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| tutorials:how_to:work_with_the_layout_feature [2025/11/30 15:52] – Ralf Gerke-Cantow | tutorials:how_to:work_with_the_layout_feature [2026/08/17 08:53] (current) – removed Ralf Gerke-Cantow | ||
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| - | =====How to work with the layout feature===== | ||
| - | In the BASIC SETTINGS | ||
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| - | For sand casting it is a good choice to select the overall dimensions of the drag and cope mold half. Open the EDITOR TOOLBAR at the bottom of the screen, bounds can be introduced here also by click onto BOUNDS . To add a Constraint Plane click onto the “Layout button” | ||
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| - | “Support” is the offset of the plane (position within the workspace in mm), “Normal” allows to change its orientation by selecting “Horizontal”, | ||
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| - | To add a grid to the constraint plane open the WORKSPACE TOOLBAR and click on “Graticule” | ||
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| - | To add a vertex, you open the LAYOUT TOOLBAR in the MAIN FEATURES again. (Vertices are used for the placement of components or for the design of Edges.) To add a vertex click with the right mouse button at the chosen position in the workspace grid. | ||
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| - | Click onto the “Create Vertex” | ||
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| - | The selection of a vertex can be done by selecting it in the LAYOUT MENU within the Layout Entities, or by clicking the “Inspect” button | ||
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| - | When a further vertex is produced, the previous one is deselected, indicated in the LAYOUT MENU Entity List by the missing hook as well as the color change to purple in the workspace. | ||
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| - | To move a vertex within the workspace you need to “select” it and enter the new coordinates into its DIALOGUE. Alternatively, | ||
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| - | To bind a vertex to the corresponding constraint plane, you “Select” it as well as the constraint plane in the LAYOUT MENU, then open the LAYOUT TOOLBAR and click “Bind Constraints” . To remove the binding of a vertex (or vertices) from a constraint plane, you “Select” it and also the constraint plane in the LAYOUT MENU and “Unbind Constraints” | ||
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| - | To create an Edge between two vertices “Select” both and use “Create Edge” | ||
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| - | To assign a component to a vertex you “Select” the vertex and then open the COMPONENTS TOOLBAR. Choose the component you want to design. Click onto the End of the Straight to open its PROPERTIES DIALOGUE and you may change the shape from “Blind” to “Ingate”. | ||
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| - | To create a feeder and assign it to a vertex, you need select the vertice then select the “Feeder” | ||
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| - | Feeder necks can be designed by opening the STRAIGHT DIALOGUE by clicking onto the straight listed in the LAYOUT MENU entity list. The setting of the “FeederNeck” onto “True” in the STRAIGHT DIALOGUE (default is “False”) creates automatically a feeder neck with dimensions according to the feeder zone modulus. | ||
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| - | Open the “End” menu by clicking onto the end listed in the LAYOUT MENU entity list and set the shape onto “Ingate” creates sharped edges. Open the EDITOR TOOLBAR for analyzing of the cross section properties and select PROPERTIES . With “Inspect” and the selection of the cross section area of the straight, the PROPERTIES DIALOGUE opens. The cross section area in this case is limited to “Generic” only. | ||
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| - | If the casting geometry does not fit to the standard feeder neck properties, you may adjust its dimensions as close as possible by setting “FeederNeck” in the “Straight” DIALOGUE onto “False” and then open the EDITOR TOOLBAR and “Inspect” in the EDITOR TOOLBAR you may set “Shape” onto “Generic” and change the “CalculationBasis” from “TotalArea” to “TotalHeight” and you can use the fields “TotalHeight”, | ||
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| - | You can do the same for the feeder neck cross section area next to the feeder body, as both areas are not necessarily the same. | ||
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| - | To check the modulus of the straight, click onto the modified straight and check the modulus according to the custom dimensions calculated by Visiometa. The feeder neck modulus has to be the same then entered into “PartModulus” in FEEDER DIALOGUE. If the modulus of the custom feeder neck does not match with the local part modulus, go back to the cross section areas of the feeder neck and design a feeder neck according to local part modulus and most close to the existing geometry. | ||