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[[category:L3999_Fall2017]]
[[category:L3999_Fall2017]]
{{L3999 Fall2017}}
[[Image:Box_for_wafer_quarters.jpg|thumb|right|Box for wafer quarters]]
==Designer==
'''[http://www.appropedia.org/User:Pasanet1 Toni Pasanen]''''
Aalto University,
Department of Electronics and Nanoengineering
==Project==
Single wafer boxes are a handy way to pack wafers securely e.g. during shipping or to store valuable samples firmly and securely. However, commecial products (e.g., [https://www.sps-europe.com/webshop/handling-shipping/single-wafer-shipper/coin-style-shipper/p1/ here] or [http://www.mtixtl.com/one4diametersinglewafercarrierboxsp5-s4--includingcontainercoverandspring.aspx here]) are designed only for full wafers, and sometimes there is a need to store smaller samples, e.g. wafer quarters. Since the commercial products have a support for samples only at the edges, wafer quarters lie on the bottom at the center and can almost freely move in the box, which causes sample scratching.
In this project, a customisable single wafer box was designed for four wafer quarters. The box is significantly cheeper than the commercial ones and has sample supports also in the center, ensuring horizontal position of the samples. Furthermore, the box has separator walls for samples, which prevents the quarters from sliding on top of each other preventing sample scratching. The size of the box can easily be tuned for various wafer sizes by changing only one parameter in the scad code. The samples can be easily removed with tweezers due to a gap in the outer support. See presentation slides below for more information.
This project was performed as a final project of the [[L3999]] course Fall 2017.
==Model==
===Concept===
The wafer box is printed in one piece and the lid in one piece. Separate scad and stl files for both parts can be found at the [https://3dprint.nih.gov/discover/3DPX-008178 NIH Printing repository]. The wafer size supported by the box can be easily changed by a single parameter in the beginning of the scad code, which adjust all the other dimensions accordingly. Alternatively, the code offers the possibility to easily tune all dimensions by dedicated variables. These include wall and bottom thicknesses, tolerance for sample size, height of the box, edges and sample separators, and the tweezer gap dimensions. By default, the box is suitable for four 100 mm diameter wafer quarters, but the sample separators can be modified to support e.g. wafer halves or smaller samples. The bottom of the box has a groove matching with the edge, which enables stacking several boxes firmly. If the box or edge height is changed, the groove is adjusted accordingly by the code. If higher print speed or larger layer height is used in printing, the tolerance of the groove may need to be increased (0.6 mm by default).
Detailed information with illustrative figures is presented [[Media:Pasanen_Single wafer box for quarters.pdf | here]].
===Bill of Materials===
*Wafer box bottom
*Wafer box lid
===Estimated Cost===
$0.75 (bottom)
$0.73 (lid)
The costs have been calculated using a price of $25 per 1 kg for PLA [https://www.lulzbot.com/store/filament/polylite-pla] and 30 g and 29 g PLA consumption (estimated by [https://www.lulzbot.com/cura Cura slicer]) for the bottom and lid parts, respectively.
Price of a [https://www.sps-europe.com/webshop/handling-shipping/single-wafer-shipper/coin-style-shipper/p1/ commercial equivalent] is $22.18, i.e., the cost savings with the 3D printed version with additional features is $20.7 per pc. The price of the used printer ([https://www.lulzbot.com/store/printers/lulzbot-taz-6 LulzBot TAZ 6]) is saved after 121 printed boxes.
===Directions===
1) Download the scad and stl files from the [https://3dprint.nih.gov/discover/3DPX-008178 NIH repository]. By default, the box is suitable for four 100 mm diameter wafer quarters. If this size is preferred, move directly to step 3.
2) Set the wafer diameter and corresponding tolerance in mm in the scad code by using the first two variables (named 'd_wafer' and 'toler_d'). All the other diameters can be changed by the corresponding variables explained in the comments. Make sure that the six first variables highlighted in the 'lid part' code match with the values set in the 'bottom part' code. After all changes, export stl codes for the slicer.
3) Print the bottom and lid parts separately or in one run. Printing of a single piece took approximately 1.5 hours using a print speed of 50 mm/s and a layer height of 0.38 mm with [https://www.lulzbot.com/store/filament/polylite-pla PolyLite PLA] and [https://www.lulzbot.com/store/printers/lulzbot-taz-6 LulzBot TAZ 6 printer]. Several bottom parts can be printed per one lid if the boxes are stacked.
===Planned upgrades===
* A 'spider' to prevent vertical movement of the samples during transportation.
* Locking mechanism for the lid.
==Parts==
{{Gallery
|width=180
|height=135
|Image:Wafer_box_bottom.png|Wafer box
|Image:Wafer_box_top.png|Wafer box lid
}}
==Final Prints==
All components have been printed using [https://www.lulzbot.com/store/printers/lulzbot-taz-6 LulzBot TAZ 6 printer] and [https://www.lulzbot.com/store/filament/polylite-pla PolyLite PLA] material. The print speed was set to 50 mm/s, and a layer height of 0.38 mm was used.
{{Gallery
|width=180
|height=135
|title= Final Prints
|Image:Box with two quarters.jpg|Printed box with two quarters
|Image:Groove at the bottom.jpg|Groove at the bottom to enable stacking
|Image:Stacked boxes.jpg|Two boxes and a lid stacked together
}}

Revision as of 13:17, 27 October 2017


Box for wafer quarters

Designer

Toni Pasanen' Aalto University, Department of Electronics and Nanoengineering

Project

Single wafer boxes are a handy way to pack wafers securely e.g. during shipping or to store valuable samples firmly and securely. However, commecial products (e.g., here or here) are designed only for full wafers, and sometimes there is a need to store smaller samples, e.g. wafer quarters. Since the commercial products have a support for samples only at the edges, wafer quarters lie on the bottom at the center and can almost freely move in the box, which causes sample scratching.

In this project, a customisable single wafer box was designed for four wafer quarters. The box is significantly cheeper than the commercial ones and has sample supports also in the center, ensuring horizontal position of the samples. Furthermore, the box has separator walls for samples, which prevents the quarters from sliding on top of each other preventing sample scratching. The size of the box can easily be tuned for various wafer sizes by changing only one parameter in the scad code. The samples can be easily removed with tweezers due to a gap in the outer support. See presentation slides below for more information.

This project was performed as a final project of the L3999 course Fall 2017.


Model

Concept

The wafer box is printed in one piece and the lid in one piece. Separate scad and stl files for both parts can be found at the NIH Printing repository. The wafer size supported by the box can be easily changed by a single parameter in the beginning of the scad code, which adjust all the other dimensions accordingly. Alternatively, the code offers the possibility to easily tune all dimensions by dedicated variables. These include wall and bottom thicknesses, tolerance for sample size, height of the box, edges and sample separators, and the tweezer gap dimensions. By default, the box is suitable for four 100 mm diameter wafer quarters, but the sample separators can be modified to support e.g. wafer halves or smaller samples. The bottom of the box has a groove matching with the edge, which enables stacking several boxes firmly. If the box or edge height is changed, the groove is adjusted accordingly by the code. If higher print speed or larger layer height is used in printing, the tolerance of the groove may need to be increased (0.6 mm by default).

Detailed information with illustrative figures is presented here.

Bill of Materials

  • Wafer box bottom
  • Wafer box lid

Estimated Cost

$0.75 (bottom)
$0.73 (lid)

The costs have been calculated using a price of $25 per 1 kg for PLA [1] and 30 g and 29 g PLA consumption (estimated by Cura slicer) for the bottom and lid parts, respectively.

Price of a commercial equivalent is $22.18, i.e., the cost savings with the 3D printed version with additional features is $20.7 per pc. The price of the used printer (LulzBot TAZ 6) is saved after 121 printed boxes.

Directions

1) Download the scad and stl files from the NIH repository. By default, the box is suitable for four 100 mm diameter wafer quarters. If this size is preferred, move directly to step 3.

2) Set the wafer diameter and corresponding tolerance in mm in the scad code by using the first two variables (named 'd_wafer' and 'toler_d'). All the other diameters can be changed by the corresponding variables explained in the comments. Make sure that the six first variables highlighted in the 'lid part' code match with the values set in the 'bottom part' code. After all changes, export stl codes for the slicer.

3) Print the bottom and lid parts separately or in one run. Printing of a single piece took approximately 1.5 hours using a print speed of 50 mm/s and a layer height of 0.38 mm with PolyLite PLA and LulzBot TAZ 6 printer. Several bottom parts can be printed per one lid if the boxes are stacked.

Planned upgrades

  • A 'spider' to prevent vertical movement of the samples during transportation.
  • Locking mechanism for the lid.


Parts


Final Prints

All components have been printed using LulzBot TAZ 6 printer and PolyLite PLA material. The print speed was set to 50 mm/s, and a layer height of 0.38 mm was used.

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