as Figure 3 and Figure 4As shown, the first linear drive 391 comprises a first adjusting motor 3911, a first driving bevel gear 3912, a first driven bevel gear 3913 and a first bidirectional screw 3914, the first adjusting motor 3911 is arranged at the top of the furnace body 100, the first driving bevel gear 3912 is fixedly connected with the output shaft of the first adjusting motor 3911, the first bidirectional screw 3914 is rotatably arranged at the top of the furnace body 100, the first driven bevel gear 3913 is arranged at one end of the first bidirectional screw 3914, the first driving bevel gear 3912 and the first driven bevel gear 3913 are in mesh with each other, and the first bidirectional screw 3914 is threadedly connected with the first sliding frame 392. The second linear drive 393 comprises a second adjusting motor 3931, a second driving bevel gear 3932, a second driven bevel gear 3933 and a second bidirectional screw 3934, the second adjusting motor 3931 is arranged at the top of the furnace body 100, the second driving bevel gear 3932 is fixedly connected with the output shaft of the second adjusting motor 3931, the second bidirectional screw 3934 is rotatably arranged at the top of the furnace body 100, and the second bidirectional screw 3934 is threadedly connected with the second sliding frame 394.
[0084] When the two first sliding frames 392 need to move away from each other, the first adjusting motor 3911 is started, the first driving bevel gear 3912 is driven to rotate by the first adjusting motor 3911, the first driven bevel gear 3913 is driven to rotate by the first driving bevel gear 3912, the first bidirectional screw 3914 is driven to rotate by the first driven bevel gear 3913, and the two first sliding frames 392 are driven to move away from each other to a first preset position through the rotation of the first bidirectional screw 3914.
[0085] When the two first sliding frames 392 need to move away from each other, the first adjusting motor 3911 is started, the first driving bevel gear 3912 is driven to rotate by the first adjusting motor 3911, the first driven bevel gear 3913 is driven to rotate by the first driving bevel gear 3912, the first bidirectional screw 3914 is driven to rotate by the first driven bevel gear 3913, and the two first sliding frames 392 are driven to move away from each other to a first preset position through the rotation of the first bidirectional screw 3914.
[0086] When the two first sliding frames 392 need to move away from each other, the first adjusting motor 3911 is started, the first driving bevel gear 3912 is driven to rotate by the first adjusting motor 3911, the first driven bevel gear 3913 is driven to rotate by the first driving bevel gear 3912, the first bidirectional screw 3914 is driven to rotate by the first driven bevel gear 3913, and the two first sliding frames 392 are driven to move away from each other to a first preset position through the rotation of the first bidirectional screw 3914.
[0087] When the two second sliding frames 394 need to be close to each other, the second adjusting motor 3931 is reversed, the second driving bevel gear 3932 is reversed by the second adjusting motor 3931, the second driven bevel gear 3933 is reversed by the second driving bevel gear 3932, the second bidirectional screw 3934 is reversed by the second driven bevel gear 3933, and the two second sliding frames 394 are reset to the initial position by the screw thread transmission of the second bidirectional screw 3934.
[0088] The technical features of the above embodiments can be combined in any manner. To make the description simple, all possible combinations of the technical features in the above embodiments are not described, but as long as the combinations do not contradict each other, they should be considered as falling within the scope of the present disclosure.
[0089] The above embodiments only express several implementation manners of the present application, and the description is relatively specific and detailed, but should not be understood as limiting the scope of the present application. It should be pointed out that, for those skilled in the art, several modifications and improvements can be made without departing from the concept of the present application, and these all fall within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the appended claims.
Claims
1. A box-type resistance heating furnace, characterized by comprising: The utility model relates to a stove, including: furnace body, the front end extends to form the furnace chamber inwards; furnace door is divided into first furnace door and second furnace door, and first furnace door and second furnace door are arranged in the front end of furnace body up and down; elevating assembly is located on the furnace body, is used for driving first furnace door, second furnace door to rise or descend to open or close the furnace chamber; guide assembly is connected between the furnace body and first furnace door, second furnace door; guide assembly is used for guiding the rise or descent of first furnace door, second furnace door; guide assembly includes guide slot, first guide column, second guide column; The guide slot has two, and two guide slots are all set up on the left and right side walls of the front end of furnace body, and the guide slot includes first vertical section, second vertical section, upper connecting section, lower connecting section, first intermediate connecting section and second intermediate connecting section, first vertical section and second vertical section are spaced and mutually parallel from front to back, the upper end height of first vertical section is higher than the upper end height of second vertical section, and the lower end height of first vertical section is lower than the lower end height of second vertical section, the upper connecting section is connected between the upper end of first vertical section and the upper end of second vertical section, the lower connecting section is connected between the lower end of first vertical section and the lower end of second vertical section, and the lower connecting section and the upper connecting section are mutually parallel, first intermediate connecting section and second intermediate connecting section are parallel to the upper connecting section, and first intermediate connecting section and second intermediate connecting section are spaced and connected between first vertical section and second vertical section from top to bottom; The side of second vertical section away from first vertical section is set up with first inclined slot, second inclined slot, third inclined slot and fourth inclined slot from top to bottom at equal intervals, and first inclined slot, second inclined slot, third inclined slot and fourth inclined slot all are inclined downward; The region enclosed by first vertical section, first intermediate connecting section, second vertical section, second inclined slot, fourth inclined slot and lower connecting section is set up with through slot at equal intervals inward, and the through slot penetrates the side wall of furnace body; The first guide column and the second guide column all have four, wherein two first guide columns are diagonally arranged on the left and right sides of the first furnace door, wherein the other two first guide columns are diagonally arranged on the left and right sides of the second furnace door, wherein two second guide columns are diagonally arranged and slidably arranged on the left and right sides of the first furnace door, and wherein the other two second guide columns are diagonally arranged and slidably arranged on the left and right sides of the second furnace door, and the center point connecting line of the two first guide columns and the center point connecting line of the two second guide columns intersect each other; The first guide column is slidably connected in the guide slot, and the second guide column is slidably connected in the through slot, and the second guide column penetrates out of the through slot.
2. A box-type resistance heating furnace according to claim 1, wherein The first guide column includes a center sleeve, a support wheel, a sliding ring, a sliding rod, a spiral guide column, and a first elastic member. The center sleeve is rotatably arranged on the side wall of the first furnace body and the second furnace body. The support wheel has a plurality of support wheels that are circumferentially and equally spaced about the axis of the center sleeve and are rotatably arranged on the center sleeve. The sliding rod is coaxially and slidably connected inside the center sleeve. The first elastic member is sleeved on the outside of the sliding rod, and the two ends of the first elastic member are fixedly connected with the center sleeve and the sliding ring, respectively. The first elastic member is used to move the sliding rod away from the center sleeve. The sliding ring is coaxially arranged on the outside of the sliding rod. The spiral guide column is arranged on the outside of the sliding ring. A spiral guide slot is formed on the inner circumferential wall of the center sleeve. The spiral guide column is slidably connected in the spiral guide slot. The helical guide groove is configured to enable the central sleeve to rotate circumferentially about its axis under the guidance of the helical guide groove when the sliding rod reciprocates along its axis.
3. A box-type resistance heating furnace according to claim 2, wherein An inner groove is formed in the middle of the upper connecting section. When the sliding rod moves to a position corresponding to the position of the inner groove, the sliding rod moves along its axis to abut against the bottom of the inner groove under the action of the first elastic member, thereby enabling the central sleeve to rotate about its axis by a preset angle.
4. A box-type resistance heating furnace according to claim 1, wherein The first inclined groove and the second inclined groove have the same inclination, the third inclined groove and the fourth inclined groove have the same inclination, and the inclination of the first inclined groove is greater than that of the third inclined groove.
5. A box-type resistance heating furnace according to claim 1, wherein An upper clamping opening is formed in the front side of the upper surface of the first furnace door, and a lower clamping opening is formed in the rear side of the lower surface of the first furnace door, the outer dimensions of the lower clamping opening and the upper clamping opening being the same. The first furnace door and the second furnace door have the same structure.
6. A box-type resistance heating furnace according to claim 1, wherein The lifting assembly comprises a first lifting motor, a first lifting shaft, first lifting wire rollers and first lifting steel cables. The first lifting motor is arranged at the top of the furnace body. The first lifting shaft is fixedly connected with the output shaft of the first lifting motor. The first lifting wire rollers are arranged at the two ends of the first lifting shaft. The first lifting wire rollers can rotate synchronously with the first lifting shaft and can move relative to the first lifting shaft. The first lifting steel cables are arranged outside the two second guide columns corresponding to the first furnace door.
7. A box-type resistance heating furnace according to claim 6, wherein The lifting assembly further comprises first linear drives and first sliding frames. The first linear drives are arranged at the left and right sides of the top of the furnace body. The first sliding frames are arranged at the extension ends of the first linear drives. The first sliding frames are arranged outside the first lifting shaft. The first sliding frames can move relative to the first lifting shaft and can rotate relative to the first lifting shaft.
8. A box-type resistance heating furnace according to claim 1, wherein The lifting assembly further comprises a second lifting motor, a second lifting shaft, second lifting wire rollers and second lifting steel cables. The second lifting motor is arranged at the top of the furnace body. The second lifting shaft is fixedly connected with the output shaft of the second lifting motor. The second lifting wire rollers are arranged at the two ends of the second lifting shaft. The second lifting wire rollers can rotate synchronously with the second lifting shaft and can move relative to the second lifting shaft. The second steel cables are arranged outside the two second guide columns corresponding to the second furnace door.
9. A box-type resistance heating furnace according to claim 8, wherein The lifting assembly further comprises second linear drives and second sliding frames. The second linear drives are arranged at the left and right sides of the top of the furnace body. The second sliding frames are arranged at the extension ends of the second linear drives. The second sliding frames are arranged outside the second lifting shaft. The second sliding frames can move relative to the second lifting shaft and can rotate relative to the second lifting shaft.
Citation Information
Patent Citations
Connecting rod type furnace door opening and closing mechanism in heating furnace
CN109827436A
Overlapping furnace door with lifting device
CN209399762U