SPACE TEMPERATURE SCANNER AND METHOD FOR DISPLAYING SPACE TEMPERATURE
20210270680 · 2021-09-02
Inventors
- Takeshi YAJIMA (Tokyo, JP)
- Akira HANAFUSA (Tokyo, JP)
- Isao NAKAYAMA (Tokyo, JP)
- Katsuhiko Tanaka (Tokyo, JP)
Cpc classification
G01K1/026
PHYSICS
G01K1/14
PHYSICS
International classification
G01K1/02
PHYSICS
G01K1/14
PHYSICS
Abstract
A space temperature scanner capable of measuring a temperature distribution in a space without requiring troublesome device installation work or complex data processing is disclosed. The space temperature scanner (scanner 100) of the present invention includes a bar-shaped portable support member 110, attachment units 120 arranged along a straight line on the support member 110, and thermocouple units 130 that can be removably attached to the attachment units 120. The thermocouple units 130 can be selectively attached to some or all of the attachment units 120 when temperature measurement is to be performed.
Claims
1. A space temperature scanner comprising: a bar-shaped portable support member; a plurality of attachment units arranged along a straight line on the support member; and a plurality of thermocouple units configured to be removably attached to the attachment units, wherein the thermocouple units are selectively attached to a portion of the attachment units, or to all of the attachment units when measurement is to be performed.
2. The space temperature scanner according to claim 1, wherein at least one of the thermocouple units includes a connector configured to be connected to the attachment unit, and a two-wire fine-wire thermocouple that protrudes from the connector.
3. The space temperature scanner according to claim 1, wherein the portable support member forms part of a plurality of support members that are coupled together by a joint, a hinge, or a slide rail.
4. The space temperature scanner according to claim 1, wherein at least one of the thermocouple units includes a reflection member for motion capture.
5. The space temperature scanner according to claim 1, wherein the support member includes an acceleration sensor.
6. The space temperature scanner according to claim 1, wherein the support member is configured such that the thermocouple units are stowed inside the support member.
7. The space temperature scanner according to claim 1, further comprising a wheel fixed to a lower end of the support member.
8. The space temperature scanner according to claim 1, further comprising LEDs that change color according to a temperature.
9. A space temperature display method comprising the steps of: measuring space temperatures in a predetermined space; and generating tile images that show a temperature distribution of the measured space temperatures by color, and displaying the tile images superimposed on a 2D image of the space in which the space temperatures were measured.
10. A space temperature display method comprising the steps of: measuring space temperatures in a predetermined space; and generating a curtain image that shows a temperature distribution of the measured space temperatures by color, and displaying the curtain image superimposed on a 3D model of the space in which the space temperatures were measured.
11. A space temperature display method comprising the steps of: measuring space temperatures in a predetermined space; and generating a curtain image that shows a temperature distribution of the measured space temperatures by color, and displaying the curtain image superimposed in a VR spatial image.
12. The space temperature scanner according to claim 2, wherein the portable support member forms part of a plurality of support members that are coupled together by a joint, a hinge, or a slide rail.
13. The space temperature scanner according claim 2, wherein at least one of the thermocouple units includes a reflection member for motion capture.
14. The space temperature scanner according to claim 3, wherein at least one of the thermocouple units includes a reflection member for motion capture.
15. The space temperature scanner according to claim 2, wherein the support member includes an acceleration sensor.
16. The space temperature scanner according to claim 3, wherein the support member includes an acceleration sensor.
17. The space temperature scanner according to claim 4, wherein the support member includes an acceleration sensor.
18. The space temperature scanner according to claim 2, wherein the support member is configured such that the thermocouple units are stowed inside the support member.
19. The space temperature scanner according to claim 2, further comprising a wheel fixed to a lower end of the support member.
20. The space temperature scanner according to claim 2, further comprising LEDs that change color according to a temperature.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
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[0033]
[0034]
INDEX TO REFERENCE NUMERALS
[0035] 100 . . . scanner; [0036] 102 . . . space; [0037] 110 . . . support member; [0038] 110a . . . hole; [0039] 112 . . . upper support member; [0040] 112a . . . coupling portion; [0041] 114 . . . lower support member; [0042] 114a . . . coupling portion; [0043] 120 . . . attachment unit; [0044] 120a-120h . . . attachment unit; [0045] 130 . . . thermocouple unit; [0046] 130a . . . thermocouple unit; [0047] 132 . . . connector; [0048] 134 . . . fine-wire thermocouple; [0049] 140 . . . logger; [0050] 142 . . . wire; [0051] 200 . . . scanner; [0052] 220 . . . attachment unit; [0053] 222 . . . projection; [0054] 224 . . . guard portion; [0055] 300 . . . scanner; [0056] 302 . . . LED; [0057] 304 . . . handle; [0058] 306 . . . wheel; [0059] 400 . . . predetermined space; [0060] 402 . . . tile image; [0061] 404 . . . curtain image. [0062] 32° C. zone (
DETAILED DESCRIPTION
[0064] Referring to the accompanying drawings, the following is a detailed explanation of preferred embodiments of the present invention. All dimensions, materials and further specific numbers shown in the embodiments are merely given as examples in order to aid the understanding of the invention, and are not meant to limit the present invention, unless this is explicitly stated so. It should be further noted that throughout this specification and in the drawings, elements that have substantially the same functionality and/or structure are denoted by the same reference numerals and redundant descriptions of such elements are omitted. Furthermore, in some instances, some aspects that are not directly related to the disclosed embodiments may not be shown in the figures and/or described herein.
[0065]
[0066] Thermocouple units 130 are removably attached to the attachment units 120, and the temperature of a space may be measured by the thermocouple units 130.
[0067] Further, in
[0068]
[0069] As shown in
[0070] Also, as described above, the fine-wire thermocouples 134 are used as the thermocouples in the present embodiment. The fine-wire thermocouples 134 have a low heat capacity and fast response speed, and thus have excellent thermo-responsiveness properties thereby facilitating measurement of the space temperature accurately and efficiently. Also, because the fine-wire thermocouples 134 have a high thermal responsiveness (i.e., a good ability to track the space temperature), it is possible to acquire the space temperature without needing to perform troublesome data processing for correction and compensation.
[0071]
[0072]
[0073] According to this configuration, the space temperature at higher positions can be measured by coupling multiple support members, namely the upper support member 112 and the lower support member 114. Also, the support member 110 can be easily transported when disassembled into the upper support member 112 and the lower support member 114. This therefore makes it possible to improve portability. Note that although a configuration in which the coupling portions 112a and 114a achieve coupling using male threading and female threading is given as an example in the present embodiment, there is no limitation to this. Examples of other coupling methods include mated coupling, a non-separating configuration using a foldable hinge, and a non-separating configuration using a telescoping slide rail.
[0074]
[0075] As described above, according to the scanner 100 of the present embodiment, a worker can measure the space temperature by carrying the scanner 100 into a space instead of installing devices at various measurement sites. Accordingly, it is possible to eliminate the conventional need for the worker to perform device attachment, and measurement work can be performed easily.
[0076] Also, with the scanner 100 of the present embodiment, the thermocouple units 130 can be attached and removed along the height direction of the support member 110. Accordingly, the arrangement of the thermocouple units 130 can be changed along the direction in which temperature measurements are to be obtained. Furthermore, in the present embodiment, space temperatures are measured accurately using the thermocouple units 130, thus making it possible acquire space temperatures without performing complex data processing.
[0077] Note that although a method in which the worker performs space temperature measurement while moving is given as an example in the present embodiment, there is no limitation to this, and space temperature measurement can be performed while the scanner 100 is disposed at a fixed point. Although not shown in the drawings, if the scanner 100 is configured such that a wheel is attached to the lower end of the support member 110 for example, the worker can move the scanner 100 more easily and the measurement height becomes more stable, thus making it possible to improve the work efficiency. In the case of being disposed at a fixed point, the scanner 100 may be configured such that a stand is attached to the lower end of the support member 110.
[0078] It is preferable that the fine-wire thermocouple 134 of each of the thermocouple units 130 has a wire diameter of 25 μm or less and a length of 100 mm or more. Accordingly, it is possible to favorably ensure the ability to track the space temperature when the worker performs measurement while moving. Also, it is desirable that the interval at which data is stored in the logger 140, that is to say the space temperature measurement interval, is 100 msec or less.
[0079]
[0080]
[0081] According to the above configuration, if a log of position information obtained by filming with the motion capture camera is matched with a log of space temperature information obtained by the thermocouple units 130, it is possible to easily and accurately obtain a temperature distribution in the space. If temperature distributions are displayed superimposed on an interior photo of the space for example, it is possible to visually perceive the space temperature as shown in
[0082] Note that although a method of acquiring position information with use of the motion capture reflection members 136 is described in the above configuration, there is no limitation to this. For example, in a configuration in which an acceleration sensor (not shown) is attached to the support member 110, it is possible to acquire position information regarding the support member 110 and obtain effects similar to those described above.
[0083]
[0084] The space temperature scanner 200 shown in
[0085] In the state shown in
[0086] According to the above configuration, thermocouple units 130 that are attached to the support member 110 but not used when obtaining the space temperature can be stowed inside the support member 110. The fine-wire thermocouples 134 of the thermocouple units 130 can thus be favorably protected.
[0087] According to the above configuration, it is not necessary to remove thermocouple units 130, thus making it possible to improve the work efficiency. Additionally, because there is no need to remove thermocouple units 130, it is possible to reduce the number of opportunities for the fine-wire thermocouples 134 of the thermocouple units 130 to come into contact with surrounding objects. This therefore makes it possible to favorably prevent damage to the fine-wire thermocouples 134 that can occur during removal.
[0088] Furthermore, the attachment unit 220 (as shown in
[0089]
[0090] Also, handles 304 for gripping by the worker are provided at vertically intermediate positions on the support member 110. The worker can therefore grip the handles 304 in order to move the scanner 300, thus making it possible to improve workability.
[0091] Furthermore, the scanner 300 is provided with a wheel 306 that is fixed to the lower end of the support member 110. Accordingly, the wheel 306 fixed to the lower end of the support member 110 can roll on the floor of the measurement space while the scanner 300 is moved. This therefore makes it possible to favorably suppress vertical shake in comparison with the case where the wheel 306 is not provided and the scanner 300 is moved while the support member 110 is held by the worker.
[0092] When space temperature measurement is to be performed using the scanner 300 shown in
[0093] According to the above configuration, by referencing the image shown in
[0094] The following describes another space temperature display method.
[0095] After space temperature measurement has been performed, the measured space temperature values are acquired from the logger 140 (see
[0096] When tile images are generated as described above, the tile images 402 are displayed superimposed on a 2D image of the predetermined space (the space in which space temperature measurement was performed) as shown in
[0097] According to the above configuration, by referencing the 2D image shown in
[0098]
[0099] In
[0100] In
[0101] Although preferred embodiments of the present invention have been described above with reference to the accompanying drawings, the present invention is needless to say not limited to these examples. A person skilled in the art will appreciate that various modifications and alterations can be made within the scope of the claims, and that all such modifications and alterations are also naturally encompassed in the technical scope of the present invention.
INDUSTRIAL APPLICABILITY
[0102] The present invention is applicable as a space temperature scanner for measuring a temperature distribution in a space.