MEASURING INSTRUMENT
20170356731 · 2017-12-14
Assignee
Inventors
- Koji MATSUMOTO (Kure-shi, JP)
- Yuji FUJIKAWA (Kure-shi, JP)
- Shuji HAYASHIDA (Kawasaki-shi, JP)
- Nobuyuki HAYASHI (Kawasaki-shi, JP)
Cpc classification
G01B2210/58
PHYSICS
G01B3/38
PHYSICS
International classification
G01B3/00
PHYSICS
Abstract
A measuring instrument includes a measuring unit, an electric component unit and a pin jack. The electric component unit includes a signal processing part. The signal processing part is configured to calculate a measurement data based on a detection signal obtained by the measuring unit. The pin jack is provided in the electric component unit.
Claims
1. A measuring instrument, comprising: a measuring unit; an electric component unit that includes a signal processing part for calculating a measurement data based on a detection signal obtained by the measuring unit; and a pin jack that is provided in the electric component unit.
2. The measuring instrument according to claim 1, wherein two or more pin jacks are provided.
3. The measuring instrument according to claim 2, wherein one of the pin jacks is provided on one side surface of the electric component unit and the other of the pin jacks is provided in another side surface of the electric component unit.
4. The measuring instrument according to claim 2, wherein a direction of an axis of the one pin jack and a direction of an axis of the other pin jack are different from each other by 90°.
5. The measuring instrument according to claim 1, wherein the measuring instrument includes a digital micrometer, a digital vernier calipers, or a digital indicator.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DESCRIPTION OF EMBODIMENTS
[0034] Exemplary Embodiments of the present invention will be illustrated and also described with reference to reference numerals attached to elements in the drawings.
First Embodiment
[0035] The first embodiment of the present invention will be described.
[0036] The present invention is configured such that when a connection port for connecting an external device is provided in a small measuring instrument, the connection port is unified into a multi-pole pin jack type.
[0037]
[0038] The micrometer 100 includes a U-shaped frame 110, an anvil 120, a spindle 130 and an electric component unit 140.
[0039] The anvil 120 is arranged in one end of the U-shaped frame 110, and the spindle 130 is arranged on the other end of the U-shaped frame 110 so that the spindle 130 can move back and forth against the anvil 120. When a thimble 131 is rotated with fingers, the spindle 130 is rotated together.
[0040] The spindle 130 is configured to be moved back and forth by a feed screw. Also, an encoder (rotary encoder) as a means for detecting an amount of rotation of the spindle 130 is provided on the other end of the U-shaped frame 110.
[0041] Herein, a measuring means for the micrometer is constituted of the U-shaped frame 110, the anvil 120, the spindle 130 and the encoder (detecting means).
[0042] The electric component unit 140 is provided on the other end of the U-shaped frame 110.
[0043] The electric component unit 140 has an electric component housing part 141, a signal processing part 144, a digital display part 145, and a pin jack 150 as a connector connection port.
[0044] The electric component housing part 141 is constituted of a receiving portion 142 formed by partially recessing the U-shaped frame 110 itself in the other end-side region of the U-shaped frame 110, and a lid portion 143 for closing an opening of the receiving portion 142.
[0045] Although in the figures, the opening is shown closed by the lid portion 143 and thus the recessed portion inside the receiving portion 142 is not shown, an outer surface of the receiving portion 142 is the same as an outer surface of the U-shaped frame 110. For example, it is shown in an upper surface portion of the micrometer in
[0046] Hereinafter, in
[0047] The signal processing part 144 is received in the receiving portion.
[0048] The signal processing part 144 has a variety of signal processing circuits, including, for example, a calculation portion for calculating a measurement data from a detection signal of the encoder (rotary encoder).
[0049] The digital display part 145 is configured to digitally display the measurement data. The digital display part 145 is provided on the lid portion 143.
[0050] The connector connection port is the pin jack 150.
[0051] As in
[0052] The pin jack 150 is known per se, but is simply illustrated in
[0053] The pin jack 150 is a circular hole in external appearance and has therein a plurality of electric contact portions 151 and an optical signal transmission/reception portion 155.
[0054] Herein, the pin jack 150 has three electric contact portions 151 and one optical signal transmission/reception portion 155 arranged on the innermost side thereof. However, the electric contact portions 151 and the optical signal transmission/reception portion 155 may be provided in larger numbers. The electric contact portions 151 and the optical signal transmission/reception portion 155 are connected to the signal processing part 144. An electric signal or optical signal can be communicated between the signal processing part 144 and the external device via the pin jack 150.
[0055] In
[0056] The wireless communication device 210 has a communication module portion 220 and a pin plug 230 as a connector.
[0057] The communication module portion 220 has an antenna and a transmission/reception circuit and is received in a case body 221.
[0058] Herein, the case body 221 has a rectangular shape, but instead may have a cylindrical shape or the like.
[0059] The pin plug 230 is arranged to protrude from a side surface of the case body 221.
[0060] Herein, the pin plug 230 protrudes from one corner of the rectangular case body 221.
[0061] The pin plug 230 is a pin-shaped (cylindrical shape) electrode and is divided into multiple poles (three, four or more poles) by an insulating material 231.
[0062] The electrode of the pin plug 230, which is divided into multi poles, is constituted of a positive power source electrode, a GND electrode, a signal electrode and the like. Also, as illustrated in
[0063] Meanwhile, although the pin plug 230 configured to transmit both of an electrical signal and an optical signal is illustrated herein, the optical fiber 232 is unnecessary if it is desired to transmit only the electric signal. Also, if it is desired to transmit only an electric power, only two poles for the positive power source electrode and the GND electrode may be provided. The number of poles of the pin plug 230 may be appropriately designed depending on the type of the external device.
[0064] As shown in
[0065] Benefits of unifying the connector into a multi-pole pin jack type will be described.
[0066] If the connection port is configured as the pin jack 150, a size of the hole of the pin jack 150 itself can be set to be small, although a depth thereof is required to some extent. Therefore, the pin jack 150 can be provided in all types of small measuring instruments. As a result, it is also possible to unify connectors of all small measuring instruments into the pin jack 150. Then, a user is unnecessary to prepare a plurality of connectors or cables for each of types of small measuring instruments and can commonly use the same external device for a plurality of types.
[0067] Since the pin jack 150 and the pin plug 230 have a circular shape, the pin plug 230 may be rotated while being inserted in the pin jack 150.
[0068] For example, if the wireless communication device 210 is inserted into the micrometer 100 as in
[0069] When the wireless communication device 210 is rotated about an axis of the pin plug 230 as a rotation center by 180°, as illustrated in
[0070] A posture of grasping the micrometer 100 is changed depending on an object to be measured or a site to be measured, but it is convenient that the wireless communication device 210 can be rotated not to become an obstacle depending on a posture of the micrometer 100.
[0071] Although the case where the pin plug 230 is integrated with the wireless communication device 210 is illustrated in
[0072] For example, in
[0073] By skillfully rotating the pin plug 230, the cable 261 can be arranged to protrude on the rear side of the micrometer 100 (see a solid line in
[0074] By the way, if instead of the pin jack type, for example, a USB connector is employed, it is impossible to freely rotate the connector itself.
[0075] In this case, a movable part, such as a hinge or a coupler, has to be incorporated between the connector and the module portion, but it is troublesome to provide such a movable part while maintaining a signal transmission function.
[0076] On the other hand, if a relatively soft cable 261 is employed, the cable might hardly become an obstacle, but a possibility that the cable is easily broken is correspondingly increased.
[0077] Since an installation space for the pin jack 150 is small, a degree of freedom of a position at which the pin jack 150 is provided is high, for example, as illustrated in
[0078] In
[0079] Further, as illustrated in
[0080] For example,
[0081] The lighting device 250 has a pin plug 230, a rod 251 and a light emitting diode 252.
[0082] A base end of the rod 251 is connected to the pin plug 230 and the light emitting diode 252 is arranged on a distal end of the rod 251.
[0083] Herein, the rod 251 and the pin plug 230 are provided to be parallel to each other, so that when the pin plug 230 is inserted into the second pin jack 160, the distal end of the rod 251 is positioned in the vicinity of the digital display part 145.
[0084] By the way, even if the lighting device 250 is inserted into the first pin jack 150, the distal end of the rod 251 is positioned in the vicinity of the digital display part 145. Therefore, the lighting device 250 may be inserted into either pin jack 150, 160.
[0085] In this way, by providing a plurality of pin jacks, 150, 160 in the micrometer 100, it possible to retrofit a plurality of functions to the micrometer 100.
[0086] When two pin jacks 150, 160 are provided, the two pin jacks may be provided side-by-side. It goes without saying that as the number of pin jacks is increased, the number of external devices to be attached thereto is increased.
[0087] Alternatively, when two pin jacks 150, 160 are provided, it can be said that it is preferable to separate the two pin jacks from each other, rather than side-by-side.
[0088] For example, if the first pin jack 150 is provided in the upper surface of the electric component housing part 141, it is preferable that the second pin jack 160 is provided, for example, in a right or left side surface or a lower surface of the electric component housing part 141, other than the upper surface of the electric component housing part 141.
[0089] Further, it is preferable that holes of the pin jacks are oriented in different directions.
[0090] In
[0091] Meanwhile, the present invention is not limited to the foregoing embodiments, but can be appropriately modified within the scope without departing from the spirit of the invention.
[0092] Although in the foregoing description, the pin jacks 150, 160 are provided in the micrometer 100, the small measuring instrument may be a digital vernier calipers, a digital indicator (dial gauge) or the like.
[0093] In
[0094] In