A frequency synthesis transceiver component
By designing a multi-layer conical ring and card block structure in the frequency synthesizer transceiver component to stabilize the power connection, the problem of insufficient power supply stability of the frequency synthesizer in a vibration environment is solved, ensuring the stability and performance of signal processing.
Patent Information
- Application Number
- CN202311170965.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-12
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2043-09-12
AI Technical Summary
The working environment of the frequency synthesizer is complex, often accompanied by vibration or various periodic movements of the radar, which may cause the power supply connection to become loose, affecting the stability of the power supply and, in turn, the stability of signal processing.
A frequency synthesizer transceiver assembly is designed, which includes a receiving module, a transceiver module and a power module. By setting a multi-layer conical ring and a card block structure between the outer tube of the interface and the wiring hole, the stability of the power connection is ensured. Two power supplies are connected in parallel and then connected to the voltage regulator respectively to provide high-quality power supply voltage for the transceiver module.
It effectively prevents the power supply connection from loosening, ensures the stability and performance of the signal processing of the frequency synthesizer components in a vibration environment, and avoids the impact of insufficient power supply stability on signal processing.
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Figure CN117420508B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of radar technology, and in particular to a frequency synthesis transceiver component. Background Art
[0002] Frequency synthesizers, also known as frequency synthesizers or frequency sources, primarily generate various frequency signals required by electronic systems. Examples include single-frequency continuous waves, frequency-hopping signals, stepped frequency signals, linear frequency modulation (LFM), nonlinear frequency modulation (NFM), and IQ modulation. Frequency synthesizers typically select a highly stable oscillator based on the overall system requirements. Using this oscillator as a reference, they generate the various frequency signals required by the system through methods such as frequency division, multiplication, mixing, and power amplification. Technologies typically employed include PLLs, DDS, comb spectrum generation, phase-locked dielectric oscillators, switching filters, and low-noise amplifiers.
[0003] Currently, the Chinese utility model application number 201922178468.0 discloses a high-precision radar frequency synthesizer. This high-precision radar frequency synthesizer can achieve the purpose of good heat dissipation effect, solving the problem of poor heat dissipation effect of general high-precision radar frequency synthesizers. It enables the frequency synthesizer to promptly dissipate the heat generated by the operation of the frequency synthesizer, thereby avoiding the phenomenon of burning out of the internal parts of the frequency synthesizer, thereby increasing the service life of the frequency synthesizer. Due to the complex working environment of the frequency synthesizer, which is often accompanied by vibration or various actions performed periodically by the radar, it is easy to cause the power supply connection of the frequency synthesizer to loosen, affecting the stability of the power supply. The stability of the power supply can also affect the frequency synthesizer's signal processing. Summary of the Invention
[0004] The technical problem solved by the present invention is: due to the complex working environment of the frequency synthesizer, which is often accompanied by vibration or various periodic actions of the radar, it is easy to cause the power supply connection of the frequency synthesizer to loosen, affecting the stability of the power supply, and the stability of the power supply will also affect the frequency synthesizer's processing of signals.
[0005] In order to solve the above technical problems, the present invention provides the following technical solutions: a frequency synthesizer transceiver assembly, comprising a accommodating module, a transceiver module and a power supply module, wherein the accommodating module comprises a accommodating shell and a cover plate, and the top of the accommodating shell is fixedly connected to the cover plate; the transceiver module is arranged inside the accommodating shell, and the transceiver module comprises a sampling clock signal generating unit, a crystal oscillator clock signal generating unit, a three-channel receiving unit, an S-band transmitting signal generating unit and an X-band local oscillator signal generating unit, wherein the crystal oscillator clock signal generating unit is used to generate a crystal oscillator signal and perform power division on the crystal oscillator signal to generate a multi-channel The fully coherent signal is used to provide a reference clock signal to the sampling clock generation unit, the three-channel receiving unit, the S-band transmission signal generation unit and the X-band local oscillator signal generation unit; the power supply module includes an interface outer tube, a mounting base, a first voltage stabilizer, a second voltage stabilizer and an external power line, the mounting base is fixedly connected to the accommodating shell, a wiring hole is opened on the mounting base, the outer wall of the interface outer tube is slidably connected to the inner wall of the wiring hole, the inner wall of the interface outer tube is fixedly connected to the external power line, two power supplies are led out from the wiring hole, the two power supplies are connected in parallel, and the two power supplies are respectively electrically connected to the first voltage stabilizer and the second voltage stabilizer.
[0006] As a preferred solution of the frequency synthesis transceiver component described in the present invention, the first power supply is stabilized by the first voltage regulator to a +V continuous wave power supply, and the continuous wave power supply is supplied to the crystal oscillator clock generating unit, the sampling clock signal generating unit and the X-band local oscillator signal generating unit; the second power supply is stabilized by the second voltage regulator to +V as a switch-controlled working power supply to the S-band transmission signal generating unit and the three-channel receiving unit.
[0007] As a preferred solution of the frequency synthesis transceiver assembly described in the present invention, wherein: the inner wall of the mounting seat is provided with an accommodating cavity, the inner wall of the accommodating cavity is slidably connected to the movable seat, one end of the first telescopic rod is fixedly connected to the inner wall of the movable seat, a first spring is sleeved on the first telescopic rod, the other end of the first telescopic rod is fixedly connected to the first clamping block, the first clamping block is slidably connected to the inner wall of the movable seat, a first inclined surface is provided on the top of the first clamping block, an annular groove is provided on the outer wall of the outer tube of the interface, the outer wall of the annular groove is fixedly connected to the first conical ring, the second conical ring, the fixed ring and the third conical ring in sequence, and the second conical ring and the third conical ring are respectively arranged on the fixed ring.
[0008] As a preferred solution of the frequency synthesizer transceiver assembly described in the present invention, wherein: a first sliding groove is opened on the inner wall of the accommodating cavity, the inner wall of the first sliding groove is slidably connected to the first slider, and the first slider is fixedly connected to the outer wall of the movable seat.
[0009] As a preferred solution of the frequency synthesizer transceiver assembly described in the present invention, wherein: the inner wall of the movable seat is provided with a second sliding groove, the inner wall of the second sliding groove is slidably connected to the second slider, and the second slider is fixedly connected to the first clamping block.
[0010] As a preferred solution of the frequency synthesizer transceiver assembly described in the present invention, wherein: a fixed seat is provided on the inner wall of the accommodating cavity, the fixed seat is fixedly connected to one end of the second telescopic rod, a second spring is sleeved on the second telescopic rod, the other end of the second telescopic rod is fixedly connected to the second clamping block, the second clamping block is slidably connected to the inner wall of the fixed seat, and a second inclined surface and a groove are provided on the second clamping block.
[0011] As a preferred solution of the frequency synthesizer transceiver assembly of the present invention, a sealing ring is provided on the inner wall of the wiring hole, and the inner wall of the sealing ring is slidably connected to the outer wall of the outer tube of the interface.
[0012] As a preferred solution of the frequency synthesis transceiver assembly described in the present invention, wherein: the first fixed cylinder is fixedly connected to the accommodating cavity, the inner end wall of the first fixed cylinder is fixedly connected to one end of the third spring, the other end of the third spring is fixedly connected to the movable plate, the movable plate is slidably connected to the inner wall of the first fixed cylinder, the movable plate is fixedly connected to the movable rod, the movable rod is slidably connected to the first fixed cylinder, a third inclined surface is provided on the movable rod, a slot is provided on the fixed ring, and the inner wall of the slot is slidably connected to the movable rod.
[0013] As a preferred solution of the frequency synthesizer transceiver assembly described in the present invention, the movable seat is fixedly connected to one end of the third telescopic rod, and the other end of the third telescopic rod is fixedly connected to the accommodating cavity.
[0014] As a preferred solution of the frequency synthesis transceiver assembly described in the present invention, it further includes a control unit, the control unit includes a second fixed cylinder, a movable cylinder, a fourth spring, a first connecting tube and a second connecting tube, the mounting seat is provided with a mounting hole, the inner wall of the mounting hole is fixedly connected to the second fixed cylinder, the outer wall of the second fixed cylinder is slidably connected to the inner wall of the movable cylinder, the outer wall of the movable cylinder is slidably connected to the inner wall of the mounting hole, the inner end wall of the movable cylinder is fixedly connected to one end of the fourth spring, the other end of the fourth spring is fixedly connected to the inner wall of the second fixed cylinder, the second fixed cylinder is fixedly connected to the first connecting tube and the second connecting tube, the other end of the first connecting tube is fixedly connected to the third telescopic rod, and the other end of the second connecting tube is fixedly connected to the first fixed cylinder.
[0015] The beneficial effects of the present invention are as follows: after the outer tube of the interface is inserted into the wiring hole, it is fixed to prevent the wiring from becoming loose due to vibration or various periodic actions performed by the radar. The external power line contacts the wires inside the wiring hole, and the wires lead out two power supplies. The two power supplies are connected in parallel, and the two power supplies are electrically connected to the first voltage stabilizer and the second voltage stabilizer respectively. The first voltage stabilizer and the second voltage stabilizer are conducive to providing the high-quality power supply voltage required for the work of the transceiver module, avoiding the influence of the frequency synthesizer on the signal processing due to the insufficient stability of the power supply itself, and optimizing the performance of signal processing. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 Schematic diagram of the overall structure of the embodiment of the present disclosure.
[0017] Figure 2 Schematic diagram of the mounting base structure in an embodiment of the present disclosure.
[0018] Figure 3 Schematic diagram of the structure of the transceiver module in the embodiment of the present disclosure.
[0019] Figure 4 Schematic diagram of the mounting base and interface outer tube structure in the embodiment of the present disclosure.
[0020] Figure 5 Schematic cross-sectional view of the mounting base in the embodiment of the present disclosure.
[0021] Figure 6 Schematic diagram of the structure of the first card block and the second card block in the embodiment of the present disclosure.
[0022] Figure 7 2 is a cross-sectional view of the first fixing cylinder in the embodiment of the present disclosure.
[0023] Figure 8 2 is a cross-sectional view of a control unit in an embodiment of the present disclosure.
[0024] Reference numerals: accommodating module 1, accommodating shell 11, cover plate 12, transceiver module 2, sampling clock signal generating unit 21, crystal oscillator clock signal generating unit 22, three-channel receiving unit 23, S-band transmission signal generating unit 24, X-band local oscillator signal generating unit 25, power module 3, interface outer tube 31, annular groove 311, first conical ring 312, second conical ring 313, fixed ring 314, slot 3141, third conical ring 315, mounting seat 32, sealing ring 3201, accommodating cavity 321, second slide groove 3221, second slider 3222, first slide groove 3211, first slider 3212, movable seat 32 2, first telescopic rod 323, first spring 3231, first blocking block 324, first inclined surface 3241, fixing seat 325, second telescopic rod 3251, second blocking block 3252, second inclined surface 3253, groove 3254, second spring 3255, first fixed cylinder 326, third spring 3260, movable plate 3261, movable rod 3262, third inclined surface 3263, third telescopic rod 327, first voltage stabilizer 33, second voltage stabilizer 34, control unit 35, second fixed cylinder 351, movable cylinder 352, fourth spring 353, first connecting tube 354, second connecting tube 355, external power cord 36. Implementation Method
[0025] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific implementation methods of the present invention are described in detail below in conjunction with the drawings. It is obvious that the described embodiments are only part of the embodiments of the present invention, but not all of the embodiments. Example
[0026] Reference Figures 1 to 3 , as an embodiment of the present invention, provides a frequency synthesis transceiver assembly, including a containing module 1, a transceiver module 2 and a power module 3. The containing module 1 includes a containing shell 11 and a cover plate 12, and the top of the containing shell 11 is fixedly connected to the cover plate 12; the transceiver module 2 is arranged inside the containing shell 11, and the transceiver module 2 includes a sampling clock signal generating unit 21, a crystal oscillator clock signal generating unit 22, a three-channel receiving unit 23, an S-band transmission signal generating unit 24 and an X-band local oscillator signal generating unit 25. The crystal oscillator clock signal generating unit 22 is used to generate a crystal oscillator signal and perform power division on the crystal oscillator signal to generate multiple fully coherent signals for providing reference clock signals to the sampling clock generating unit 21, the three-channel receiving unit 23, the S-band transmission signal generating unit 24 and the X-band local oscillator signal generating unit 25.
[0027] In this embodiment, the interior of the containment shell 11 is preferably used to accommodate the sampling clock signal generating unit 21, the crystal oscillator clock signal generating unit 22, the three-channel receiving unit 23, the S-band transmission signal generating unit 24 and the X-band local oscillator signal generating unit 25. After the cover 12 is covered on the top of the containment shell 11, the packaging is completed.
[0028] The sampling clock signal generation unit 21 includes a first phase-locked source, a first filter, and a first power regulator. The first phase-locked source generates a clock signal, which is filtered by the first filter and then power-regulated by the first power regulator before outputting the sampling clock signal. The transceiver module 2 provides a fully coherent transmit signal, a local oscillator signal, a reference clock signal, and a sampling clock signal. The transmit signal undergoes waveform control and pulse modulation according to the system's instructions.
[0029] The power module 3 includes an interface outer tube 31, a mounting base 32, a first voltage stabilizer 33, a second voltage stabilizer 34 and an external power line 36. The mounting base 32 is fixedly connected to the containing shell 11. A wiring hole 320 is provided on the mounting base 32. The outer wall of the interface outer tube 31 is slidably connected to the inner wall of the wiring hole 320. The inner wall of the interface outer tube 31 is fixedly connected to the external power line 36. Two power supplies are led out from the inside of the wiring hole 320. The two power supplies are connected in parallel. The two power supplies are electrically connected to the first voltage stabilizer 33 and the second voltage stabilizer 34 respectively.
[0030] In this embodiment, preferably, after the interface outer tube 31 is inserted into the wiring hole 320, it is fixed to prevent the wiring from becoming loose due to vibration or various actions performed periodically by the radar. The external power line 36 is in contact with the wires inside the wiring hole 320, and the wires lead out two power supplies, which are connected in parallel. The two power supplies are electrically connected to the first voltage stabilizer 33 and the second voltage stabilizer 34 respectively. The first voltage stabilizer 33 and the second voltage stabilizer 34 are conducive to providing the transceiver module 2 with the high-quality power supply voltage required for operation, avoiding the insufficient stability of the power supply itself causing the frequency synthesizer to affect the signal processing, and optimizing the signal processing performance. Example
[0031] Reference Figures 1 to 8 This embodiment is based on the previous embodiment, and differs from the previous embodiment in that.
[0032] The first power supply is stabilized by the first voltage regulator 33 to a +5V continuous wave power supply, and the continuous wave power supply is supplied to the crystal oscillator clock generating unit 22, the sampling clock signal generating unit 21 and the X-band local oscillator signal generating unit 25. The second power supply is stabilized by the second voltage regulator 34 to a +5V voltage as a switch-controlled working power supply to the S-band transmission signal generating unit 24 and the three-channel receiving unit 23.
[0033] In this embodiment, the first voltage stabilizer 33 and the second voltage stabilizer 34 are preferably used to provide the sampling clock signal generating unit 21, the crystal oscillator clock signal generating unit 22, the three-channel receiving unit 23, the S-band transmission signal generating unit 24 and the X-band local oscillator signal generating unit 25 with the high-quality power supply voltage required for operation, thereby avoiding the influence of the frequency synthesizer on the signal processing due to the insufficient stability of the power supply itself, and optimizing the performance of signal processing.
[0034] Reference Figure 4 The inner wall of the mounting seat 32 is provided with an accommodating cavity 321, the inner wall of the accommodating cavity 321 is slidably connected to the movable seat 322, the inner wall of the movable seat 322 is fixedly connected to one end of the first telescopic rod 323, the first telescopic rod 323 is sleeved with a first spring 3231, the other end of the first telescopic rod 323 is fixedly connected to the first clamping block 324, the first clamping block 324 is slidably connected to the inner wall of the movable seat 322, and a first inclined surface 3241 is provided on the top of the first clamping block 324. The outer wall of the interface outer tube 31 is provided with an annular groove 311, and the outer wall of the annular groove 311 is fixedly connected to the first conical ring 312, the second conical ring 313, the fixed ring 314 and the third conical ring 315 in sequence, and the second conical ring 313 and the third conical ring 315 are respectively arranged on the fixed ring 314.
[0035] In this embodiment, the accommodating cavity 321 is preferably symmetrically arranged on both sides of the wiring hole 320, and the movable seat 322 can slide inside the accommodating cavity 321; the first clamping block 324 can slide on the inner wall of the movable seat 322; under the action of the elastic force of the first spring 3231, the first clamping block 324 can be moved toward the direction close to the interface outer tube 31, and when the interface outer tube 31 is inserted into the wiring hole 320, the first conical ring 312, the second conical ring 313, the fixing ring 314 and the third conical ring 315 press the first clamping block 324 until the interface outer tube 31 moves to the Figure 4 The first clamping block 324 clamps the first conical ring 312, and the interface outer tube 31 cannot be pulled out at this time, thereby locking the position of the interface outer tube 31.
[0036] Reference Figure 4 A first sliding groove 3211 is opened on the inner wall of the accommodating cavity 321 , and the inner wall of the first sliding groove 3211 is slidably connected to the first slider 3212 , and the first slider 3212 is fixedly connected to the outer wall of the movable seat 322 .
[0037] Preferably, in this embodiment, when the movable seat 322 slides inside the accommodating cavity 321 , it can drive the first slider 3212 to slide on the inner wall of the first sliding groove 3211 , which is beneficial to improving the stability of the movable seat 322 when sliding.
[0038] Reference Figure 4 The inner wall of the movable seat 322 is provided with a second sliding groove 3221 , the inner wall of the second sliding groove 3221 is slidably connected to the second slider 3222 , and the second slider 3222 is fixedly connected to the first block 324 .
[0039] Preferably, in this embodiment, when the first block 324 slides on the inner wall of the movable seat 322 , it can drive the second slider 3222 to slide on the inner wall of the second sliding groove 3221 , which is beneficial to improving the stability of the first block 324 when sliding on the inner wall of the movable seat 322 .
[0040] Reference Figure 4 A fixing seat 325 is provided on the inner wall of the accommodating cavity 321, and the fixing seat 325 is fixedly connected to one end of the second telescopic rod 3251. A second spring 3255 is sleeved on the second telescopic rod 3251, and the other end of the second telescopic rod 3251 is fixedly connected to the second clamping block 3252. The second clamping block 3252 is slidably connected to the inner wall of the fixing seat 325, and a second inclined surface 3253 and a groove 3254 are provided on the second clamping block 3252.
[0041] In this embodiment, when the outer tube 31 of the interface is inserted into the wiring hole 320, the second conical ring 313, the fixing ring 314 and the third conical ring 315 press down the second clamping block 3252 until the outer tube 31 of the interface moves to the Figure 4In the middle position, the second block 3252 compresses the second spring 3255, and the second telescopic rod 3251 helps to limit the second spring 3255 and prevent the second spring 3255 from becoming scattered.
[0042] Reference Figure 4 The inner wall of the wiring hole 320 is provided with a sealing ring 3201 , and the inner wall of the sealing ring 3201 is slidably connected to the outer wall of the interface outer tube 31 .
[0043] Preferably, in this embodiment, the sealing ring 3201 can prevent dust or water from entering the wiring hole 320, thereby achieving dustproof and waterproof effects.
[0044] Reference Figures 4 to 6 The first fixed cylinder 326 is fixedly connected to the accommodating cavity 321, the inner end wall of the first fixed cylinder 326 is fixedly connected to one end of the third spring 3260, the other end of the third spring 3260 is fixedly connected to the movable plate 3261, the movable plate 3261 is slidably connected to the inner wall of the first fixed cylinder 326, the movable plate 3261 is fixedly connected to the movable rod 3262, the movable rod 3262 is slidably connected to the first fixed cylinder 326, and a third inclined surface 3263 is provided on the movable rod 3262. A slot 3141 is opened on the fixed ring 314, and the inner wall of the slot 3141 is slidably connected to the movable rod 3262.
[0045] In this embodiment, preferably, under the elastic force of the third spring 3260, the movable plate 3261 and the movable rod 3262 can be moved to Figure 5 Push upward to insert the movable rod 3262 into the inner wall of the slot 3141. At this time, the interface outer tube 31 cannot rotate, cannot continue to move into the wiring hole 320, and cannot be pulled out. It can play a double locking role on the position of the interface outer tube 31 to prevent the interface outer tube 31 from loosening and disperse the force on the interface outer tube 31 to prevent the interface outer tube 31 from being damaged by the force exceeding the structural strength.
[0046] Reference Figures 4 to 6 The movable seat 322 is fixedly connected to one end of the third telescopic rod 327 , and the other end of the third telescopic rod 327 is fixedly connected to the accommodating cavity 321 .
[0047] In this embodiment, preferably, when the third telescopic rod 327 is at its initial length, the first slider 3212 on the movable seat 32 is at the leftmost end of the first sliding groove 3211, that is, Figure 4 When the third telescopic rod 327 is extended, it can push the movable seat 32 to Figure 4 Move to the right until you move to Figure 6 The position in.
[0048] The cam 35 further includes a control unit 35, which includes a second fixed cylinder 351, a movable cylinder 352, a fourth spring 353, a first connecting tube 354, and a second connecting tube 355. The mounting seat 32 is provided with a mounting hole 328, the inner wall of the mounting hole 328 is fixedly connected to the second fixed cylinder 351, the outer wall of the second fixed cylinder 351 is slidably connected to the inner wall of the movable cylinder 352, the outer wall of the movable cylinder 352 is slidably connected to the inner wall of the mounting hole 328, the inner end wall of the movable cylinder 352 is fixedly connected to one end of the fourth spring 353, the other end of the fourth spring 353 is fixedly connected to the inner wall of the second fixed cylinder 351, the second fixed cylinder 351 is fixedly connected to the first connecting tube 354 and the second connecting tube 355, the other end of the first connecting tube 354 is fixedly connected to the third telescopic rod 327, and the other end of the second connecting tube 355 is fixedly connected to the first fixed cylinder 326.
[0049] In this embodiment, preferably, the movable cylinder 352 is pushed to slide into the mounting hole 328, and the movable cylinder 352 overcomes the elastic force of the fourth spring 353. The space inside the movable cylinder 352 and the second fixed cylinder 351 is reduced, and the air pressure increases. The gas enters the third telescopic rod 327 through the first connecting tube 354. At this time, the third telescopic rod 327 extends; the gas passes through the second connecting tube 355 and the first fixed cylinder 326. At this time, the gas pushes the movable plate 3261 to Figure 5 The movable plate 3261 moves downward, and the movable rod 3262 is driven to move. The movable rod 3262 is pulled out from the slot 3141, thereby releasing the lock on the position of the interface outer tube 31.
[0050] During use, after the external power cord 36 is inserted into the wiring hole 320 through the interface outer tube 31, the external power cord 36 contacts the wires inside the wiring hole 320, and the wires lead out two power supplies, which are connected in parallel. The two power supplies are electrically connected to the first voltage regulator 33 and the second voltage regulator 34 respectively. The first voltage regulator 33 and the second voltage regulator 34 are helpful in providing the transceiver module 2 with the high-quality power supply voltage required for operation, avoiding the insufficient stability of the power supply itself causing the frequency synthesizer to affect the signal processing, and optimizing the signal processing performance.
[0051] During the process of inserting the interface outer tube 31 into the wiring hole 320, the first conical ring 312, the second conical ring 313, the fixed ring 314 and the third conical ring 315 press down the first clamping block 324, the second clamping block 3252 and the movable rod 3262 until the interface outer tube 31 moves to the Figure 4 The first clamping block 324 is clamped on the left side of the first conical ring 312. Under the elastic force of the third spring 3260, the movable plate 3261 and the movable rod 3262 can be moved to the middle position. Figure 5Push upward to insert the movable rod 3262 into the inner wall of the slot 3141. At this time, the interface outer tube 31 cannot rotate, cannot continue to move into the wiring hole 320, and cannot be pulled out. It can play a double locking role on the position of the interface outer tube 31, prevent the interface outer tube 31 from loosening, and disperse the force on the interface outer tube 31 to prevent the interface outer tube 31 from being damaged by the force exceeding the structural strength, and prevent it from being loosened due to vibration or various actions performed periodically by the radar.
[0052] When the outer tube 31 of the interface needs to be pulled out, the movable cylinder 352 is pushed to slide into the mounting hole 328. The mounting hole 328 is flush with the movable cylinder 352, which is helpful to prevent the movable cylinder 352 from being accidentally touched. A screwdriver can be used to push the movable cylinder 352 to slide into the mounting hole 328. The movable cylinder 352 overcomes the elastic force of the fourth spring 353. The space inside the movable cylinder 352 and the second fixed cylinder 351 is reduced, and the air pressure increases. The gas enters the third telescopic rod 327 through the first connecting tube 354. At this time, the third telescopic rod 327 extends, and the third telescopic rod 327 pushes the movable seat 322 to move to Figure 6 At the same time, the gas passes through the second connecting tube 355 and the first fixed tube 326, and the gas pushes the movable plate 3261 to the middle position. Figure 5 When the cam 3261 is in the unlocking state, the first conical ring 312 is pushed to the right of the second clamping block 3252, and the outer tube 31 of the interface is pulled out. Under the action of the second inclined surface 3253 on the second clamping block 3252, the first conical ring 312, the second conical ring 313, the fixed ring 314 and the third conical ring 315 are easily guided to pass through the first clamping block 324 and the second clamping block 3252, and the outer tube 31 of the interface is pulled out, which is convenient for maintenance and replacement.
[0053] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.
Claims
1. A frequency synthesizer transceiver component, characterized in that: include A accommodating module (1), the accommodating module (1) comprising a accommodating shell (11) and a cover plate (12), the top of the accommodating shell (11) being fixedly connected to the cover plate (12); A transceiver module (2), the transceiver module (2) is arranged inside the accommodating shell (11), the transceiver module (2) includes a sampling clock signal generating unit (21), a crystal oscillator clock signal generating unit (22), a three-channel receiving unit (23), an S-band transmission signal generating unit (24) and an X-band local oscillator signal generating unit (25), the crystal oscillator clock signal generating unit (22) is used to generate a crystal oscillator signal, and perform power division on the crystal oscillator signal to generate a multi-channel fully coherent signal for providing a reference clock signal to the sampling clock generating unit (21), the three-channel receiving unit (23), the S-band transmission signal generating unit (24) and the X-band local oscillator signal generating unit (25); A power module (3), the power module (3) comprising an interface outer tube (31), a mounting seat (32), a first voltage stabilizer (33), a second voltage stabilizer (34) and an external power line (36), the mounting seat (32) being fixedly connected to the accommodating shell (11), a wiring hole (320) being provided on the mounting seat (32), an outer wall of the interface outer tube (31) being slidably connected to an inner wall of the wiring hole (320), an inner wall of the interface outer tube (31) being fixedly connected to an external power line (36), two power sources being led out from the wiring hole (320), the two power sources being connected in parallel, and the two power sources being electrically connected to the first voltage stabilizer (33) and the second voltage stabilizer (34) respectively; The inner wall of the mounting seat (32) is provided with an accommodating cavity (321), the inner wall of the accommodating cavity (321) is slidably connected to the movable seat (322), the inner wall of the movable seat (322) is fixedly connected to one end of a first telescopic rod (323), a first spring (3231) is sleeved on the first telescopic rod (323), the other end of the first telescopic rod (323) is fixedly connected to a first clamping block (324), the first clamping block (324) is slidably connected to the inner wall of the movable seat (322), and a first inclined surface (3241) is provided on the top of the first clamping block (324). The outer wall of the interface outer tube (31) is provided with an annular groove (311), the outer wall of the annular groove (311) is fixedly connected to a first conical ring (312), a second conical ring (313), a fixed ring (314), and a third conical ring (315) in sequence, and the second conical ring (313) and the third conical ring (315) are respectively provided on the fixed ring (314).
2. The frequency synthesizer transceiver assembly according to claim 1, characterized in that: The first power supply is stabilized to a +5V continuous wave power supply by a first voltage stabilizer (33), and the continuous wave power supply supplies power to the crystal oscillator clock signal generating unit (22), the sampling clock signal generating unit (21), and the X-band local oscillator signal generating unit (25). The second power supply is stabilized to +5V by a second voltage stabilizer (34) as a switch-controlled working power supply to supply power to the S-band transmission signal generating unit (24) and the three-channel receiving unit (23).
3. The frequency synthesizer transceiver assembly according to claim 1, characterized in that: A first sliding groove (3211) is provided on the inner wall of the accommodating cavity (321), the inner wall of the first sliding groove (3211) is slidably connected to a first sliding block (3212), and the first sliding block (3212) is fixedly connected to the outer wall of the movable seat (322).
4. The frequency synthesizer transceiver assembly according to claim 3, characterized in that: The inner wall of the movable seat (322) is provided with a second sliding groove (3221), the inner wall of the second sliding groove (3221) is slidably connected to the second slider (3222), and the second slider (3222) is fixedly connected to the first clamping block (324).
5. The frequency synthesizer transceiver assembly according to claim 4, characterized in that: A fixing seat (325) is provided on the inner wall of the accommodating cavity (321). The fixing seat (325) is fixedly connected to one end of a second telescopic rod (3251). A second spring (3255) is sleeved on the second telescopic rod (3251). The other end of the second telescopic rod (3251) is fixedly connected to a second clamping block (3252). The second clamping block (3252) is slidably connected to the inner wall of the fixing seat (325). The second clamping block (3252) is provided with a second inclined surface (3253) and a groove (3254).
6. The frequency synthesizer transceiver assembly according to claim 1, characterized in that: The inner wall of the wiring hole (320) is provided with a sealing ring (3201), and the inner wall of the sealing ring (3201) is slidably connected to the outer wall of the interface outer tube (31).
7. The frequency synthesizer transceiver assembly according to claim 1, characterized in that: The accommodating cavity (321) is fixedly connected to the first fixed cylinder (326), the inner end wall of the first fixed cylinder (326) is fixedly connected to one end of the third spring (3260), the other end of the third spring (3260) is fixedly connected to the movable plate (3261), the movable plate (3261) is slidably connected to the inner wall of the first fixed cylinder (326), the movable plate (3261) is fixedly connected to the movable rod (3262), the movable rod (3262) is slidably connected to the first fixed cylinder (326), a third inclined surface (3263) is provided on the movable rod (3262), and a slot (3141) is provided on the fixed ring (314), and the inner wall of the slot (3141) is slidably connected to the movable rod (3262).
8. The frequency synthesizer transceiver assembly according to claim 7, characterized in that: The movable seat (322) is fixedly connected to one end of the third telescopic rod (327), and the other end of the third telescopic rod (327) is fixedly connected to the accommodating cavity (321).
9. The frequency synthesizer transceiver assembly according to claim 8, characterized in that: The control unit (35) further comprises a second fixed cylinder (351), a movable cylinder (352), a fourth spring (353), a first connecting tube (354) and a second connecting tube (355). The mounting seat (32) is provided with a mounting hole (328). The inner wall of the mounting hole (328) is fixedly connected to the second fixed cylinder (351). The outer wall of the second fixed cylinder (351) is slidably connected to the inner wall of the movable cylinder (352). The outer wall of the movable cylinder (352) is slidably connected to the inner wall of the mounting hole (328). The inner end wall of the movable cylinder (352) is fixedly connected to one end of the fourth spring (353). The other end of the fourth spring (353) is fixedly connected to the inner wall of the second fixed cylinder (351). The second fixed cylinder (351) is fixedly connected to the first connecting tube (354) and the second connecting tube (355). The other end of the first connecting tube (354) is fixedly connected to the third telescopic rod (327). The other end of the second connecting tube (355) is fixedly connected to the first fixed cylinder (326).
Citation Information
Patent Citations
High-precision radar frequency synthesizer
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