A method, device, equipment and medium for discharging conical double-seam pressed welded steel pipe

By automatically obtaining and calculating the target parameters and expansion parameters of the conical steel pipe, the complex and low efficiency of ordering plate plating in the prior art is solved, and efficient automatic discharge of conical double-slit pressed welded steel pipes is achieved.

CN118966425BActive Publication Date: 2025-05-16GUANGZHOU WENCHUAN HEAVY IND
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Patent Information

Application Number
CN202411018898.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-07-29
Publication Date
2025-05-16
Estimated Expiration
2044-07-29

AI Technical Summary

Technical Problem

In the prior art, the generation method of ordering plate plating of conical double-slit pressed welded steel pipes is incoherent, and multiple software or methods are required to connect, resulting in complex ordering processes, low efficiency, and inability to achieve automation.

Method used

A method for discharging tapered double-slit pressed welded steel pipes is provided. By obtaining the target parameters of the tapered steel pipes, determining the expansion parameters and overlapping data, calculating the plate length and width, and automatically generating the ordering plate meter to realize automatic expansion and discharging.

Benefits of technology

The discharge efficiency and accuracy of conical double-slit pressed welded steel pipes are improved, automation is achieved, and the cost of manual intervention and multi-software connection is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the present disclosure provides a method, device, equipment and medium for discharging materials of a conical double-seam pressed welded steel pipe, the method comprising: obtaining the upper outer diameter, lower outer diameter, height and wall thickness of the conical steel pipe; determining the second target parameter, the second target parameter comprising the half cone angle, the horizontal projection value of the wall thickness, the long generatrix and the short generatrix; determining the first expansion parameter, the first expansion parameter comprising the expansion fan angle, the expansion plate width and the expansion plate length; determining the first overlapping data in the length direction and the second overlapping data in the width direction; determining the first plate length and the first plate width in the length direction; determining the second plate length and the second plate width in the width direction, determining the order plate length based on the expansion plate length and the expansion fan angle, the number of conical steel pipes, and the first overlapping data; determining the order plate width based on the expansion plate width and the expansion fan angle, the number of conical steel pipes, the second overlapping data and the long generatrix. The technical solution disclosed in the present disclosure can automatically expand and discharge materials, improve efficiency and accuracy, and realize automation.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of tapered steel pipes for wind power, and in particular to a method for discharging tapered double-seam pressed welded steel pipes, a device for discharging tapered double-seam pressed welded steel pipes, an electronic device, and a non-transient computer-readable storage medium storing computer instructions. Background Art

[0002] In the related art, the ordering plate gauge of the tapered double-seam pressed welded steel pipe is generally developed manually or by software, and then the material is arranged manually or by software to determine the purchase plate gauge. The related art methods are not coherent, and multiple software or methods are required, which are not smoothly connected, and the ordering process is complicated, inefficient, and cannot be automated. Summary of the invention

[0003] The embodiments of the present disclosure provide a method, device, electronic device and readable storage medium for discharging conical double-seam pressed welded steel pipes to solve or alleviate one or more technical problems in the prior art.

[0004] As a first aspect of an embodiment of the present disclosure, an embodiment of the present disclosure provides a method for discharging a tapered double-seam pressed welded steel pipe, comprising the following steps:

[0005] Acquire first target parameters of the tapered steel pipe, wherein the first target parameters include an upper outer diameter, a lower outer diameter, a height, and a wall thickness of the tapered steel pipe;

[0006] Determine a second target parameter based on the first target parameter, wherein the second target parameter includes a semi-cone angle, a horizontal projection value of the wall thickness, a long generatrix, and a short generatrix;

[0007] Determine a first deployment parameter based on the first target parameter and the second target parameter, wherein the first deployment parameter includes a deployment fan angle, a deployment plate width, and a deployment plate length;

[0008] Determine first overlapping data in a length direction and second overlapping data in a width direction based on the second target parameter and the first expansion parameter;

[0009] Determine a first board length in a length direction based on the first unfolding parameter, the second target parameter, and the first overlapping data, and determine a first board width in a length direction based on the first unfolding parameter;

[0010] Determine a second plate length in the width direction based on the first unfolding parameter, and determine a second plate width in the width direction based on the first unfolding parameter, the second target parameter, and the second overlapping data;

[0011] Determine the order plate length based on the unfolded plate length and unfolded fan angle of the first unfolding parameter, the number of tapered steel pipes, and the first overlapping data;

[0012] The order plate width is determined based on the unfolded plate width and unfolded fan angle of the first unfolding parameter, the number of tapered steel pipes, the second overlapping data, and the long generatrix of the second target parameter.

[0013] In some possible implementations, determining the second target parameter based on the first target parameter includes:

[0014] Determine the semi-cone angle based on the upper outer diameter, the lower outer diameter and the height;

[0015] Determine the horizontal projection value of the wall thickness based on the wall thickness and the semi-cone angle;

[0016] Determine the long generatrix based on the lower outer diameter, the horizontal projection value of the wall thickness and the semi-cone angle;

[0017] The short generatrix is ​​determined based on the upper outer diameter, the horizontal projection value of the wall thickness, and the semi-cone angle.

[0018] In some possible implementations, determining a first expansion parameter based on the first target parameter and the second target parameter includes:

[0019] Determine the unfolding fan angle based on the lower outer diameter, the horizontal projection value of the wall thickness and the long generatrix;

[0020] Determine the developed plate width based on the long busbar, the short busbar and the developed fan angle;

[0021] The unfolded plate length is determined based on the long generatrix and the unfolded fan angle.

[0022] In some possible implementations, determining first overlapping data in a length direction based on the second target parameter and the first expansion parameter includes:

[0023] Determine first data based on the long generatrix and the unfolded fan angle;

[0024] The first overlapping data is determined based on the unfolded panel width, the first data, and the unfolded fan angle.

[0025] In some possible implementations, determining a first board length in a length direction based on the first expansion parameter, the second target parameter, and the first overlap data, and determining a first board width in a length direction based on the first expansion parameter includes:

[0026] Determine the first plate length based on the unfolded plate length, the first overlap data, and the unfolded fan angle;

[0027] The first panel width is determined based on the unfolded panel width.

[0028] In some possible implementations, determining the second overlapping data in the width direction based on the second target parameter and the first expansion parameter includes:

[0029] Determine a first angle based on the short generatrix, the unfolded fan angle, and the long generatrix;

[0030] The second overlapping data is determined based on the long generatrix and the first angle.

[0031] In some possible implementations, determining the second board length in the width direction based on the first expansion parameter, and determining the second board width in the width direction based on the first expansion parameter, the second target parameter, and the second overlap data include:

[0032] determining a second plate length in the width direction based on the unfolded plate length;

[0033] The second panel width is determined based on the developed panel width, the first angle, and the second overlap data.

[0034] As a second aspect of the embodiment of the present disclosure, the embodiment of the present disclosure provides a conical double-seam pressed welded steel pipe discharge device, comprising:

[0035] A first target parameter acquisition module, used to acquire first target parameters of the tapered steel pipe, wherein the first target parameters include an upper outer diameter, a lower outer diameter, a height, and a wall thickness of the tapered steel pipe;

[0036] A second target parameter determination module, used to determine a second target parameter based on the first target parameter, wherein the second target parameter includes a semi-cone angle, a horizontal projection value of the wall thickness, a long generatrix, and a short generatrix;

[0037] A first deployment parameter determination module, used to determine a first deployment parameter based on the first target parameter and the second target parameter, wherein the first deployment parameter includes a deployment fan angle, a deployment plate width, and a deployment plate length;

[0038] an overlapping data determining module, configured to determine first overlapping data in a length direction and second overlapping data in a width direction based on the second target parameter and the first expansion parameter;

[0039] A module for determining the length and width of a board in the length direction, configured to determine a first board length in the length direction based on the first unfolding parameter, the second target parameter, and the first overlapping data, and to determine a first board width in the length direction based on the first unfolding parameter;

[0040] A module for determining a board length and width in the width direction, configured to determine a second board length in the width direction based on the first unfolding parameter, and to determine a second board width in the width direction based on the first unfolding parameter, the second target parameter and the second overlapping data;

[0041] An order plate length determination module, used to determine the order plate length based on the unfolded plate length and unfolded fan angle of the first unfolding parameter, the number of tapered steel pipes, and the first overlapping data;

[0042] An order plate width determination module is used to determine the order plate width based on the expanded plate width and expanded fan angle of the first expansion parameter, the number of tapered steel pipes, the second overlapping data and the long busbar of the second target parameter.

[0043] As a third aspect of an embodiment of the present disclosure, an embodiment of the present disclosure provides an electronic device, including:

[0044] at least one processor; and

[0045] A memory communicatively connected to the at least one processor; wherein the memory stores instructions executable by the at least one processor, the instructions being executed by the at least one processor so that the at least one processor can execute the method for arranging a tapered double-seam pressed welded steel pipe as described in any one of the embodiments of the present disclosure.

[0046] As a fourth aspect of the embodiments of the present disclosure, the embodiments of the present disclosure provide a non-transitory computer-readable storage medium storing computer instructions, wherein the computer instructions are used to enable a computer to execute the method for arranging a tapered double-seam pressed welded steel pipe as described in any one of the embodiments of the present disclosure.

[0047] The technical solution of the disclosed embodiment can achieve the following beneficial effects: this method for arranging conical double-seam pressed welded steel pipes can automatically unfold and arrange the materials, improve efficiency and accuracy, and achieve automation.

[0048] The above summary is for illustrative purposes only and is not intended to be limiting in any way. In addition to the illustrative aspects, embodiments and features described above, further aspects, embodiments and features of the present disclosure will be readily apparent by reference to the accompanying drawings and the following detailed description. BRIEF DESCRIPTION OF THE DRAWINGS

[0049] In the accompanying drawings, unless otherwise specified, the same reference numerals throughout the multiple drawings represent the same or similar parts or elements. These drawings are not necessarily drawn to scale. It should be understood that these drawings only depict some embodiments according to the present disclosure and should not be regarded as limiting the scope of the present disclosure.

[0050] Figure 1 It is a schematic diagram of the process of discharging the tapered double-seam pressed welded steel pipe in the embodiment of the present disclosure;

[0051] Figure 2 A schematic diagram of a tapered steel pipe according to an embodiment of the present disclosure;

[0052] Figure 3 It is a schematic diagram of the expansion of the tapered steel pipe according to an embodiment of the present disclosure;

[0053] Figure 4 This is a schematic diagram of the arrangement of the tapered steel pipe in the length direction according to an embodiment of the present disclosure;

[0054] Figure 5 This is a schematic diagram of the arrangement of the tapered steel pipe in the width direction according to an embodiment of the present disclosure;

[0055] Figure 6 A schematic diagram of merging multiple tapered steel pipes of the same specification according to an embodiment of the present disclosure;

[0056] Figure 7 A structural block diagram of an electronic device according to an embodiment of the present application is shown. DETAILED DESCRIPTION

[0057] In the following, only some exemplary embodiments are briefly described. As those skilled in the art will appreciate, the described embodiments may be modified in various ways without departing from the spirit or scope of the present disclosure. Therefore, the drawings and descriptions are considered to be exemplary and non-restrictive in nature.

[0058] Figure 1 The figure is a schematic diagram of the process flow of the conical double-seam pressed welded steel pipe arrangement method according to the embodiment of the present disclosure. Figure 1 As shown, the embodiment of the present disclosure provides a method for discharging a tapered double-seam pressed welded steel pipe, comprising the following steps:

[0059] S1: Obtain first target parameters of the tapered steel pipe, where the first target parameters include an upper outer diameter, a lower outer diameter, a height, and a wall thickness of the tapered steel pipe.

[0060] Figure 2 Schematic diagram of a tapered steel pipe according to an embodiment of the present disclosure. Figure 2 As shown, the upper outer diameter of the tapered steel pipe is d, the lower outer diameter of the tapered steel pipe is D, the height of the tapered steel pipe is H, and the wall thickness of the tapered steel pipe is t. The first target parameter can be obtained by measuring with a dimension measuring instrument. For example, the upper outer diameter d can be 1500, the lower outer diameter D can be 2000, the height H can be 1300, and the wall thickness t can be 30. The specific values ​​of the upper outer diameter d, the lower outer diameter D, the height H, and the wall thickness t are not limited here.

[0061] S2: Determine the second target parameters based on the first target parameters, where the second target parameters include a semi-cone angle, a horizontal projection value of the wall thickness, a long generatrix, and a short generatrix.

[0062] For example, Figure 2As shown, the semi-cone angle is θ, the horizontal projection value of the wall thickness is t1, the long generatrix is ​​L, and the short generatrix is ​​l. For example, the semi-cone angle θ can be determined by the lower outer diameter D, the upper outer diameter d, and the height H. The second target parameter is determined based on the first target parameter. It can be understood that any one of the semi-cone angle θ, the horizontal projection value of the wall thickness t1, the long generatrix L, and the short generatrix l in the second target parameter can be determined by one or more of the first target parameters.

[0063] S3: Determine a first deployment parameter based on the first target parameter and the second target parameter, where the first deployment parameter includes a deployment fan angle, a deployment plate width, and a deployment plate length.

[0064] Figure 3 FIG. 1 is a schematic diagram of the expansion of a tapered steel pipe according to an embodiment of the present disclosure. Figure 3 As shown, the unfolded fan angle is α, the unfolded plate width is Bs, and the unfolded plate length is Ls. For example, the unfolded fan angle α can be determined by the lower outer diameter D, the horizontal projection value of the wall thickness t1, the long generatrix L, and the single-sided pressure head ω. The first unfolding parameter is determined based on the first target parameter and the second target parameter. It can be understood that the first unfolding parameter includes any one of the unfolded fan angle α, the unfolded plate width Bs, and the unfolded plate length Ls, which can be determined by one or more of the first target parameters and one or more of the second target parameters.

[0065] S4: Determine first overlapping data in the length direction and second overlapping data in the width direction based on the second target parameter and the first expansion parameter.

[0066] Exemplarily, the first overlap data in the length direction is Δ1, and the second overlap data in the width direction is Δ2. For example, the first overlap data Δ1 can be determined by the expanded plate width Bs, the long busbar L, and the expanded fan angle α. The first overlap data in the length direction is determined based on the second target parameter and the first expansion parameter. It can be understood that the first overlap data Δ1 can be determined by the first or more of the second target parameters and one or more of the first expansion parameters. The second overlap data Δ2 in the width direction is determined based on the second target parameter and the first expansion parameter. It can be understood that the second overlap data Δ2 can be determined by the first or more of the second target parameters and one or more of the first expansion parameters.

[0067] S5: Determine the first board length in the length direction based on the first expansion parameter, the second target parameter and the first overlapping data, determine the first board width in the length direction based on the first expansion parameter, determine the second board length in the width direction based on the first expansion parameter, determine the second board width in the width direction based on the first expansion parameter, the second target parameter and the second overlapping data.

[0068] Figure 4 FIG. 1 is a schematic diagram of the arrangement of the tapered steel pipe in the length direction according to an embodiment of the present disclosure. Figure 4As shown, the first plate length in the length direction is Ld1, the first plate width in the length direction is Bd1, the second plate length in the width direction is Ld2, and the second plate width in the width direction is Bd2. The first plate length Ld1 in the length direction can be determined by one or more of the first expansion parameters, one or more of the second target parameters, and the first overlap data. The first plate width Bd1 can be determined by one or more of the first expansion parameters.

[0069] Figure 5 FIG. 1 is a schematic diagram of the arrangement of the tapered steel pipe in the length direction according to an embodiment of the present disclosure. Figure 5 As shown, the second plate width Bd2 in the width direction can be determined by one or more of the first expansion parameters, one or more of the second target parameters and the second overlap data, and the second plate length Ld2 in the width direction can be determined by one or more of the first expansion parameters. The first plate length Ld1 in the length direction, the first plate width Bd1 in the length direction, the second plate length Ld2 in the width direction, the second plate width Bd2 in the width direction and the wall thickness t are output as needed.

[0070] S6: Determine the order plate length based on the first expansion parameter's expansion plate length and expansion fan angle, the number of tapered steel pipes, and the first overlap data. Determine the order plate width based on the first expansion parameter's expansion plate width and expansion fan angle, the number of tapered steel pipes, the second overlap data, and the long busbar of the second target parameter.

[0071] Figure 6 FIG. 1 is a schematic diagram of combining multiple tapered steel pipes of the same specification according to an embodiment of the present disclosure. Figure 6 As shown, the order plate length is Lz and the order plate width is Bz. The order plate length Lz is determined by the developed plate length Ls of the first development parameter, the number of tapered steel pipes n, and the first overlap data Δ1. The order plate width Bz is determined by the developed plate width Bs and the developed fan angle α, the number of tapered steel pipes n, the second overlap data Δ2, and the long generatrix L of the second target parameter. The order plate length Lz and the order plate width Bz are output as needed.

[0072] The related art method for generating order plate gauges for tapered double-seam pressed welded steel pipes requires manual or software expansion, and then manual or software layout to obtain the purchase plate gauge. The related art method is not coherent and requires the use of multiple software or methods. Moreover, the methods are not well connected, the efficiency is low, and automation cannot be achieved. The tapered double-seam pressed welded steel pipe layout method of the disclosed embodiment obtains the original input of the first target parameter and the relevant judgment conditions, and generates order plate gauges for tapered steel pipes from expansion to layout in one go, without the need for other layout and nesting software, and the calculation process does not require manual intervention. Compared with the related methods, the disclosed embodiment has the advantages of high efficiency, high accuracy, and low cost, and can automatically expand and layout, improve efficiency and accuracy, and achieve automation.

[0073] In a disclosed embodiment, determining a second target parameter based on a first target parameter includes:

[0074] Determine the semi-cone angle based on the upper outer diameter, the lower outer diameter and the height;

[0075] Determine the horizontal projection value of the wall thickness based on the wall thickness and the semi-cone angle;

[0076] Determine the long generatrix based on the lower outer diameter, the horizontal projection value of the wall thickness and the semi-cone angle;

[0077] The short generatrix is ​​determined based on the upper outer diameter, the horizontal projection value of the wall thickness, and the semi-cone angle.

[0078] For example, Figure 2 As shown, the semi-cone angle θ is determined based on the upper outer diameter d, the lower outer diameter D, and the height H. For example, the semi-cone angle can be determined by the following formula: semi-cone angle θ = arctan ((Dd) / 2H). By inputting the upper outer diameter d = 1500, the lower outer diameter D = 2000, and the height H = 1400, the semi-cone angle θ is determined to be 10.125°.

[0079] For example, Figure 2 As shown, the wall thickness horizontal projection value t1 is determined based on the wall thickness t and the semi-cone angle θ. For example, the wall thickness horizontal projection value can be determined by the following formula: wall thickness horizontal projection value t1 = t × cosθ. According to the previously determined semi-cone angle θ = 10.125 and t = 30, the wall thickness horizontal projection value t1 = 29.533 is determined.

[0080] For example, Figure 2 As shown, the long generatrix L is determined based on the lower outer diameter D, the horizontal projection value of the wall thickness t1 and the semi-cone angle θ. For example, the long generatrix L can be determined by the following formula: long generatrix L = (D-t1) / 2sinθ. According to the aforementioned semi-cone angle θ = 10.125, the horizontal projection value of the wall thickness t1 = 29.533 and the lower outer diameter D = 2000, the long generatrix L = 5604.585 is determined.

[0081] For example, Figure 2 As shown, the short busbar 1 is determined based on the upper outer diameter d, the horizontal projection value of the wall thickness t1 and the semi-cone angle θ. For example, the short busbar 1 can be determined by the following formula: short busbar l = (d-t1) / 2sinθ. According to the aforementioned semi-cone angle θ = 10.125, the horizontal projection value of the wall thickness t1 = 29.533 and the upper outer diameter d = 1500, the short busbar 1 = 4182.439 is determined.

[0082] In a disclosed embodiment, determining a first expansion parameter based on a first target parameter and a second target parameter includes:

[0083] Determine the unfolding fan angle based on the lower outer diameter, the horizontal projection value of the wall thickness and the long generatrix;

[0084] Determine the developed plate width based on the long busbar, the short busbar and the developed fan angle;

[0085] The unfolded plate length is determined based on the long generatrix and the unfolded fan angle.

[0086] For example, Figure 3 As shown, the unfolded fan angle α is determined based on the lower outer diameter D, the horizontal projection value of the wall thickness t1, and the long generatrix L. For example, the unfolded fan angle can be determined by the following formula: unfolded fan angle α = (π×(D-t1)+4×ω) / L. According to the aforementioned t1 = 29.533, the lower outer diameter D = 2000, and the long generatrix L = 5604.585, the unfolded fan angle α is determined to be 63.285°.

[0087] For example, Figure 3 As shown, the expanded plate width Bs is determined based on the long busbar L, the short busbar 1 and the expanded fan angle α. For example, the expanded plate width Bs can be determined by the following formula: expanded plate width Bs = Ll × cos (α / 4). According to the previously determined long busbar L = 5604.585, short busbar 1 = 4182.439, and expanded fan angle α = 63.285°, the expanded plate width Bs = 1580.588 is determined.

[0088] For example, Figure 3 As shown, the unfolded plate length Ls is determined based on the long busbar L and the unfolded fan angle α. For example, the unfolded plate length Ls can be determined by the following formula: unfolded plate length Ls = 2L × sin (α / 4). According to the aforementioned long busbar L = 5604.585 and the unfolded fan angle α = 63.285°, the unfolded plate length Ls = 3056.018 is determined.

[0089] In a disclosed embodiment, determining first overlapping data in a length direction based on a second target parameter and a first expansion parameter includes:

[0090] Determine first data based on the long generatrix and the unfolded fan angle;

[0091] The first overlapping data is determined based on the unfolded panel width, the first data, and the unfolded fan angle.

[0092] Exemplarily, the first data ΔH is determined based on the long bus L and the expansion fan angle α. For example, the first data ΔH can be determined by the following formula: first data ΔH=L×(1-cos(α / 4)). According to the long bus L=5604.585 and the expansion fan angle α=63.285° determined above, the first data ΔH=212.316 is determined.

[0093] Exemplarily, the first overlapping data Δ1 is determined based on the unfolded plate width Bs, the first data ΔH, and the unfolded fan angle α. For example, the first overlapping data Δ1 can be determined by the following formula: first overlapping data Δ1=(Bs-2×ΔH)×(tan(α / 4)). According to the aforementioned unfolded plate width Bs=1580.588, the first data ΔH=212.316, and the unfolded fan angle α=63.285°, the first overlapping data Δ1=327.563 is determined.

[0094] In a disclosed embodiment, determining a first board length in a length direction based on a first expansion parameter, a second target parameter, and first overlapping data, and determining a first board width in a length direction based on the first expansion parameter includes:

[0095] determining a first plate length based on the unfolded plate length, the first overlap data, and the unfolded fan angle;

[0096] A first panel width is determined based on the developed panel width.

[0097] For example, Figure 4 As shown, the first plate length Ld1 is determined based on the unfolded plate length Ls, the first overlap data Δ1 and the unfolded fan angle α. For example, the first plate length Ld1 can be determined by the following formula: first plate length Ld1 = 2 × Ls-Δ1 + 15 / cos(α / 4) + 30. According to the unfolded plate length Ls = 3056.018, the first overlap data Δ1 = 327.563, and the unfolded fan angle α = 63.285° determined above, the first plate length Ld1 = 5830.064 is determined.

[0098] For example, Figure 4 As shown, the first plate width Bd1 is determined based on the developed plate width Bs. For example, the first plate width Bd1 can be determined by the following formula: first plate width Bd1 = Bs + 30. According to the developed plate width Bs = 1580.588 determined above, the first plate width Bd1 = 1610.588 is determined.

[0099] In a disclosed embodiment, determining second overlapping data in the width direction based on the second target parameter and the first expansion parameter includes:

[0100] Determine a first angle based on the short busbar, the unfolded fan angle, and the long busbar;

[0101] Second overlapping data is determined based on the long generatrix and the first angle.

[0102] Exemplarily, the first angle β is determined based on the short busbar 1, the fan-shaped angle α, and the long busbar L. For example, the first angle β can be determined by the following formula: First angle β = sin -1(l×sin(α / 4) / L). According to the long busbar L=5604.585, the short busbar L=4182.439 and the fan-shaped angle α=63.285° determined above, the first angle β=11.739 is determined.

[0103] Exemplarily, the second overlapping data Δ2 is determined based on the long bus L and the first angle β. For example, the second overlapping data Δ2 can be determined by the following formula: second overlapping data Δ2=L×(1-cosβ). According to the long bus L=5604.585 and the first angle β=11.739 determined above, the second overlapping data Δ2=327.563 is determined.

[0104] In a disclosed embodiment, determining a second plate length in a width direction based on a first expansion parameter, and determining a second plate width in a width direction based on the first expansion parameter, a second target parameter, and second overlap data include:

[0105] determining a second plate length in the width direction based on the unfolded plate length;

[0106] A second panel width is determined based on the developed panel width, the first angle, and the second overlap data.

[0107] For example, Figure 5 As shown, the second plate length Ld2 is determined based on the unfolded plate length Ls. For example, the second plate length Ld2 can be determined by the following formula: second plate length Ld2 = Ls + 30. According to the unfolded plate length Ls = 3056.018 determined above, the second plate length Ld2 = 3086.018 is determined.

[0108] For example, Figure 5 As shown, the second plate width Bd2 is determined based on the unfolded plate width Bs, the second overlap data Δ2 and the first angle β. For example, the second plate width Bd2 can be determined by the following formula: second plate width Bd2 = 2 × Bs-Δ2 + 15 / cos(β) + 30. According to the unfolded plate length Bs = 1580.588, the first overlap data Δ2 = 327.563, and the first angle β = 11.739° determined above, the second plate width Bd2 = 3089.272 is determined.

[0109] like Figure 6As shown, when multiple conical tubes of the same specification are unfolded and combined for arrangement, for example, 4 conical tubes are combined, n pieces are combined horizontally, and m pieces are combined vertically. The order board length Lz is determined by the unfolded board length Ls of the first unfolding parameter, the number of conical steel tubes n, and the first overlapping data Δ1. For example, the order board length Lz can be determined by the following formula, order board length Lz = Ls × 2n-(Δ1-15 / cos(α / 4)) × (2n-1) + 30. According to the aforementioned unfolded board length Ls = 3056.018, longitudinal n = 2, first overlapping data Δ1 = 327.563, unfolding fan angle a = 63.285°, the order board length Lz = 5830.064 is determined.

[0110] The order plate width Bz is determined by the unfolded plate width Bs and the unfolded fan angle α, the number of tapered steel pipes n, the second overlap data Δ2, and the long generatrix L of the second target parameter. For example, the order plate width Bz can be determined by the following formula: order plate width Bz = Bs × m-(Δ2-15 / cos(β)) × (m-1) + 30. According to the aforementioned unfolded plate width Bs = 1580.588, the lateral m = 2, the second overlap data Δ2 = 327.563, and the first angle β = 11.739, the order plate width Bz = 3089.272 is determined.

[0111] The method of the embodiment of the present disclosure can determine and calculate order specifications, such as the order board length and the order board width.

[0112] The embodiment of the present disclosure provides a discharge device for a tapered double-seam pressed welded steel pipe, which may include: a first target parameter acquisition module, used to acquire first target parameters of the tapered steel pipe, the first target parameters including the upper outer diameter, the lower outer diameter, the height and the wall thickness of the tapered steel pipe; a second target parameter determination module, used to determine second target parameters based on the first target parameters, the second target parameters including the half cone angle, the horizontal projection value of the wall thickness, the long generatrix and the short generatrix; a first expansion parameter determination module, used to determine first expansion parameters based on the first target parameters and the second target parameters, the first expansion parameters including the expansion fan angle, the expansion plate width and the expansion plate length; an overlap data determination module, used to determine first overlap data in the length direction and second overlap data in the width direction based on the second target parameters and the first expansion parameters. overlap data; a module for determining the length and width of the plate in the length direction, for determining the first plate length in the length direction based on the first unfolding parameter, the second target parameter and the first overlapping data, and determining the first plate width in the length direction based on the first unfolding parameter; a module for determining the length and width of the plate in the width direction, for determining the second plate length in the width direction based on the first unfolding parameter, and determining the second plate width in the width direction based on the first unfolding parameter, the second target parameter and the second overlapping data; a module for determining the ordering plate length, for determining the ordering plate length based on the unfolded plate length and unfolded fan angle of the first unfolding parameter, the number of tapered steel pipes and the first overlapping data; a module for determining the ordering plate width, for determining the ordering plate width based on the unfolded plate width and unfolded fan angle of the first unfolding parameter, the number of tapered steel pipes, the second overlapping data and the long busbar of the second target parameter.

[0113] Figure 7 FIG. 1 is a block diagram showing a structure of an electronic device according to an embodiment of the present application. Figure 7 As shown, the electronic device includes: at least one processor 702 and a memory connected in communication with at least one processor, and the memory 701 stores instructions that can be executed by at least one processor, and the instructions are executed by at least one processor. The instructions are executed by at least one processor so that at least one processor can execute the method for discharging a tapered double-seam pressed welded steel pipe in any one of the embodiments of the present disclosure. The number of memories 701 and processors 702 can be one or more. The electronic device is intended to represent various forms of digital computers, such as laptop computers, desktop computers, workbenches, personal digital assistants, servers, blade servers, mainframe computers, and other suitable computers. The electronic device can also represent various forms of mobile devices, such as personal digital processing, cellular phones, smart phones, wearable devices, and other similar computing devices. The components shown herein, their connections and relationships, and their functions are merely examples and are not intended to limit the implementation of the present application described and / or required herein.

[0114] The electronic device may also include a communication interface 703 for communicating with external devices and performing data exchange transmission. The various devices are interconnected using different buses and may be installed on a common motherboard or in other ways as needed. The processor 702 may process computer programs executed in the electronic device, including computer programs stored in or on a memory to display graphical information of a GUI on an external input / output device (such as a display device coupled to an interface). In other embodiments, if necessary, multiple processors and / or multiple buses may be used together with multiple memories and multiple memories. Similarly, multiple electronic devices may be connected, each device providing some of the necessary operations (for example, as a server array, a group of blade servers, or a multi-processing system). The bus may be divided into an address bus, a data bus, a control bus, and the like. For ease of representation, Figure 5 Only one thick line is used in the diagram, but this does not mean that there is only one bus or only one type of bus.

[0115] Optionally, in a specific implementation, if the memory 701, the processor 702 and the communication interface 703 are integrated on a chip, the memory 701, the processor 702 and the communication interface 703 can communicate with each other through an internal interface.

[0116] It should be understood that the processor may be a central processing unit (CPU), or other general-purpose processors, digital signal processors (DSP), application-specific integrated circuits (ASIC), field programmable gate arrays (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. A general-purpose processor may be a microprocessor or any conventional processor, etc. It is worth noting that the processor may be a processor supporting the Advanced RISC Machines (ARM) architecture.

[0117] An embodiment of the present application provides a non-transitory computer-readable storage medium (such as the memory 701 described above), which stores a computer program. When the computer program is executed by a processor, the method provided in the embodiment of the present application is implemented.

[0118] Optionally, the memory 701 may include a program storage area and a data storage area, wherein the program storage area may store an operating system and an application required for at least one function; the data storage area may store data created according to the use of the control electronic device of the vehicle projection lamp, etc. In addition, the memory 701 may include a high-speed random access memory, and may also include a non-transient memory, such as at least one disk storage device, a flash memory device, or other non-transient solid-state storage device. In some embodiments, the memory 701 may optionally include a memory generated remotely relative to the processor 702, and these remote memories may be connected to the control electronic device of the vehicle projection lamp via a network. Examples of the above-mentioned network include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.

[0119] Computer readable media include permanent and non-permanent, removable and non-removable media that can be implemented by any method or technology to store information. Information can be computer readable instructions, data structures, program modules or other data. Examples of computer storage media include, but are not limited to, phase change memory (PRAM), static random access memory (SRAM), dynamic random access memory (DRAM), other physical types of random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), flash memory or other memory technology, compact disc read-only memory (CD-ROM), digital versatile disc (DVD) or other optical storage, magnetic cassette, magnetic disk storage or other magnetic storage media or any other non-transmission media that can be used to store information that can be accessed by a computing device. As defined in this article, computer readable media does not include non-transitory media such as modulated data signals and carrier waves.

[0120] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art may combine and combine different embodiments or examples described in this specification and the features of different embodiments or examples, unless they are contradictory.

[0121] In addition, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of the features. In the description of this application, the meaning of "plurality" is two or more, unless otherwise clearly and specifically defined.

[0122] Any process or method description in the flow chart or otherwise described herein can be understood to represent a module, fragment or portion of a code including one or more executable instructions for implementing the steps of a specific logical function or process. And the scope of the preferred embodiment of the present application includes other implementations, in which the functions may not be performed in the order shown or discussed, including in a substantially simultaneous manner or in a reverse order according to the functions involved.

[0123] The logic and / or steps represented in the flowchart or otherwise described herein, for example, can be considered as an ordered list of executable instructions for implementing logical functions, which can be embodied in any computer-readable medium for use by an instruction execution system, apparatus or device (such as a computer-based system, a system including a processor or other system that can fetch instructions from an instruction execution system, apparatus or device and execute instructions), or used in combination with these instruction execution systems, apparatuses or devices.

[0124] It should be understood that the various parts of the present application can be implemented with hardware, software, firmware or a combination thereof. In the above embodiments, multiple steps or methods can be implemented with software or firmware stored in a memory and executed by a suitable instruction execution system. All or part of the steps of the above embodiment method can be completed by instructing the relevant hardware through a program, which can be stored in a computer-readable storage medium, and when the program is executed, it includes one of the steps of the method embodiment or a combination thereof.

[0125] In addition, each functional unit in each embodiment of the present application can be integrated into a processing module, or each unit can exist physically separately, or two or more units can be integrated into one module. The above-mentioned integrated module can be implemented in the form of hardware or in the form of a software functional module. If the above-mentioned integrated module is implemented in the form of a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium. The storage medium can be a read-only memory, a disk or an optical disk, etc.

[0126] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any technician familiar with the technical field can easily think of various changes or substitutions within the technical scope disclosed in the present application, which should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be based on the protection scope of the claims.

Claims

1. A method for discharging a tapered double-seam pressed welded steel pipe, characterized in that: The following steps are involved: Acquire first target parameters of the tapered steel pipe, wherein the first target parameters include an upper outer diameter, a lower outer diameter, a height, and a wall thickness of the tapered steel pipe; Determine a second target parameter based on the first target parameter, wherein the second target parameter includes a semi-cone angle, a horizontal projection value of the wall thickness, a long generatrix, and a short generatrix; Determine a first deployment parameter based on the first target parameter and the second target parameter, wherein the first deployment parameter includes a deployment fan angle, a deployment plate width, and a deployment plate length; determine the deployment fan angle based on the lower outer diameter, the horizontal projection value of the wall thickness, and the long generatrix; determine the deployment plate width based on the long generatrix, the short generatrix, and the deployment fan angle; and determine the deployment plate length based on the long generatrix and the deployment fan angle; Determine first overlapping data in a length direction and second overlapping data in a width direction based on the second target parameter and the first expansion parameter; Determine a first board length in a length direction based on the first unfolding parameter, the second target parameter, and the first overlapping data, and determine a first board width in a length direction based on the first unfolding parameter; Determine a second plate length in the width direction based on the first unfolding parameter, and determine a second plate width in the width direction based on the first unfolding parameter, the second target parameter, and the second overlapping data; Determine the order plate length based on the unfolded plate length and unfolded fan angle of the first unfolding parameter, the number of tapered steel pipes, and the first overlapping data; The order plate width is determined based on the unfolded plate width and unfolded fan angle of the first unfolding parameter, the number of tapered steel pipes, the second overlapping data, and the long generatrix of the second target parameter.

2. The method for discharging tapered double-seam pressed welded steel pipe according to claim 1, characterized in that: Determining the second target parameter based on the first target parameter includes: determining a semi-cone angle based on an upper outer diameter, a lower outer diameter, and a height; Determine the horizontal projection value of the wall thickness based on the wall thickness and the semi-cone angle; Determine the long generatrix based on the lower outer diameter, the horizontal projection value of the wall thickness and the semi-cone angle; The short generatrix is ​​determined based on the upper outer diameter, the horizontal projection value of the wall thickness, and the semi-cone angle.

3. The method for discharging tapered double-seam pressed welded steel pipe according to claim 1, characterized in that: Determining first overlapping data in a length direction based on the second target parameter and the first expansion parameter includes: Determine first data based on the long generatrix and the unfolded fan angle; The first overlapping data is determined based on the unfolded panel width, the first data, and the unfolded fan angle.

4. The method for discharging tapered double-seam pressed welded steel pipe according to claim 3, characterized in that: Determining a first board length in a length direction based on the first unfolding parameter, the second target parameter, and the first overlapping data, and determining a first board width in a length direction based on the first unfolding parameter, comprising: Determine the first plate length based on the unfolded plate length, the first overlap data, and the unfolded fan angle; The first panel width is determined based on the unfolded panel width.

5. The method for discharging tapered double-seam pressed welded steel pipe according to claim 1, characterized in that: Determining second overlapping data in a width direction based on the second target parameter and the first expansion parameter includes: Determine a first angle based on the short busbar, the unfolded fan angle, and the long busbar; The second overlapping data is determined based on the long generatrix and the first angle.

6. The method for discharging tapered double-seam pressed welded steel pipe according to claim 5, characterized in that: Determining a second plate length in the width direction based on the first unfolding parameter, and determining a second plate width in the width direction based on the first unfolding parameter, the second target parameter, and the second overlapping data, including: determining a second plate length in the width direction based on the unfolded plate length; The second panel width is determined based on the developed panel width, the first angle, and the second overlap data.

7. A conical double-seam pressed welded steel pipe discharge device, characterized in that: include: A first target parameter acquisition module, used to acquire first target parameters of the tapered steel pipe, wherein the first target parameters include an upper outer diameter, a lower outer diameter, a height, and a wall thickness of the tapered steel pipe; A second target parameter determination module, used to determine a second target parameter based on the first target parameter, wherein the second target parameter includes a semi-cone angle, a horizontal projection value of the wall thickness, a long generatrix, and a short generatrix; a first expansion parameter determination module, used to determine a first expansion parameter based on the first target parameter and the second target parameter, wherein the first expansion parameter includes an expansion fan angle, an expansion plate width, and an expansion plate length, and the first expansion parameter determination module is specifically used to determine the expansion fan angle based on the lower outer diameter, the horizontal projection value of the wall thickness, and the long generatrix, determine the expansion plate width based on the long generatrix, the short generatrix, and the expansion fan angle, and determine the expansion plate length based on the long generatrix and the expansion fan angle; an overlapping data determining module, configured to determine first overlapping data in a length direction and second overlapping data in a width direction based on the second target parameter and the first expansion parameter; A module for determining the length and width of a board in the length direction, configured to determine a first board length in the length direction based on the first unfolding parameter, the second target parameter, and the first overlapping data, and to determine a first board width in the length direction based on the first unfolding parameter; A module for determining a board length and width in the width direction, configured to determine a second board length in the width direction based on the first unfolding parameter, and to determine a second board width in the width direction based on the first unfolding parameter, the second target parameter and the second overlapping data; An order plate length determination module, used to determine the order plate length based on the unfolded plate length and unfolded fan angle of the first unfolding parameter, the number of tapered steel pipes, and the first overlapping data; An order plate width determination module is used to determine the order plate width based on the expanded plate width and expanded fan angle of the first expansion parameter, the number of tapered steel pipes, the second overlapping data and the long busbar of the second target parameter.

8. An electronic device, comprising: at least one processor; as well as A memory communicatively connected to the at least one processor; wherein the memory stores instructions executable by the at least one processor, the instructions being executed by the at least one processor so that the at least one processor can execute the method for arranging a tapered double-seam pressed welded steel pipe according to any one of claims 1 to 6.

9. A non-transitory computer-readable storage medium storing computer instructions, wherein the computer instructions are used to cause a computer to execute the method for arranging tapered double-seam press-welded steel pipes according to any one of claims 1 to 6.

Citation Information

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