Point of service method of manufacture of custom headwear
10561521 ยท 2020-02-18
Assignee
Inventors
- TIMOTHY R LITTLEFIELD (PHOENIX, AZ, US)
- Jerold N Luisi (Phoenix, AZ, US)
- George E Kechter (Peoria, IL, US)
- Mark Charles Thomas (Scottsdale, AZ, US)
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for fabricating an article of headwear for a subject is provided. The method comprises: generating a three-dimensional digital data file for the subject at a clinic by capturing a three-dimensional data file representative of the head by utilizing apparatus located at the clinic operating to capture three-dimensional data representative of the head; utilizing a processor to process the three-dimensional digital data file to produce a device file comprising the shape for the article of headwear; and manufacturing the article of headwear at the clinic by utilizing an additive manufacture device located at the clinic to operate with the three-dimensional digital data file.
Claims
1. A method for fabricating an article of headwear for a head of a subject, said method comprising: providing capture apparatus physically located at a facility; providing additive manufacturing apparatus at said facility; capturing three-dimensional digital data for said head utilizing said capture apparatus physically located at said facility; generating a three-dimensional digital data file for said head at said facility; providing one or more processors to generate a device file for said article of headwear by executing instructions stored in a non-transitory computer readable medium, said one or more processors execute said instructions to: process said three-dimensional digital data file to determine a desired shape for said article of headwear; process said three-dimensional digital data file to generate contour lines for said article of headwear on a digital representation of said head, said contour lines defining one or more peripheral edges of said custom headwear; project lines outward from said contour lines to an outer surface of said desired shape of said article of headwear; utilize said projected lines to establish one or more peripheral edges for said article of headwear; and generate a device file, said device file comprising said desired shape for said article of headwear and said one or more peripheral edges for said article of headwear; providing said additive manufacturing apparatus with said device file; and utilizing said additive manufacturing apparatus to manufacture said article of headwear at said facility by utilizing said device file.
2. The method of claim 1, comprising; locating said one or more processors located at one of said facility or a location physically removed from said facility.
3. The method of claim 2, comprising: operating said one or more processors to execute said instructions to modify said device file to include one or more removable manufacturing supports for said article of headwear to facilitate additive manufacture of said article of headwear, said modifying step occurring prior to providing said additive manufacturing apparatus with said device file.
4. The method of claim 2, comprising: utilizing said one or more processors to execute said instructions to determine a plurality of different layers for incorporation into said article of headwear; utilizing said one or more processors to execute said instructions to incorporate said plurality of different layers into said device file; and utilizing said additive manufacture apparatus to manufacture said article of headwear with said plurality of different layers.
5. The method of claim 4, comprising: operating said one or more processors to execute said instructions to automatically select one or more different properties for each layer of said plurality of different layers; utilizing said one or more processors to executes said instructions to incorporate said one or more different properties for each layer of said plurality of different layers into said device file; and utilizing said additive manufacture apparatus to manufacture said article of headwear with said different properties for each layer of said plurality of different layers.
6. The method of claim 4, comprising: operating said one or more processors to execute said instructions to determine a cellular construction for one layer of said plurality of layers; and utilizing said one or more processors execute said instructions to incorporate said cellular construction for said one layer into said device file.
7. The method of claim 6, comprising: operating said additive manufacturing apparatus in response to said device file incorporating said one layer of cellular construction to manufacture said one layer to be of cellular construction.
8. The method of claim 7, comprising: manufacturing said one layer to comprise carbon fibers.
9. The method of claim 4, comprising: manufacturing at least one layer of said plurality of layers to comprise carbon fibers.
10. The method of claim 4, comprising: utilizing said one or more processors to execute said instructions to determine a plurality of different layers for incorporation into said article of headwear, said plurality of layers comprising a first layer for contacting said head, an intermediate layer, and an outer layer; utilizing said one or more processors to execute said instructions to incorporate said plurality of layers into said device file; and utilizing said additive manufacture apparatus to manufacture said article of headwear with said plurality of different layers.
11. The method of claim 10, comprising: operating said one or more processors to execute said instructions to automatically select one or more different properties for each layer of said plurality of different layers; utilizing said one or more processors to execute said instructions to incorporate said one or more different properties for each layer of said plurality of different layers into said device file; and utilizing said additive manufacture apparatus to manufacture said article of headwear with said one or more different properties for each layer of said plurality of different layers.
12. The method of claim 11, comprising: operating said one or more processors to execute said instructions to automatically select one layer of said plurality of different layers to comprise carbon fibers.
13. The method of claim 12, comprising: utilizing said one or more processors to execute said instructions to provide one layer of said plurality of different layers to comprise cellular construction; utilizing said one or more processors to execute said instructions to incorporate said one layer of cellular construction into said device file; utilizing said additive manufacture apparatus to manufacture said one layer in a cellular construction.
14. The method of claim 10, comprising: utilizing said one or more processors to execute said instructions to select one layer of said plurality of different layers to comprise carbon fibers; utilizing said one or more processors to execute said instructions to incorporate said one layer of carbon fibers into said device file; utilizing said additive manufacture apparatus to manufacture one layer of said plurality of different layers to comprise carbon fibers.
15. The method of claim 14, comprising: utilizing said one or more processors to execute said instructions to provide one layer of said plurality of different layers to comprise cellular construction; utilizing said one or more processors to execute said instructions to incorporate said one layer of cellular construction into said device file; utilizing said additive manufacture device to manufacture said one layer to be of cellular construction.
16. The method of claim 4, comprising: utilizing said one or more processors to execute said instructions to determine a plurality of different layers for incorporation into said article of headwear, said plurality of layers comprising: a first layer for contacting said head, an intermediate layer comprising a cellular construction, and an outer layer; utilizing said one or more processors to executes said instructions to incorporate said plurality of different layers into said device file; and utilizing said additive manufacture apparatus to manufacture said article of headwear comprising said plurality of different layers, said intermediate layer comprising a cellular construction.
17. The method of claim 16, comprising: utilizing said one or more processors to execute said instructions to select one layer of said plurality of different layers to comprise carbon fibers; utilizing said one or more processors to executes said instructions to incorporate said one layer of carbon fibers into said device file; and utilizing said additive manufacture apparatus to manufacture at least one layer of said plurality of different layers to comprise carbon fibers.
18. The method of claim 16, comprising: operating said one or more processors to execute said instructions to configure said first layer to comprise portions arranged to contact said head at corresponding predetermined surface areas of said head.
19. A point of service method at a facility for fabricating a custom article of headwear for a head of a subject, said method comprising: providing capture apparatus at said facility to capture a three-dimensional data file representative of said head; providing processing apparatus at said facility, said processing apparatus in communication with said capture apparatus; providing additive manufacturing apparatus at said facility, said additive manufacturing apparatus in communication with said processing apparatus; utilizing said processing apparatus to process said three-dimensional digital data file by executing instructions stored in a non-transitory computer readable medium, said one or more processors execute said instructions to: process said three-dimensional digital data file to determine a desired shape for said article of headwear; process said three-dimensional digital data file to generate one or more contour lines for said article of headwear on a digital representation of said head, said one or more contour lines defining corresponding one or more peripheral edges of said article of headwear; project lines outward from said one or more contour lines to an outer surface of said desired shape of said article of headwear; utilize said projected lines to establish one or more peripheral edges corresponding to said one or more contour lines for said article of headwear; and generate a device file for said customized article of headwear, said device file comprising said desired shape for said article of headwear, said one or more peripheral edges and comprising a plurality of layers for said article of headwear, said plurality of layers comprises a first layer to contact said head, an outer layer, and an intermediate layer disposed between said first layer and said outer layer, said first layer comprises portions arranged to contact predetermined surface portions of said head; operating said additive manufacturing apparatus in response to said device data file to manufacture said article of headwear.
20. The point of service method of claim 19, comprising: operating said processing apparatus to execute said instructions to define said intermediate layer to be a cellular construction.
21. The point of service method of claim 20, comprising: operating said additive manufacturing apparatus to manufacture said article of headwear comprising said intermediate layer of cellular construction.
22. The point of service method of claim 21, comprising: operating said processing apparatus to execute said instructions to define one or more layers of said plurality of layers as comprising carbon fibers.
23. The point of service method of claim 22, comprising: operating said additive manufacturing apparatus to manufacture said article of headwear comprising said one or more layers of said plurality of layers of cellular construction.
24. The point of service method of claim 19, comprising: operating said processing apparatus to execute said instructions to define one or more layers of said plurality of layers as comprising carbon fibers.
25. The point of service method of claim 24, comprising: operating said additive manufacturing apparatus to manufacture said article of headwear comprising said one or more layers of said plurality of layers of cellular construction.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The invention will be better understood by a reading of the following detailed description of embodiments of the invention in which like reference indicators designate like elements and in which:
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DETAILED DESCRIPTION
(12) Turning now to
(13) Image capture apparatus 103 processes the captured data and generates a captured head data file 105 for the subject's head. In addition, image capture apparatus 103 processes data file 105 to generate a modified head data file 107. The head shape represented by modified head data file 107 represents a desired or corrected head shape for the subject. The methodology for generating the modified head shape data file is described in the above-identified patents and additionally in U.S. Pat. Nos. 8,442,288, 8,442,308, 8,472,686, 8,494,237, and 8,787,657 all of which are assigned to the assignee of this invention. The disclosures of these additional patents are incorporated herein by reference.
(14) The captured head data file 105 and modified head data file are both accessed by processor 109 executing program 111 to generate a device data file 113 that completely defines a custom cranial remodeling device for subject 101. The operation of processor 109 executing program 111 is described in detail herein below.
(15) Device data file 113 is provided to an additive manufacture device 115. Additive manufacture device 115 utilizes device data file 113 to manufacture a custom cranial remodeling device 117 for subject 101.
(16) Additive manufacture device 115, in one embodiment is a commercially available three-dimensional printer that is operable to deposit layers of material to form cranial remodeling device 117. It will be recognized by those skilled in the art that there are various types of additive manufacture devices that are commercially available and the present invention encompasses those various types of additive manufacture devices.
(17) The embodiment shown in
(18) It will be further appreciated by those skilled in the art that although a separate processor 109 is shown in
(19) Digital capture apparatus 103 operates on captured subject head data representing the digital image of the head of subject 101 to mathematically remove the subject's body and other extraneous information to establish a subject data file. The digital image of the subject's body is mathematically cropped or removed leaving just digital data representative of the digital image of the subject's head to provide three-dimensional cropped subject data.
(20) The three-dimensional cropped subject data is oriented into a predetermined standardized orientation for further processing to produce a cropped and oriented data file that is referred to as the captured head data file 105.
(21) It will be appreciated by those skilled in the art that in other embodiments, program 111 may provide the cropping and orientation functions that are provided by digital capture apparatus 103.
(22) Processor 109, executing program 111, utilizes captured head data file 105 to generate curvature maps of the subject's head. A plurality of different types of curvature maps are generated by processor 109, executing program 111. Specific ones of the curvature maps are used to locate specific curvatures and features for a cranial remodeling device. Program 111 is utilized to create, reference, and cross-reference the curvature maps to determine an optimal position of a device contour.
(23) The term contour as used herein is the shape that defines the what in the past has been called trim lines for cranial remodeling devices that were formed by first thermoforming foam and plastic layers onto a head model and then cutting or trimming the foam and plastic to a final shape of the cranial remodeling device to be worn on the head of a subject.
(24) The program identifies anthropometric landmarks to determine the contour of the device.
(25) In the embodiment describe below, the cranial remodeling device comprises bottom and top contour lines 117a, 117b. The bottom contour line 117a and the top contour line 117b are each calculated for cranial remodeling device 117 by processor 109 executing program 111 operating initially captured head data file 105.
(26) Turning now to
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(28) Program 111 executed by processor 109 identifies the sagittal plane 215 and uses sagittal plane 215 to identify the location of a key portion 211 of cranial remodeling device 117. In the embodiment, program 111 as executed by processor 109 generates a contour for key portion 211. Key portion 211 dips a predetermined distance below an orbital horizontal that is identified by program 111.
(29) Turning now to
(30) Program 111, executed by processor 109 generates ear contours or splines 305 for each ear. The location of ear contours 305 are determined by mathematically defining the top ear points 307, bottom ear points 309, front ear points 311 and back of ear points 313 and connecting the points 307, 309, 311, 313 for each ear with a curved spline 315. In addition to determining the ear contours 305, the midway point of the total length of the ear is defined.
(31) The location, size and shape of the temporal piece contours 315 are determined by using the mathematically defined exocanthion points 203a, 203b and front ear points 311. The location of the bottom 317 of the temporal contour 315 is a predetermined portion x of the ears total lengthy above the bottom ear point 309.
(32) Program 111, executed by processor 109, calculates a neck inflection portion of the contour. The location of the neck inflection contour portion is determined by using a mathematically defined neck inflection and the ears bottom points 309. The final location of the neck inflection point 321 is determined by calculating a weighted average between the mathematically defined neck inflection point and the ear bottom points 309.
(33) Program 111, executed by processor 109, calculates an angle of the neck inflection contour is determined by calculating a guideline that connects the neck inflection point 321 to a chin point 323.
(34) Program 111, executed by processor 109, calculates mastoid contours 331. The location, size and shape of the mastoid contours 331 are determined by using the mathematically defined ear points 307, 309, 311, 313, the neck inflection point 321 and chin point 323. A guideline 325 that connects the neck inflection point 321 to the chin point 323 is calculated. A line 331 perpendicular to the guideline 325 is placed a predetermined distance from the posterior ear point 313.
(35) Curved contour portions 333 are each calculated, sized and positioned to be tangent to the back of the ear spline 305 and contact both the neck inflection point 321 to guide line 325 and line 331. The shape of each curved contour portion 333 is different for each head.
(36) In the embodiment, cranial remodeling device 117 further comprises a top contour 117b.
(37) Program 111, executed by processor 109, identifies a point 221 of low curvature on the sagittal midline 223 above the frontal bones as the location of an anterior superior contour.
(38) Program 111, executed by processor 109, identifies a point 401 of low curvature on the sagittal plane 223 above the occipital bones as the height location of the posterior superior as shown in
(39) Program 111, executed by processor 109, determines an anterior corner front starting point 225 from a standard offset of sagittal plane 223.
(40) Program 111, executed by processor 109, determines an anterior corner lateral starting point 341 in the coronal direction utilizing curvatures associated with the coronal suture.
(41) Program 111, executed by processor 109, determines a posterior corner back starting point 405 in the sagittal direction by calculating a standard offset of the mathematically derived sagittal plane 223.
(42) Program 111, executed by processor 109, determines a posterior corner lateral starting point 351 in the coronal direction using the curvatures associated with the coronal plane 301.
(43) Program 111, executed by processor 109, by performing the above calculations and operations, defines top contour 117b and bottom contour 117a on the oriented head shape as shown in drawing figures and most clearly shown in
(44) Once the top and bottom contours 117b, 117a are created on the unmodified head shape, program 111, executed by processor 109, juxtaposes modified head shape 600 onto unmodified head shape 200 as shown in
(45) Program 111, executed by processor 109, utilized modified head shape 600 to generate a multilayered cranial remodeling device 700 juxtaposed onto modified head shape 600. At this point, multilayered cranial remodeling device 700 extends over substantially all of modified head shape 600 as shown in
(46) Program 111, executed by processor 109, projects lines 701 from top contour 117b and bottom contour 117a through juxtaposed modified head shape 600 and through juxtaposed multilayer cranial remodeling device 700 as shown in
(47) Lines 701 are projected from unmodified head shape 200. As shown in
(48) Program 111, executed by processor 109, utilizes projected lines 701 to define bottom and top contours 117a, 117b onto multilayered cranial remodeling device 700 to generate a device file 113.
(49) In generating device file 113, program 111, executed by processor 109, selects the properties of each of a plurality of layers for the cranial remodeling device 117.
(50) Additive manufacture device 115 of
(51) One embodiment of a custom cranial remodeling device 117 to correct a deformed head of a subject comprises an inner layer 1101 shaped to contact the head of the subject at predetermined areas. The inner layer 1101 is deposited by additive manufacturing device 115 shown in
(52) Device data file 113 determines the shape of the cranial remodeling device 117 to correct the shape of the deformed head.
(53) In an embodiment, device data file 113 is derived from subject data file 105 and a modified data file 107. The modified data file 107 is representative of a modified head shape.
(54) Device data file 113 is derived by one or more processors 109 operable to: determining contour lines 117a, 117b for custom cranial remodeling device 117e on the deformed head shape 200 shown in
(55) In various embodiments the inner layer comprises portions positioned to contact the head at predetermined surface areas of the head.
(56) In various embodiments, inner layer 1101 comprises a plurality of separate portions that are not shown in the drawing figures. Each separate portion of inner layer 1101 is configured to contact one of a corresponding plurality of areas on the head shape 200.
(57) In various embodiments, cranial remodeling device 117 comprises one or more removable manufacturing supports, that are not shown in the drawing figures, to facilitate additive manufacture of custom cranial remodeling device 117. The supports are provided solely to facilitate additive manufacture and are removed prior to utilization of cranial remodeling device 117. The supports may be of any convenient configuration and may be comprised from an additive material that is easily dissolved or is otherwise easily removable from the finished cranial remodeling device.
(58) In various embodiments, the inner layer 1101, the outer layer 1103 and the intermediate layer 1105 each comprise one or both of different strength and material properties. Device data file 113 as generated by processor 109 executing program 111 automatically determines the material deposited for each layer 1101, 1103, 1105 and any configuration details for each layer 1101, 1103, 1105.
(59) In various embodiments, cranial remodeling device 117 comprises alignment marks deposited on the cranial remodeling device 117 by additive manufacture device 115. The alignment marks aid a clinician in fitting custom cranial remodeling device 117 to subject 101. The alignment marks may be formed by incorporation of various landmarks such as depressions or protrusions or other identifications formed into a layer and visible to a clinician.
(60) One embodiment comprises a plurality of different layers comprising inner layer 1101, outer layer 1103 and one or more intermediate layers 1105, the plurality of layers comprising one or more of different strength properties, material properties, and configurations, each layer 1101, 1103, 1105 of the plurality of layers is deposited by the additive manufacturing device.
(61) In various embodiments, at least one layer of the plurality of layers comprises a cellular configuration as shown in
(62) In at least one embodiment, at least one layer of the plurality of layers comprises carbon fibers integrated therein. For example, outer layer 1103 may comprise carbon fibers to provide greater strength and lighter weight to cranial remodeling device 117.
(63) By utilizing additive manufacture, one or more electronic sensors may be embedded in cranial remodeling device 117 as part of the additive manufacture protocol presented by device data file 113.
(64) The one or more electronic sensors may be operable to determine pressure levels applied to the subject's head when custom cranial remodeling device 117 is worn.
(65) The one or more electronic sensors may further be operable to confirm that custom cranial remodeling device 117 is being correctly worn on the subject's head.
(66) In other embodiments one or more electronic transducers are manufactured into the custom cranial remodeling device 117 by the additive manufacture device 115. The one or more electronic transducers may be useable to determine one or more of tilt and turn of the subject's head, whether the custom cranial remodeling device 117 is being worn, and the frequency of predetermined head motions.
(67) Various embodiments may comprise components integrally formed with the custom cranial remodeling device 117 by the additive manufacture device 115. The components may comprise one or more of apparatus for fastening the cranial remodeling device in place on the head, electronic transducers, and electronic sensors.
(68) Although the embodiments described above are for custom cranial remodeling devices, 117 other embodiments may be for custom headwear to be worn on the head of a subject. Such custom headwear may, by way of non-limiting examples be various sports headwear, protective headwear covering all or a portion of a head, combat helmets, sports helmets, medical headwear and any number of headwear. Embodiments of custom headwear devices may comprise: an inner layer 1101 shaped to contact the head of the subject at predetermined areas, the inner layer deposited by an additive manufacturing device; an outer layer 1103 deposited by the additive manufacturing device. The inner layer 1101 and the outer layer 1103 are each formed by the additive manufacture device 115 utilizing a device data file 113 derived from a subject or captured head data file 105. The subject data file 105 is representative of the shape of the head.
(69) In various embodiments of the custom headwear device, the device data file is derived by one or more processors 109: determining contour lines 117a for the custom headwear device 117 on the head shape 200 utilizing device data file 113; projecting the contour lines 117a outward from the head as shown in
(70) In various embodiments of the custom headwear device 117, inner layer 1101 comprises portions positioned to contact the head at predetermined surface areas of the head.
(71) In various embodiments of the custom headwear device, inner layer 1101 may comprise a plurality of separate portions, each portion configured to contact one of a corresponding plurality of areas on the subject's head.
(72) In various embodiments of the custom headwear device 117, one or more removable manufacturing supports as described herein above are deposited to facilitate additive manufacture of the custom headwear device.
(73) Various embodiments of the custom headwear device 117 comprise at least one intermediate layer 1105 between the inner layer 1101 and the outer layer 1103, the intermediate layer 1105 is deposited by the additive manufacturing device.
(74) In various embodiments of the custom headwear device 117, the inner layer 1101, the outer layer 1103, and the intermediate layer 1105 each comprise one or both of different strength and material properties.
(75) Various embodiments of the custom headwear device 117 comprise alignment marks as described herein above.
(76) Various embodiments of the custom headwear device 117 comprise guidelines printed by the additive manufacture device on the custom headwear device as described herein above.
(77) Various embodiments of the custom headwear device comprise a plurality of different layers comprising inner layer 1101, outer layer 1103, and one or more intermediate layers 1105, the plurality of layers comprising one or more of different strength properties, material properties, and configurations.
(78) In various embodiments of the custom headwear device 117, at least one layer 1105 of the plurality of layers comprises a cellular configuration as shown in
(79) In various embodiments of the custom headwear device 117, at least one layer of the plurality of layers comprises carbon fibers integrated therein.
(80) Various embodiments of the custom headwear device 117 may comprise one or more electronic sensors manufactured by the additive manufacture device into the custom headwear device.
(81) Various embodiments of the custom headwear device comprise one or more electronic sensors operable to determine pressure levels applied to the head when the custom headwear device is worn on the head; and the one or more electronic sensors are manufactured into the custom headwear device by the additive manufacture device.
(82) Various embodiments of the custom headwear device 117 comprise one or more electronic transducers manufactured into the custom headwear device by the additive manufacture device.
(83) In various embodiments of the custom headwear device 117, the one or more electronic transducers are useable to determine one or more of tilt and turn of the head, whether the custom cranial remodeling device is being worn, and the frequency of predetermined head motions.
(84) Various embodiments of the custom headwear device comprise components integrally formed with the custom cranial remodeling device by the additive manufacture device; and the components comprise one or more of apparatus for fastening the cranial remodeling device in place on the head, electronic transducers, and electronic sensors.
(85) In various embodiments, the methods and apparatus described for manufacture of cranial remodeling devices may also be used to manufacture custom headwear devices for subjects such as, by way of non-limiting example, sports helmets and protective helmets. In the manufacture of custom headwear devices, contour lines may be calculated on a captured subject data file representative of the shape of the subject's head that is captured utilizing one of digital image capture apparatus and scanning apparatus. The contour lines may be extended outward from the contour lines on the head image data representative of the subject's head through a calculated multi-layered headwear device juxtaposed onto the subject's head image data as described herein above.
(86) The invention has been described in terms of various embodiments. It will be apparent to those skilled in the art that various modifications may be made without departing from the scope of the invention. It is intended that the invention be limited in scope only by the claims appended hereto.