3D BODY SCANNER FOR CREATING 3D BODY MODELS
20220404141 ยท 2022-12-22
Inventors
Cpc classification
International classification
Abstract
A 3D body scanner for creating 3D body models of an outer body shape of a person includes a scanner unit, which includes at least one depth sensor configured for spatially detecting a visual field. The scanner unit is powered by electrical energy, and a platform is powered by electrical energy and configured for accommodating the person. The 3D body scanner includes an energy transmission arrangement that is configured to contactlessly transmit electrical energy between the scanner unit and the platform.
Claims
1. A 3D body scanner for creating 3D body models of an outer body shape of a person, the 3D body scanner comprising: a scanner unit, which is powered by electrical energy and includes a depth sensor configured for spatially detecting a visual field; a platform powered by electrical energy, configured for accommodating the person and spaced apart from the scanner unit; an energy transmission arrangement, by means of which the electrical energy can be contactlessly transmitted between the scanner unit and the platform.
2. The 3D body scanner of claim 1, wherein the platform includes an electrical energy store.
3. The 3D body scanner of claim 1, wherein the energy transmission arrangement includes a transmitting unit configured for transmitting the electrical energy and a receiving unit configured for receiving the electrical energy, wherein the scanner unit includes the transmitting unit and the platform includes the receiving unit.
4. The 3D body scanner of claim 3, wherein the scanner unit includes a base element, which includes the transmitting unit.
5. The 3D body scanner of claim 4, wherein the base element includes a recess with a defined configuration, and wherein the platform includes an insertion section corresponding to the defined configuration of the recess such that the platform can be arranged in the recess via receipt of the insertion section into the recess.
6. The 3D body scanner of claim 4, wherein the transmitting unit is disposed in the immediate vicinity of the recess and the platform includes the receiving unit in the insertion section.
7. The 3D body scanner of claim 1, wherein the scanner unit and/or the platform include(s) a coupling arrangement that is configured such that the platform can be coupled to the scanner unit in a manner that permits energy transmission from the scanner unit to the platform.
8. The 3D body scanner of claim 3, wherein the transmitting unit and the receiving unit can be arranged one above the other congruently in a horizontal direction of the scanner unit in a manner that permits energy transmission from the scanner unit to the platform.
9. The 3D body scanner of claim 3, wherein the transmitting unit is arranged under the receiving unit.
10. The 3D body scanner of claim 1, wherein the energy transmission arrangement is configured for transmitting the electrical energy inductively and/or capacitively.
11. The 3D body scanner of claim 3, wherein the transmitting unit includes a transmitting coil and the receiving unit includes a receiving coil, wherein the transmitting coil and the receiving coil are arranged coaxially to each other for the purpose of energy transmission.
12. The 3D body scanner of claim 1, wherein the scanner unit includes a 3D sensor.
13. The 3D body scanner of claim 1, wherein the platform includes a weighing unit.
14. The 3D body scanner of claim 1, wherein each of the scanner unit and the platform includes a respective radio interface that is configured to permit a wireless radio link to be formed between the scanner unit and the platform.
15. The 3D body scanner of claim 1, wherein the scanner unit includes a mirror.
16. The 3D body scanner of claim 4, wherein the receiving unit is disposed in the immediate vicinity of the recess in the base element of the scanner unit, and the platform includes the transmitting unit in the insertion section.
17. The 3D body scanner of claim 1, wherein the platform includes a rotary table.
Description
BRIEF DESCRIPTION OF THE DRAWINGS OF EXEMPLARY EMBODIMENTS
[0024] Further advantages of the invention are described in the following exemplary embodiments, wherein:
[0025]
[0026]
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS OF THE INVENTION
[0027]
[0028] Moreover, the body scanner 1 includes a scanner unit 3, which is powered by electrical energy and includes at least one depth sensor 4 for detecting the person. The person 2 can be detected in a visual field 5 with the aid of the depth sensor 4. The depth sensor 4 gathers depth data of the visual field 5, on the basis of which the body model is ascertained. The at least one depth sensor 4 gathers, for all intents and purposes, 3D data of the visual field 5.
[0029] Moreover, the body scanner 1 includes a platform 6 for accommodating the person 2. The person 2 can stand on the platform 6, wherein a location of the person 2 is predefined by means of a placement of the platform 6.
[0030] The platform 6 is powered by electrical energy and can be designed, for example, as a rotary table, and so the person 2 can be turned in order to be able to scan the person 2 from all sides. The platform 6 can include an electric motor for this purpose.
[0031] Additionally or alternatively, the platform 6 can also include a weighing unit, by means of which a weight of the person 2 can be recorded. Additionally or alternatively, the platform 6 can include a sensor for detecting body parameters. In addition to the aforementioned weighing unit, the platform 6 can also include, additionally or alternatively, a body fat sensor, a pulse sensor, etc.
[0032] Moreover, as shown here, the scanner unit 3 can include a base element 7 in order to set the scanner unit 3 on an underlying surface.
[0033] Moreover, the scanner unit 3 of the present exemplary embodiment includes a mirror 8, with the aid of which the person 2 can observe him/herself.
[0034] In addition, the body scanner 1 according to the present exemplary embodiment includes a control unit 9. In this exemplary embodiment, the scanner unit 3 includes the control unit 9. The body scanner 1 can be controlled with the aid of the control unit 9. For example, the control unit 9 is configured to evaluate the data gathered by means of the depth sensor 4 and create the body model. Additionally or alternatively, the control unit 9 can be configured to control the platform 6.
[0035] The 3D body scanner 1 also includes an energy connection (not shown here) in order to supply the 3D body scanner 1 with electrical energy, for example, from a grid. For example, the scanner unit 3 includes the energy connection.
[0036] According to the present exemplary embodiment, the platform 6 includes an energy store 11 in order to be able to supply the platform 6 with energy. The energy store 11 can be rechargeable. For example, the energy store 11 includes an accumulator.
[0037] According to the present exemplary embodiment, the scanner unit 3 and the platform 6 each include a radio interface 17a, 17b, respectively, and so the two radio interfaces 17a, 17b can communicate wirelessly and/or exchange data with each other. The two radio interfaces 17a, 17b can be designed, for example, as Bluetooth.
[0038]
[0039] Electrical energy can be contactlessly exchanged between the scanner unit 3 and the platform 6 by means of the energy transmission arrangement 10. As schematically shown in
[0040] Moreover, the energy store 11 can be charged with the aid of the energy transmission arrangement 10 in order to be able to autonomously operate the platform 6. The energy store 11 can include, for example, an accumulator.
[0041] According to the present exemplary embodiment, the energy transmission arrangement 10 transmits the electrical energy when the platform 6 is coupled to the scanner unit 3. Moreover, the body scanner 1 includes a coupling arrangement 16 in order to couple the platform 6 to the scanner unit 3. As a result, it can be ensured that the platform 6 remains coupled to the scanner unit 3 during the transmission of energy. The coupling arrangement 16 includes, according to the present exemplary embodiment, a coupling recess 18, into which a coupling element 19 engages. The coupling arrangement 16 can couple the platform 6, for example, in a form-locking manner, with the scanner unit 3. Additionally or alternatively, the coupling arrangement 16 can also couple the platform 6 to the scanner unit 3 in a force-locked manner.
[0042] Moreover, the energy transmission arrangement 10 according to the present exemplary embodiment includes a transmitting unit 12 and a receiving unit 13. Electrical energy can be transmitted with the aid of the transmitting unit 12 and the electrical energy can be received with the receiving unit 13.
[0043] According to the present exemplary embodiment, the scanner unit 3 includes the transmitting unit 12 and the platform 6 includes the receiving unit 13. Additionally or alternatively, the scanner unit 3 can also include a receiving unit 13 and the platform 6 can include a transmitting unit 12.
[0044] The transmitting unit 12 and the receiving unit 13 can be designed, for example, as a transmitting coil and a receiving coil, respectively, and so the electrical energy can be inductively transmitted. Additionally or alternatively, the energy transmission arrangement 10 can also be designed such that the electrical energy is capacitively transmitted. In that case, the transmitting unit 12 and the receiving unit 13 can be appropriate capacitor elements.
[0045] Moreover, the scanner unit 3, in particular the base element 7, has a recess 14, into which the platform 6 can be inserted with an insertion section 15. As a result, it can be ensured that the energy transmission arrangement 10 can transmit the electrical energy. In particular, it is ensured that the transmitting unit 12 and the receiving unit 13 are arranged correctly with respect to each other.
[0046] In addition, the platform 6 is guided toward the scanner unit 3 from the direction in which the mirror 8 shown in
[0047] According to the present exemplary embodiment schematically shown in
[0048] The present invention is not limited to the represented and described exemplary embodiments. Modifications within the scope of the claims are also possible, as is any combination of the features, even if they are represented and described in different exemplary embodiments.
LIST OF REFERENCE CHARACTERS
[0049] 1 3D body scanner [0050] 2 person [0051] 3 scanner unit [0052] 4 depth sensor [0053] 5 visual field [0054] 6 platform [0055] 7 base element [0056] 8 mirror [0057] 9 control unit [0058] 10 energy transmission arrangement [0059] 11 energy store [0060] 12 transmitting unit [0061] 13 receiving unit [0062] 14 recess [0063] 15 insertion section [0064] 16 coupling arrangement [0065] 17 radio interface [0066] 18 coupling recess [0067] 19 coupling element [0068] V vertical direction