The present invention especially relates to the technical field in which the electromagnetic wave output can be completely cut off when a thief breaks the electronic seal.
U.S. Pat. No. 9,508,271 “Electronic bolt seal” patent is for better receiving distance, which is simultaneously configuring with the Near-Field Antenna (NFA) and the Far-Field Antenna (FFA) as shown in
And, a U-shaped near-field antenna 95 is set between the lower contact point 92 and the RFID chip 93. The RFID chip 93 is bridged to the feeding portion of the near-field antenna 95 for normally closing the near-field antenna 95 to maintain switching on. When the upper contact point 91 is electrically connected to the conductor and the lower contact point 92 is electrically connected to the internal antenna in the bolt seat, the operation of the far-field antenna circuit loop can be constructed.
In this patent case, after the thief grinds the top end of the plug bolt, the circuit board 90 will cut off the said far-field antenna circuit loop. However, the near-field antenna circuit loop can still continuously emit electromagnetic waves, which will cause the identification hosts of the customs to misjudge.
The main content of the present invention is to provide an electronic seal that overcomes the defects of U.S. Pat. No. 9,508,271 patent.
The following descriptions are exemplary embodiments only, and are not intended to limit the scope, applicability or configuration of the invention in any way. Rather, the following detailed description provides a convenient illustration for implementing exemplary embodiments of the invention. Various changes to the described embodiments may be made in the function and arrangement of the elements described without departing from the scope of the invention as set forth in the appended claims.
The foregoing and other aspects, features, and utilities of the present invention will be best understood from the following detailed description of the preferred embodiments when read in conjunction with the accompanying drawings.
Please refer
Please refer
The conductor 10 has a rod-body 11, a hat-head 12 radially outwardly extending from the top end of the rod-body 11, an axially penetrated accommodation-hole 13, and a jacket-ring 14 abutting the bottom end of the hat-head 12; wherein the hat-head 12 has a diameter sufficient to abut against the door-bolt C, and the top edge of the accommodation-hole 13 has head-cave 13A with a larger diameter, and the top edge of the head-cave 13A has a cover-cave 13B with a more larger diameter; wherein the bottom edge of the accommodation-hole 13 is set with a sink-cave 13C having a larger inner diameter; wherein the cover-cave 13B is set for being closed by a conductive top-cover 15; wherein the rod-body 11 is recessedly set with a first stuck-buckle 16 at the outer peripheral ring of the lower portion, and the outer periphery of the upper portion of the conductor 10 is set with an insulating sleeve 17 to cover the jacket-ring 14 and the top-cover 15.
The circuit board 20 is suspended from the accommodation-hole 13 through the upper pre-pressing portion 30 and has a first surface 21 and a second surface 22 opposite to each other; and is further set with a first hole 231, a second hole 232, and a plurality of third holes 233 to penetrate through the first surface 21 and the second surface 22; wherein the upper end of the circuit board 20 is further set with an upper contact point 24 and the bottom end is set with a lower contact point 25, and a RFID chip 26 is further installed on the first surface 21 of the circuit board 20; wherein the RFID chip 26 has a first pin 261 that can be positioned on the first hole 231 and a second pin 262 that is positioned on the second hole 232. The first pin 261 and the second pin 262 of the RFID chip 26 are normally maintaining open contact point (normally Open); wherein the first surface 21 bridges a first connecting wire 271 between the first pin 261 and the upper contact point 23, and the second surface 22 bridges a second connecting wire 272 between the lower contact point 25 and the second pin 262; wherein the RFID chip 26 is crossly connected to the feeding portion of the first connecting wire 271 and the second connecting wire 272, which the first connecting wire 271 and the second connecting wire 272 are not electrically connected to each other. The upper pre-pressing portion 30 is composed of an insulating plate 31 set with a connecting pillar 311 for mounting the third hole 233 of the circuit board 20, and the insulating plate 31 is flatly attached to the second surface 22 of the circuit board 20; then, the inside and outside of the second connecting wire 272 are insulated, so that the second connecting wire 272 will not short-circuit with the conductor 10; further, the insulating plate 31 is set with a first head-cave 13A that can be suspended from the head hole 13A and a second buckle-portion 33 that can enter and exit the sink-cave 13C.
The first buckle-piece 32 has a fork-shaped elastic pieces 321, 322, 323 extend downwardly to abut against the bottom end of the head-cave 13A and drive the upper contact point 24 to abut against the bottom surface of the top-cover 15; and the conductor 10 and the RFID chip 26 constitute a first far-field antenna circuit loop that cannot output power; at the same time, the lower contact point 25 is in a position protruding downwardly from the sink-cave 13C; please corporately refer
The bolt seat B is engaged by the first shell-body 41 and the second shell-body 41 and then placed in a outer-shell 43, and closed by a bottom-cover 44 to close the bottom end of the outer-shell 43 to compose; wherein the bolt seat B is set with an inserting-hole 45 for the lower portion of the conductor 10 to insert at the upper portion, and an elastic device 50 and an internal antenna 60 are set inside the bolt seat B; wherein the elastic device 50 is composed of a first unit 51 and a second unit 52; wherein the first unit 51 comprises a stepping-hole 511, a sliding-block 512 and a spring 513, which the stepping-hole 511 is coaxially communicated directly below the inserting-hole 45; wherein the sliding-block 512 can slide along the top dead point to the bottom dead point of the stepping-hole 511, and the spring 513 is mounted between the bottom end of the sliding-block 512 and the bottom end of the stepping-hole 511 to push the sliding-block 512 to position at the top dead point; wherein the internal antenna 60 is coupled to the top and outer periphery of the sliding-block 512; wherein the second unit 52 is one-body integrally formed with a spring-piece 521 on the first shell-body 41, which the spring-piece 521 is obliquely disposed between the upper position of the sliding-block 512 and the lower position of the inserting-hole 45 and penetrated with a guiding-hole 522; when the lower portion of the conductor 10 is inserted into the inserting-hole 45, the lower contact point 25 of the plug bolt A corresponding to the guiding-hole 522 of the conductor 10 can pass through, and further control the guiding surface 331 of the second buckle-portion 33 cannot pass through the guiding-hole 522, so that the spring-piece 521 is deformable to provide a negative pre-pressure to the plug bolt A.
The bolt seat B is further set with a second stuck-buckle 70 which is radially expanded outside the inserting-hole 45 to set with a ring-groove 71, and the ring-groove 71 is installed with a buckle-ring 72; wherein the lower contact point 25 is pass through the guiding-hole 522 to force the internal antenna 60 and the sliding-block 512 to downwardly move a predetermined stroke when the bottom end of the plug bolt A is downwardly inserted into the cargo bolt-hole C1 and the inserting-hole 45 from the top to the bottom; then, the first stuck-buckle 16 is positioned at the second stuck-buckle 70, so that the electronic seal can be operated to lock the door-bolt C of the cargo container; at this time, the first unit 51 can provide a positive pre-pressure to the internal antenna 60 to electrically connect with the lower contact 25.
The RFID chip 26 and the internal antenna 60 can form a second far-field antenna circuit loop, which can cause the first and second far-field antenna circuit loops to be synchronously activated to transmit and receive the electromagnetic waves to provide automated management of the customs identification hosts. In addition, the foregoing second unit 52 can apply a negative pre-pressure to the plug bolt A before the second stuck-buckle 70 is positioned at the first stuck-buckle 16.
As shown in
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