Measuring instrument attachment cover
A customizable, multi-layered attachment cover for handheld measuring instruments addresses the challenge of balancing grip and heat resistance by using 3D printing technology to create a personalized fit, enhancing user comfort and measurement accuracy.
Patent Information
- Application Number
- JP2021146526
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-09-08
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2041-09-08
AI Technical Summary
Existing heat-insulating covers for handheld measuring instruments like micrometers and calipers either compromise grip due to thickness or reduce heat resistance when made thinner, and user-specific customization is lacking, making it difficult for users to find a balance between ease of use and performance.
A customizable attachment cover with a multi-layered structure featuring a dense front and back layer with a porous intermediate layer, adjustable elastic modulus, and porosity, designed using 3D printing technology, allowing for personalized fit and enhanced heat resistance.
The solution provides a comfortable, secure grip and effective heat insulation tailored to individual hand sizes and grip styles, improving measurement accuracy by minimizing heat transfer from the user's hand.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an attachment cover for a measuring instrument, and more particularly to an attachment cover for a measuring instrument that contributes to improving the ease of holding or heat resistance of so-called handheld measuring instruments such as micrometers and calipers. [Background technology]
[0002] For example, micrometers and calipers are used as handheld measuring instruments. When such handheld measuring instruments are held directly in the hand, heat from the hand is transferred to the instrument, which can affect the measurement accuracy. To address this issue, calipers and micrometers are fitted with heat-insulating covers to prevent the heat from the hand from being directly transferred to the measuring instrument. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent 2593028 [Patent Document 2] Patent 3546184 [Patent Document 3] Patent 5601910 Summary of the Invention [Problem to be solved by the invention]
[0004] In Patents 2593028 and 5601910, the heat-insulating cover has a hard shell-like structure that provides a cavity between the meter and the hand. However, in the case of a heat-insulating cover like a hard shell with a cavity, the grip of the meter becomes somewhat thick when the heat-insulating cover is attached, making it difficult for users with small hands to grip. Furthermore, a hard shell-like heat-insulating cover has a rough texture that makes it difficult to grip. There are also plastic heat-resistant covers such as those in Patent 3546184, but even plastic resins have a certain degree of thermal conductivity, so holding them for a long period of time will result in heat being transferred to the measuring instrument. If the heat-resistant cover is made thick to prevent heat transfer, it becomes difficult to grip, but if it is made thin to make it easier to grip, the heat-resistant effect decreases, and until now there has not been a heat-resistant cover that achieves a good balance. Furthermore, hand size and grip style vary from user to user, and although some attempts have been made to create heat-resistant covers with contours that fit the shape of the hand (fingers), it has been difficult to create a cover that is both easy to use for each user and has high performance (heat resistance).For this reason, there is a strong demand for a measuring instrument attachment cover that is both easy to hold and has high performance (for example, heat resistance).
[0005] In addition, it is a difficult task for measuring instrument manufacturers to stock all the heat insulating covers for each model and type (size) of measuring instrument, and it would be quite costly to prepare injection molding dies for each pattern, so heat insulating covers were previously only available as accessories for high-precision measuring instruments. [Means for solving the problem]
[0006] The attachment cover of the measuring instrument of the present invention comprises: An attachment cover for a measuring instrument that can be attached and detached to a measuring instrument that a user holds in his / her hand for measurement operation, When the gripping portion is the portion of the outer surface of the measuring device that the user's hand comes into contact with when the user holds the measuring device, the attachment cover is attached to the measuring device so as to cover at least the grip portion, The attachment cover has a hollow structure with a porous or lattice structure. It is characterized by:
[0007] In one embodiment of the present invention, The side of the attachment cover that comes into contact with the user's hand is defined as a front surface, The side of the attachment cover that contacts the measuring instrument is the back side, The layer constituting the front surface side is referred to as a front surface layer, The layer constituting the rear surface side is referred to as a rear surface layer, When the layer between the front surface layer and the back surface layer is an intermediate layer, the front surface layer and the back surface layer are dense layers with low porosity, The intermediate layer is a hollow structure layer having a porosity greater than that of the front surface layer and the back surface layer. It is preferable.
[0008] In one embodiment of the present invention, The intermediate layer communicates with the outside through an opening provided in the front surface layer. It is preferable.
[0009] In one embodiment of the present invention, The hollow structure layer is further composed of two or more layers with different elastic moduli, The layer on the front surface side of the hollow structure layer has a lower elastic modulus than the layer on the back surface side. It is preferable.
[0010] The hollow structure layer is further composed of two or more layers with different thermal conductivities, The layer on the front surface side of the hollow structure layer has a lower thermal conductivity than the layer on the back surface side. It is preferable.
[0011] In one embodiment of the present invention, The hollow structure layer is further composed of two or more layers with different porosities, The layer on the front surface side of the hollow structure layer has a higher porosity than the layer on the back surface side. It is preferable.
[0012] In one embodiment of the present invention, When the direction from the back surface layer toward the front surface layer is defined as a thickness direction and the direction perpendicular to the thickness direction is defined as a width direction, The hollow structure layer further has a distribution of elastic modulus in the width direction, and the elastic modulus of a certain region is different from the elastic modulus of the surrounding region. It is preferable.
[0013] In one embodiment of the present invention, the distribution of the elastic modulus corresponds to the state of the hand of each user when the measuring device is held by the hand, The elastic modulus of the area where the user's hand rests is different from the elastic modulus of the surrounding area It is preferable.
[0014] In addition, in one embodiment of the present invention, The hollow structure layer is further composed of two or more layers with different elastic moduli, the layer on the front surface side of the hollow structure layer has a lower elastic modulus than the layer on the back surface side; When the direction from the back surface layer toward the front surface layer is defined as a thickness direction and the direction perpendicular to the thickness direction is defined as a width direction, the layer on the front surface side of the hollow structure layer has a distribution of elastic modulus when viewed in the width direction, and the elastic modulus of a certain region is different from the elastic modulus of the surrounding region; the distribution of the elastic modulus corresponds to the state of the hand of each user when the measuring device is held by the hand, When the region where the elastic modulus is changed where the user's hand touches is defined as a fulcrum region, the elastic modulus of the fulcrum region is higher than that of the surrounding region, and the elastic modulus of the fulcrum region is lower than that of the layer of the hollow structure layer on the rear surface side. It is preferable.
[0015] Alternatively, in one embodiment of the present invention, The hollow structure layer is further composed of two or more layers with different elastic moduli, the layer on the front surface side of the hollow structure layer has a lower elastic modulus than the layer on the back surface side; When the direction from the back surface layer toward the front surface layer is defined as a thickness direction and the direction perpendicular to the thickness direction is defined as a width direction, the layer on the front surface side of the hollow structure layer has a distribution of elastic modulus when viewed in the width direction, and the elastic modulus of a certain region is different from the elastic modulus of the surrounding region; the distribution of the elastic modulus corresponds to the state of the hand of each user when the measuring device is held by the hand, When the area where the user's hand contacts and where the elastic modulus is changed is defined as a fulcrum area, the elastic modulus of the fulcrum area is lower than the elastic modulus of the surrounding area. It is preferable.
[0016] In one embodiment of the present invention, A data structure including 3D-CAD data for producing the attachment cover of the measuring instrument using a 3D printer is provided. It is preferable. The data structure includes, for example, shape data of the attachment cover corresponding to each model of measuring instrument, surface distribution data of the elastic modulus that reflects the force distribution data when the user's hand holds the measuring instrument in the shape data of the attachment cover, and preferred data for the magnitude of the elastic modulus of the area that comes into contact with the hand for each user. Furthermore, the data structure may be a data structure (or program) that includes an adjustment function unit (adjustment function data or program) that causes a computer to execute a UI function that provides an input screen on which the user can input adjustment values such as the material and hardness (porosity) of the cover, a modification adjustment function that performs modification adjustment of the material and hardness (porosity) according to the input adjustment values, and a synthesis function that synthesizes the shape data of the attachment cover, the surface distribution data of the elastic modulus, and the preference data after adjustment.
[0017] In one embodiment of the present invention, The attachment cover for the measuring instrument is produced using a 3D printer. It is preferable.
[0018] The custom-made support system for attachment covers for measuring instruments of the present invention is as follows: The manufacturer's server stores the shape data of the attachment cover for each model of measuring instrument. The user terminal accesses the manufacturer's server via the Internet, In response to a request from the user terminal, the manufacturer server transmits shape data of the attachment cover requested by the user terminal to the user terminal. It is characterized by:
[0019] The custom-made support system for attachment covers for measuring instruments of the present invention is as follows: The manufacturer's server stores the shape data of the attachment cover for each model of measuring instrument. The user terminal accesses the manufacturer's server via the Internet, The manufacturer server, in response to a request from the user terminal, Generate shape data of the attachment cover for each user by combining surface distribution data of elastic modulus that reflects force distribution data when the user's hand grips the measuring device with shape data of the attachment cover requested by the user terminal; The generated shape data of the attachment cover is transmitted to the user terminal. It is characterized by:
[0020] In one embodiment of the present invention, The force distribution data when the user's hand grips the measuring device is stored as user-customized data on the manufacturer's server. It is preferable.
[0021] In addition, in one embodiment of the present invention, The user customization data includes preference data for the magnitude of the elastic modulus of the region that comes into contact with the hand for each user. It is preferable. [Brief explanation of the drawings]
[0022] [Figure 1] FIG. 10 is a diagram showing a state in which a heat insulating cover is attached to a micrometer. [Figure 2] FIG. [Figure 3] FIG. 2 is a cross-sectional view of the heat insulating cover taken along line III-III in FIG. [Figure 4] 10A and 10B are diagrams illustrating deformation of the heat insulating cover when the front surface of the heat insulating cover is pressed. [Figure 5] FIG. 1 illustrates a lattice structure. [Figure 6] 6 is a cross-sectional view of the heat insulating cover taken along line VI-VI in FIG. 1. [Figure 7] FIG. 10 is a diagram showing an example of how to hold a micrometer. [Figure 8] FIG. 10 is a diagram showing an example in which an area of the heat insulating cover that comes into contact with the hand is set as a fulcrum area. [Figure 9] FIG. 1 is a diagram illustrating an example of the configuration of a support system for customizing attachment covers. [Figure 10] FIG. 2 is a diagram showing an example of the appearance of a heat insulating cover of a caliper. [Figure 11] FIG. 2 is a diagram showing an example of a cross-sectional view of a heat insulating cover of a caliper. [Figure 12] FIG. 1 is a diagram showing an example of the appearance of a large measuring machine (for example, a three-dimensional measuring machine). [Figure 13] FIG. 2 is a diagram illustrating an example of the appearance of a controller. [Figure 14] FIG. 10 is a diagram showing an example of a cross-sectional view of an attachment cover of the controller. DETAILED DESCRIPTION OF THE INVENTION
[0023] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS An embodiment of the present invention will be illustrated and described with reference to the reference numerals attached to the various elements in the drawings. (First embodiment) As an embodiment of an attachment cover for a measuring instrument, a heat insulating cover 100 for a micrometer 10 will be described first as an example. Hereinafter, this will be simply referred to as the heat insulating cover 100.
[0024] FIG. 1 is a diagram showing a state in which a heat insulating cover 100 is attached to a micrometer 10. As shown in FIG. First, although the micrometer 10 itself is known, a brief explanation will be given. The micrometer 10 includes a U-shaped frame 11 , an anvil 12 , a spindle 13 , and an electrical component 15 .
[0025] An anvil 12 is disposed inside one end of a U-shaped frame 11. A spindle 13 is provided on the other end of the U-shaped frame 11 so as to be movable toward and away from the anvil 12. A thimble 14 is disposed on the other end of the spindle 13 on the other end of the U-shaped frame 11. When the thimble 14 is rotated with a finger, the spindle 13 rotates together with the thimble 14. The spindle 13 is adapted to move back and forth by a feed screw. Furthermore, an encoder (detection means) (not shown) is provided on the other end of the U-shaped frame 11 as a detection means for detecting the amount of rotation of the spindle 13. (The U-shaped frame 11, the anvil 12, the spindle 13, and the encoder constitute a measurement means.)
[0026] The electrical equipment section 15 is provided on the other end side of the U-shaped frame 11. The electrical equipment section 15 includes a built-in signal processing section (not shown) and a display section 16. The display unit 16 digitally displays information such as measurement data. The display unit 16 is provided on the front side of the micrometer 10 at the other end of the U-shaped frame 11.
[0027] FIG. 2 is a plan view of the heat insulating cover alone. The heat insulating cover 100 is L-shaped in a plan view, and is fitted onto the U-shaped frame 11 so as to cover the lower part of the U-shaped frame 11 except for the display unit 16 . FIG. 3 is a cross-sectional view of the heat insulating cover 100 taken along line III-III in FIG. As shown in the cross-sectional view of Figure 3, the heat insulating cover 100 is U-shaped in cross section so as to closely cover the lower surface of the U-shaped frame 11 and the front and back surfaces of the U-shaped frame 11. As shown in the cross-sectional view of FIG. 3, the thermal insulating cover 100 has multiple layers. The surface of the heat insulating cover 100 that comes into contact with the user's hand (front surface) is referred to as the front surface layer 110. The surface of the heat insulating cover 100 that comes into contact with the U-shaped frame 11 (rear surface) is referred to as a rear surface layer 120 . The layer formed between the front surface layer 110 and the back surface layer 120 is referred to as an intermediate layer 130 .
[0028] The porosity of the front surface layer 110 and the back surface layer 120 is lower than the porosity of the intermediate layer 130. Alternatively, the front surface layer 110 and the back surface layer 120 do not have voids such as those in a porous or lattice structure. Therefore, the front surface layer 110 and the back surface layer 120 are referred to as dense layers.
[0029] The front surface layer 110 is made dense because, as a part that comes into contact with the hand, a smooth feel is preferable to a rough texture, and also to prevent water and oil from penetrating into the heat-insulating cover 100. The back surface layer 120 is made dense because, as the part (layer) that comes into direct contact with the measuring device, it fits tightly to the measuring device and makes it difficult for it to come off. For example, if the back surface layer 120 has many voids, the friction between the measuring device and the heat-insulating cover 100 will be reduced. In this case, the heat-insulating cover 100 will not attach firmly to the measuring device, and some kind of additional engagement means will be required between the measuring device and the heat-insulating cover 100. Furthermore, since it is desired to make the intermediate layer 130, which will be described later, a hollow structure with many voids, the front and back surfaces are provided with a front surface layer 110 and a back surface layer 120 that have a well-defined shape (high elastic modulus and rigidity modulus), and the hollow structure is sandwiched between the front surface layer 110 and the back surface layer 120, with the intention of creating a heat insulating cover 100 that has a high void ratio overall and a stable shape.
[0030] The intermediate layer 130 is a hollow structure layer having a larger porosity than the front surface layer 110 and the back surface layer 120 . The intermediate layer 130 is further composed of two layers with different porosities. The layer of the intermediate layer 130 on the front surface side is referred to as a first intermediate layer 140 . The layer of the intermediate layer 130 on the rear surface side is referred to as a second intermediate layer 150 . In this case, the elastic modulus of the first intermediate layer 140 is smaller than the elastic modulus of the second intermediate layer 150. The reason why the elastic modulus of the first intermediate layer 140 is smaller than the elastic modulus of the second intermediate layer 150 is to allow the front surface layer 110 to deform (e.g., bend) together with the first intermediate layer 140 in accordance with the shape of the hand while providing a sense of appropriate flexibility when the user grips the micrometer 10. The reason why the elastic modulus of the second intermediate layer 150 is larger than the elastic modulus of the first intermediate layer 140 is to prevent stress when the user grips or releases the micrometer 10 from being directly transmitted to the micrometer 10, and to ensure that the relatively high elasticity (rigidity) of the second intermediate layer 150 allows the back surface layer 120 to firmly attach to the micrometer 10, preventing the heat-insulating cover 100 from falling off the micrometer 10.
[0031] When the difference in elastic modulus is realized by the difference in porosity, the above is restated as follows: the porosity of the first intermediate layer 140 is greater than the porosity of the second intermediate layer 150 .
[0032] The reason why the porosity of the first intermediate layer 140 is higher is to increase the heat insulating property on the side closer to the hand. From the perspective of heat insulation effect, it is desirable to set the porosity of both the first intermediate layer 140 and the second intermediate layer 150 to a similarly high level. However, if they are too soft, the heat-insulating cover 100 will not be able to hold the measuring device, and if the heat-insulating cover 100 deforms too much, it will be difficult to firmly hold (grip) the heat-insulating cover 100 with your hand. Therefore, the porosity of the second intermediate layer 150 is set to be somewhat low, and the porosity of the first intermediate layer 140 is set to be high enough to provide a moderate sense of flexibility when held in the hand, thereby achieving both a comfortable fit when held and thermal insulation effect. Figure 4 is a diagram illustrating the deformation of the heat-insulating cover 100 when the front surface of the heat-insulating cover 100 is pressed.
[0033] To form the hollow structure of the intermediate layer 130, a porous resin (foamable resin) may be used, or a lattice structure may be formed (manufactured) using a 3D printer. The lattice structure may be, for example, a three-dimensionally continuous unit lattice, as shown by the symbol B in FIG. 5, in which the unit lattice is illustrated in box A in FIG. 5. Resin is an example of a material that can be used to form the lattice structure, but since metal 3D printers are also known, a metal material may also be used.
[0034] When changing the porosity, for example, to increase the porosity, the lattice period may be lengthened (in other words, the length of the beams may be increased), or the thickness of the beams may be reduced.
[0035] For the same material, a change in porosity is equivalent to a change in the modulus of elasticity (rigidity). In the case of the heat insulating cover 100, it is important to consider not only ease of gripping but also heat insulation and manufacturing costs, so it makes sense to vary the elastic modulus (rigidity) by adjusting the porosity. However, for example, the porosity may remain the same and the material may be changed. In this case, it is sufficient that the elastic modulus of the first intermediate layer 140 is lower than that of the second intermediate layer 150. Furthermore, it is even better if the thermal conductivity of the first intermediate layer 140 is designed to be lower than that of the second intermediate layer 150. As for the target thermal conductivity, for example, the total thermal conductivity from the front surface layer 110 to the back surface layer 120 is preferably 0.1 [W / m·K] to 0.5 [W / m·K].
[0036] The thickness of the heat insulating cover 100 (from the front surface layer to the back surface layer) should be, for example, about 1 mm to 5 mm when no stress is applied, but if a clear deformation feel (tactile sensation) when held in the hand is desired or if increased heat insulating properties are desired, the thickness when no stress is applied may be about 10 mm to 15 mm and the thickness when stress is applied when held in the hand may be about 1 mm to 5 mm. In the drawings, the first intermediate layer 140 and the second intermediate layer 150 of the intermediate layer 130 are shown to have approximately the same thickness, but either one may be thicker. For example, since it is believed that the first intermediate layer 140 has a greater influence on the adjustment of the grip feel (ease of gripping) and heat insulating performance, for example, 50% to 70% of the intermediate layer 130 may be allocated to the first intermediate layer 140.
[0037] FIG. 6 is a cross-sectional view of the heat insulating cover 100 taken along line VI-VI in FIG. It is preferable to provide ventilation holes 170 in the heat insulating cover 100, as shown in Fig. 6. The openings of the ventilation holes 170 are preferably provided in the end face of the front end of the heat insulating cover 100. If the ventilation holes 170 are opened, for example, on the front or back of the heat insulating cover 100, there is a risk that air containing heat and moisture from the hands may flow into the ventilation holes 170, which is undesirable. Considering how the micrometer 10 is held, the front end face of the heat insulating cover 100 does not come into contact with the hands and is also away from the hands. If it is desired to further increase the number of ventilation holes 170, it is preferable to provide them in the end face of the rear end of the heat insulating cover 100.
[0038] When the hollow structure of the intermediate layer 130 is configured as a lattice structure, providing openings in the front surface layer 110 allows the interior of the intermediate layer 130 (first intermediate layer 140, second intermediate layer 150) to communicate with the outside air. In this case, the ventilation holes 170 may be holes (openings) formed in the front surface layer. When the hollow structure of the intermediate layer 130 is configured from a porous resin (expandable resin), ventilation paths are formed through the interior of the intermediate layer 130 (first intermediate layer 140, second intermediate layer 150), and these are referred to as the ventilation holes 170. (Examples of ventilation paths are shown by two-dot chain lines in Figure 6.) In the example of Figure 6, the ventilation paths are provided in a direction intersecting (e.g., perpendicular to) the thickness direction.
[0039] In the above explanation, it has been explained that the intermediate layer 130 has layers with different elastic moduli (porosity) in the thickness direction. Furthermore, it is also possible to provide a difference (distribution) in the elastic moduli in the width direction.
[0040] To create a difference in the elastic modulus, it is possible to create a difference in the elastic modulus by changing the porosity, or it is also possible to create a difference in the elastic modulus (or rigidity) by using a material that is different from the surrounding area. Here, we will use an example where the material is the same and the difference in the elastic modulus is created by changing the porosity, but this is not limiting.
[0041] It is desirable to increase the porosity of the heat insulating cover 100 overall to improve its heat insulating properties, but if it becomes too soft overall, it becomes difficult to handle, so it is difficult to strike a balance. Therefore, the elastic modulus of the fulcrum area where force is applied when the micrometer 10 is held in the hand is made different from the elastic modulus of the surrounding area. Figure 7 shows an example of how to hold the micrometer 10. For example, when holding the micrometer 10 in one hand, the micrometer 10 is held as shown in Figure 7. In this case, the upper surface of the U-shaped frame 11 is pressed with the ring finger, and the lower surface of the lower part of the back surface of the U-shaped frame 11 is placed against the palm of the hand. While holding the micrometer 10 in this position, the thimble 14 is rotated between the index finger and thumb.
[0042] While the Micrometer 10 is a highly accurate measuring instrument due to its measurement principle, it can be a little difficult to hold, as shown in Figure 7. For example, for a woman with small hands or a weak grip, it would require skilled technique to hold the Micrometer 10 firmly in one hand and accurately measure the length of one workpiece after another.
[0043] For example, as illustrated in FIG. 8 , the elastic modulus of the heat insulating cover 100 in the region that comes into contact with the hand is changed. Here, the porosity is reduced to increase the elastic modulus of the region that comes into contact with the hand. The change in elastic modulus (porosity) is limited to the first intermediate layer 140, while the second intermediate layer 150 is a layer with a uniform elastic modulus (porosity). The region that comes into contact with the hand and has a changed elastic modulus is referred to as the fulcrum region 160. By making the elastic modulus (rigidity) of the fulcrum region 160 different from that of the surrounding area, the hand can be firmly placed on the fulcrum region 160, allowing the micrometer 10 to be gripped firmly. Even though the elastic modulus of the region that comes into contact with the hand is increased, the fulcrum region 160 still sinks slightly under the force of the hand, providing a comfortable fit. The heat insulating cover 100 is also expected to make the micrometer 10 easier to grip than a bare micrometer 10.
[0044] Here, the elastic modulus (rigidity) of the fulcrum region 160 is set to be higher (lower porosity) than the elastic modulus (rigidity) of the first intermediate layer 140 other than the fulcrum region 160, and lower (higher porosity) than the elastic modulus (rigidity) of the second intermediate layer 150. This is intended to prevent the stress from affecting the second intermediate layer 150, even if the first intermediate layer 140 including the fulcrum region 160 changes due to hand force. Conversely, the elastic modulus (rigidity) of the fulcrum region 160 may be lower (higher porosity) than the elastic modulus (rigidity) of the first intermediate layer 140 other than the fulcrum region 160.
[0045] Since people have different hand sizes, even if they hold a micrometer (with a heat-resistant cover) in the same way, the area that the hand touches will differ.One way of thinking about this is that if heat-resistant covers are sold commercially as standard products (ready-made products), it is possible to design which areas have a high (low) modulus of elasticity based on the average size of users' hands and the standard way of holding them.
[0046] Alternatively, it is conceivable to custom-make the heat insulating cover 100 according to the size of each individual's hand and the way of gripping it. For example, pressure sensors (pressure sensors, strain gauges) are embedded on the surface and inside of a sample heat insulating cover 100. Then, a user is asked to actually grip the micrometer 10 with the sample heat insulating cover attached. This makes it possible to determine which area of the heat insulating cover 100 should be the fulcrum area 160 for each individual user. Furthermore, whether the area that comes into contact with the hand should be harder (higher elasticity (rigidity)) than the surrounding area, and how hard (higher elasticity (rigidity)) it should be, or whether the area that comes into contact with the hand should be softer (lower elasticity (rigidity)) than the surrounding area, and how soft (lower elasticity (rigidity)) it should be, depends on individual perception, and therefore should be adjusted according to each individual's request.
[0047] The manufacturer may manage the user's preferred fulcrum area 160 and preferred hardness on a server after obtaining consent. If possible, it would be a good idea to obtain and store user customization data that corresponds to different sizes and types (models, model numbers) of micrometers in preparation for the future.
[0048] The manufacturer may produce and sell a custom-made heat insulating cover 100 according to individual requests (hand shape, grip style, hardness preference, etc.). Alternatively, the manufacturer may provide (sell) 3D-CAD data for producing the heat insulating cover, rather than the heat insulating cover itself. FIG. 9 is a diagram illustrating the configuration of a support system for customizing attachment covers. 9, shape data of attachment covers (heat insulating covers) corresponding to each model of measuring instrument (micrometer) is stored in a manufacturer-side server 210 managed by the measuring instrument manufacturer. Furthermore, the manufacturer-side server 210 stores, as user customized data, force distribution data acquired according to differences in size and type (model, model number) of the micrometer 10 (measuring instrument) in association with the user (user identification information (user ID)). (Note that the user customized data does not have to be stored on the manufacturer's server 210, but may be stored on the user's terminal 220, or may be stored at another data management company or on a blockchain. Alternatively, the user customized data may be obtained by obtaining user measurement data in real time rather than pre-stored data.) In addition to force distribution data, the user customized data also includes preference data that records individual user preferences, such as whether the area that comes into contact with the hand should be harder (higher elasticity (rigidity)) than the surrounding area, and how hard (higher elasticity (rigidity)) it should be, or whether the area that comes into contact with the hand should be softer (lower elasticity (rigidity)) than the surrounding area, and how soft (lower elasticity (rigidity)) it should be.
[0049] The user accesses the manufacturer's server 210 from their own terminal 220 via the Internet (network communication line) and selects the shape (model number) of the heat insulating cover 100 they wish to acquire by operating the UI provided on the screen. The manufacturer's server 210 retrieves the force distribution data corresponding to the user and creates 3D-CAD data for a heat insulating cover 100 made to order for the user using user customization data that combines the shape data of the heat insulating cover 100 with preference data.
[0050] When synthesizing the pattern of the user's grip with the shape data of the heat-resistant cover, for example, in the case of a micrometer, it is decided that the thimble will be turned with the index finger and thumb, so the positions of the index finger and thumb are fixed to match the thimble, and the positions where the other fingers and the pad of the hand (palm) will touch the heat-resistant cover can be determined based on the relative positional relationship from this starting point.
[0051] In response to a request from the user terminal 220, 3D-CAD data of the heat insulating cover 100 custom-made for the user is transmitted to the user terminal 220 (also via a payment system as appropriate). The data structure including the 3D-CAD data may be provided via a communication line, or the data structure including the 3D-CAD data may be provided in a state stored on a recording medium (e.g., a non-volatile recording medium).
[0052] With 3D-CAD data, users can create the heat insulating cover 100 themselves using a 3D printer. It may take some trial and error to create a heat insulating cover 100 that suits them, adjusting the material, hardness, and other factors, as well as adding color and decoration to the surface. The manufacturer may also provide 3D-CAD data editing software and a UI (editing program) so that users can adjust the material, hardness (porosity), and other factors of the heat insulating cover 100 themselves. This makes it possible to provide a heat insulating cover 100 for a measuring instrument (micrometer) that is easy to hold and has excellent heat resistance, tailored to individual preferences.
[0053] (Variation 1) In the above description of the first embodiment, the heat insulating cover for the micrometer 10 has been taken as an example, but the present invention can also be applied to other attachment covers for measuring instruments. The caliper 20 has a main scale 21 and a slider 23, and a fixed jaw 22 at one end of the main scale 21. The slider 23 slides along the main scale 21, and one end of the slider 23 is provided with a movable jaw 24 that pairs with the fixed jaw 22 of the main scale 21. (The main scale 21, the fixed jaw 22 of the main scale 21, the slider 23, and the movable jaw 24 of the slider 23 constitute the measuring means.) The user will hold the main scale 21 of the caliper 20, but directly gripping the main scale 21 is not desirable because the heat from the user's hands will be transferred to the main scale 21. For this reason, a heat-insulating cover 100 (attachment cover) is used to cover the main scale 21. For example, FIG. 10 shows an example of the appearance of the heat-insulating cover 100 of the caliper 20. FIG. 11 shows an example of a cross-sectional view of the heat-insulating cover 100 of the caliper 20. The heat insulating cover 100 has a layered structure, and in the cross-sectional view, each layer is given the same reference numeral as in the first embodiment.
[0054] (Variation 2) FIG. 12 is a diagram showing an example of the appearance of a large measuring machine 30 (for example, a three-dimensional measuring machine). 12, a large measuring machine 30 (for example, a coordinate measuring machine) has a controller 40 that the user can hold in their hand and carry, and the user operates the large measuring machine 30 (for example, a coordinate measuring machine) while moving to a position where the workpiece and the measurement probe are easily visible, holding the portable controller 40. The portable controller 40 of the large measuring machine 30 (for example, a coordinate measuring machine) is considered to be a measuring machine that the user holds in their hand to perform measurement operations.
[0055] FIG. 13 is a diagram showing an example of the appearance of the controller 40. As shown in FIG. The controller 40 is provided with a joystick 41 and various buttons 42, as shown in FIG. 13. Recently, touch panel controllers 40 have also been available that do not have the joystick 41 or mechanical buttons 42. An attachment cover 100 may be attached to this controller 40. For example, it may be possible to manufacture attachment covers that can be attached to both sides of the controller 40. The elasticity of the attachment cover, which fits comfortably in the hand and has a distribution of elasticity that matches the user's hand, can make the controller 40 easier to hold (although heat insulation may not be necessary). FIG. 14 is a diagram showing an example cross-sectional view of the attachment cover 100 for the controller 40. As shown in FIG. 14, the attachment cover 100 has a layered structure, and the layers in the cross-sectional view are denoted by the same reference numerals as in the first embodiment.
[0056] The present invention is not limited to the above-described embodiment, and can be modified as appropriate within the scope of the invention. In the above embodiment, the intermediate layer 130 is exemplified as being made up of two layers, but the intermediate layer 130 may be made up of three or more layers.
[0057] When intermediate layer 130 has three or more layers, it can be considered that the layer of intermediate layer 130 closest to the hand (the layer closest to the front side) has a lower modulus of elasticity than the layer of intermediate layer 130 closest to the measuring device (the layer closest to the back side). (When the change in elastic modulus is realized by the difference in porosity, it may be considered that the layer of intermediate layer 130 closest to the hand (the layer closest to the front surface) has a higher porosity than the layer of intermediate layer 130 closest to the measuring device (the layer closest to the back surface). It may also be considered that the layer of intermediate layer 130 closest to the hand (the layer closest to the front surface) has a lower thermal conductivity than the layer of intermediate layer 130 closest to the measuring device (the layer closest to the back surface). This is because, as a characteristic of the attachment cover (heat-resistant cover), firstly, the layer closest to the hand is important in determining the feel and heat resistance, and secondly, the layer closest to the measuring instrument plays an important role in holding the measuring instrument. In this case, there are no special requirements for the modulus of elasticity, thermal conductivity, or porosity of the intermediate layer between the layer closest to the hand (the layer closest to the front surface) and the layer closest to the measuring instrument (the layer closest to the back surface).
[0058] Alternatively, if intermediate layer 130 is composed of three or more layers, when two layers between front layer 110 and back layer 120 are taken out, it can be considered that there is at least one pair in which the layer on the front side has a lower modulus of elasticity than the layer on the back side. (When the change in modulus of elasticity is achieved by a difference in porosity, a low modulus of elasticity means a high porosity. When the change in thermal conductivity is achieved by a difference in porosity, a low thermal conductivity means a high porosity.) It is believed that the layer of this particular pair closest to the hand determines the feel and heat insulation, and the layer of this particular pair closest to the measuring instrument plays an important role in holding the measuring instrument.
[0059] When the intermediate layer 130 is composed of three or more layers, the most preferable form is one in which, when any two layers between the front surface layer 110 and the back surface layer 120 are taken out, the layer on the front surface side has a lower elastic modulus than the layer on the back surface side, regardless of the combination (if changes in thermal conductivity and elastic modulus are achieved by differences in porosity, the porosity is higher), and so the layers are arranged in an order that is best. [Explanation of symbols]
[0060] 10 micrometers 11 U-shaped frame 12 Anvil 13 Spindle 14 Thimble 15 Electrical Equipment Department 16 Display section 20 Vernier calipers 21 main shaku 22 Fixed jaw 23 Slider 24 Movable jaw 30 Measuring Machine 40 Controller 41 Joystick 42 buttons 100 Heat-insulating cover 110 Front layer 120 Back layer 130 Middle Class 140 First middle class 150 Second middle layer 160 fulcrum area 170 Ventilation hole 210 Manufacturer's Server 220 User Terminal
Claims
1. An attachment cover for a meter that can be attached and detached to a meter that a user holds in their hand for measurement operation, wherein when a gripping portion is defined as a portion of the outer surface of the meter that a user's hand comes into contact with when the user holds the meter, the attachment cover is attached to the meter so as to cover at least the gripping portion, and has a hollow structure portion with a porous or lattice structure, The side of the attachment cover that comes into contact with the user's hand is the front side, and the side of the attachment cover that comes into contact with the measuring instrument is the back side; When a layer constituting the front surface side is a front surface layer, a layer constituting the back surface side is a back surface layer, and a layer constituting an area between the front surface layer and the back surface layer is an intermediate layer, the front surface layer and the back surface layer are dense layers with low porosity, the intermediate layer is a hollow structure layer having a porosity greater than that of the front surface layer and the back surface layer, The hollow structure layer is further composed of two or more layers having different elastic moduli, and the layer on the front surface side of the hollow structure layer has a lower elastic modulus than the layer on the back surface side. An attachment cover for a measuring instrument, characterized by:
2. An attachment cover for a meter that can be attached and detached to a meter that a user holds in their hand for measurement operation, wherein when a gripping portion is defined as a portion of the outer surface of the meter that a user's hand comes into contact with when the user holds the meter, the attachment cover is attached to the meter so as to cover at least the gripping portion, and has a hollow structure portion with a porous or lattice structure, The side of the attachment cover that comes into contact with the user's hand is the front side, and the side of the attachment cover that comes into contact with the measuring instrument is the back side; When a layer constituting the front surface side is a front surface layer, a layer constituting the back surface side is a back surface layer, and a layer constituting an area between the front surface layer and the back surface layer is an intermediate layer, the front surface layer and the back surface layer are dense layers with low porosity, the intermediate layer is a hollow structure layer having a porosity greater than that of the front surface layer and the back surface layer, The hollow structure layer is further composed of two or more layers with different thermal conductivities, The layer on the front surface side of the hollow structure layer has a lower thermal conductivity than the layer on the back surface side. An attachment cover for a measuring instrument, characterized by:
3. An attachment cover for a meter that can be attached and detached to a meter that a user holds in their hand for measurement operation, wherein when a gripping portion is defined as a portion of the outer surface of the meter that a user's hand comes into contact with when the user holds the meter, the attachment cover is attached to the meter so as to cover at least the gripping portion, and has a hollow structure portion with a porous or lattice structure, The side of the attachment cover that comes into contact with the user's hand is the front side, and the side of the attachment cover that comes into contact with the measuring instrument is the back side; When a layer constituting the front surface side is a front surface layer, a layer constituting the back surface side is a back surface layer, and a layer constituting an area between the front surface layer and the back surface layer is an intermediate layer, the front surface layer and the back surface layer are dense layers with low porosity, the intermediate layer is a hollow structure layer having a porosity greater than that of the front surface layer and the back surface layer, The hollow structure layer is further composed of two or more layers with different porosities, The layer on the front surface side of the hollow structure layer has a higher porosity than the layer on the back surface side. An attachment cover for a measuring instrument, characterized by:
4. An attachment cover for a meter that can be attached and detached to a meter that a user holds in their hand for measurement operation, wherein when a gripping portion is defined as a portion of the outer surface of the meter that a user's hand comes into contact with when the user holds the meter, the attachment cover is attached to the meter so as to cover at least the gripping portion, and has a hollow structure portion with a porous or lattice structure, The side of the attachment cover that comes into contact with the user's hand is the front side, and the side of the attachment cover that comes into contact with the measuring instrument is the back side; When a layer constituting the front surface side is a front surface layer, a layer constituting the back surface side is a back surface layer, and a layer constituting an area between the front surface layer and the back surface layer is an intermediate layer, the front surface layer and the back surface layer are dense layers with low porosity, the intermediate layer is a hollow structure layer having a porosity greater than that of the front surface layer and the back surface layer, When the direction from the back surface layer toward the front surface layer is defined as a thickness direction and the direction perpendicular to the thickness direction is defined as a width direction, The hollow structure layer further has a distribution of elastic modulus in the width direction, and the elastic modulus of a certain region is different from the elastic modulus of the surrounding region. An attachment cover for a measuring instrument, characterized by:
5. The attachment cover for a measuring instrument according to claim 4, the distribution of the elastic modulus corresponds to the state of the hand of each user when the measuring device is held by the hand, The elastic modulus of the area where the user's hand rests is different from the elastic modulus of the surrounding area An attachment cover for a measuring instrument, characterized by:
6. The attachment cover for a measuring instrument according to claim 5, When the region where the elastic modulus is changed where the user's hand touches is defined as a fulcrum region, the elastic modulus of the fulcrum region is higher than that of the surrounding region, and the elastic modulus of the fulcrum region is lower than that of the layer of the hollow structure layer located on the rear surface side. An attachment cover for a measuring instrument, characterized by:
7. The attachment cover for a measuring instrument according to claim 5, When the area where the user's hand contacts and where the elastic modulus is changed is defined as a fulcrum area, the elastic modulus of the fulcrum area is lower than the elastic modulus of the surrounding area. An attachment cover for a measuring instrument, characterized by:
8. The attachment cover for a measuring instrument according to any one of claims 1 to 7, The intermediate layer communicates with the outside through an opening provided in the front surface layer. An attachment cover for a measuring instrument, characterized by:
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