CN207117606U - A kind of steamer radio signal propagation device - Google Patents

A kind of steamer radio signal propagation device Download PDF

Info

Publication number
CN207117606U
CN207117606U CN201721170615.4U CN201721170615U CN207117606U CN 207117606 U CN207117606 U CN 207117606U CN 201721170615 U CN201721170615 U CN 201721170615U CN 207117606 U CN207117606 U CN 207117606U
Authority
CN
China
Prior art keywords
signal
circuit
output
triode
resistor
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
Application number
CN201721170615.4U
Other languages
Chinese (zh)
Inventor
苑芳
宋大卫
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Shandong Navigation Electrical Equipment Co Ltd
Original Assignee
Shandong Navigation Electrical Equipment Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Shandong Navigation Electrical Equipment Co Ltd filed Critical Shandong Navigation Electrical Equipment Co Ltd
Priority to CN201721170615.4U priority Critical patent/CN207117606U/en
Application granted granted Critical
Publication of CN207117606U publication Critical patent/CN207117606U/en
Expired - Fee Related legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Landscapes

  • Amplifiers (AREA)
  • Transmitters (AREA)

Abstract

The utility model discloses a kind of steamer radio signal propagation device, including Signal coding circuit, frequency selection circuit, mu balanced circuit and power amplifier radiating circuit, its Signal coding circuit is encoded the signal to be propagated by coding chip, and it is subject to carrier wave output, the input of frequency selection circuit is sent to after RC is filtered, frequency selection circuit produces resonance by LC and carries out frequency-selecting to Signal coding circuit output signal, power amplifier radiating circuit is output to after mu balanced circuit carries out voltage stabilizing again, power amplifier radiating circuit carries out power amplification to mu balanced circuit output signal.The utility model has the advantages of anti-interference and fade resistance is strong, signal propagation is accurate.

Description

Wireless signal transmitter for steamship
Technical Field
The utility model relates to a wireless communication technology, especially a ship radio signal propagator.
Background
Radio communication is used as the main mode of communication between a steamship and the outside, is an important guarantee for steamship navigation safety and crew life safety, and in order to more effectively avoid the interference of noise signals during steamship wireless signal propagation, the technical level of a steamship wireless signal propagator must be continuously improved in development, and particularly, the attenuation resistance and the accuracy of the steamship wireless signal propagator during signal propagation need to be continuously enhanced.
Disclosure of Invention
In order to overcome the not enough of current steamer radio signal propagation existence anti-interference and anti decay nature poor, the utility model aims to provide an anti-interference and strong steamer radio signal propagator of anti decay nature.
The utility model provides a technical scheme that its technical problem adopted is: the utility model provides a ship wireless signal propagator, includes signal coding circuit, frequency-selective circuit, voltage stabilizing circuit and power amplifier transmitting circuit, its characterized in that: the signal coding circuit codes a signal to be transmitted through a coding chip, and outputs the signal in a carrier wave manner, the signal is sent to the input end of the frequency selection circuit after being filtered by an RC, the frequency selection circuit generates resonance by an LC to select frequency of the signal output by the signal coding circuit, the signal is output to the power amplifier transmitting circuit after being stabilized by a voltage stabilizing circuit, and the power amplifier transmitting circuit amplifies the power of the signal output by the voltage stabilizing circuit; wherein,
the signal coding circuit comprises a wireless data transmission chip J1 with the model number of SRM1276, the wireless data transmission chip J1 codes ship wireless transmission signals, the ship wireless transmission signals are output from an output port after being loaded, the ship wireless transmission signals are subjected to high-pass filtering processing through a capacitor C1 and a resistor R1 and then are sent to the input end of the frequency selection circuit, the wireless data transmission chip J1 is powered by a +5V power supply, and the ground end of the wireless data transmission chip J1 is grounded.
Preferably, the frequency selection circuit comprises a MOS transistor Q1, the gate of the MOS transistor Q1 receives the output signal of the signal coding circuit, the capacitor C2 is connected in parallel with the inductor L1 to form resonance to perform frequency selection on the output signal of the signal coding circuit, and the output signal is amplified by the MOS transistor Q1 and then output at the source electrode of the signal coding circuit; the grid of the MOS transistor Q1 is connected with one end of a capacitor C2, the drain of the MOS transistor Q1 is connected with one end of an inductor L1, the other end of the capacitor C2 is connected with the other end of the inductor L1 to form a +12V power supply, the source of the MOS transistor Q1 is connected with one end of a resistor R2 and one end of a resistor R3, the other end of the resistor R2 is grounded, and the other end of the resistor R3 is connected with a voltage stabilizing circuit.
Preferably, the voltage stabilizing circuit comprises a resistor R4, a transistor VT1 and a zener diode D1, wherein a part of an output signal of the MOS transistor Q1 is divided by the resistor R3 and then flows into a collector of the transistor VT1, another part of the output signal is divided by the resistor R4 and then flows into a base of the transistor VT1 and a cathode of the transistor D1, an anode of the zener diode D1 is grounded, and an emitter of the transistor VT1 is output to the input terminal of the power amplifier emission circuit.
Preferably, the power amplifier transmitting circuit comprises a capacitor C3, the output signal of the voltage stabilizing circuit is coupled by a capacitor C3 and then flows into the base of a triode VT2, is amplified by a triode VT2 and then is output at the emitter thereof, flows into the base of a triode VT3, is amplified by a triode VT3 and then is output at the emitter thereof, a part of the output signal is coupled by a capacitor C4 and then is sent to the antenna end E1 of the wireless signal transmitter for emission, the other part of the output signal is grounded through a resistor R6, and a +12V power supply is connected with the collector of the triode VT2 and the collector of the VT3 and is connected with the base of the triode VT2 through a resistor R5.
Compared with the prior art, the beneficial effects of the utility model are as follows:
1. the wireless data transmission chip J1 encodes the ship wireless transmission signal, carries the signal and then outputs from the output port, because the output signal has certain clutter interference, in order to improve the interference killing feature of the ship wireless signal transmitter, adopt electric capacity C1 and resistance R1 to form high-pass filtering and send to MOS pipe Q1 grid after handling, MOS pipe Q1 has fine temperature stability characteristic, the amplification noise is little, for further accurate signal transmission, adopt electric capacity C2 and feel L1 to connect in parallel and form the resonance and carry out the frequency selection to the signal coding circuit output signal, have very big development value and practical value.
2. The radio signal after frequency selection has instability, a voltage stabilizing circuit is formed by a resistor R4, a triode VT1 and a voltage stabilizing diode D1, the radio signal is effectively stabilized, and the triode VT2 and the triode VT3 form a composite tube by adopting a connection method of a common collector to multiply amplify the radio signal, so that the signal transmitting power is improved, and the attenuation resistance of the ship radio signal transmitter is effectively enhanced.
Drawings
Fig. 1 is a circuit block diagram of the present invention;
fig. 2 is a schematic circuit diagram of the present invention.
The labels in the figure are: 1. the device comprises a signal coding circuit, a frequency selection circuit, a voltage stabilizing circuit and a power amplifier transmitting circuit, wherein the frequency selection circuit is 2, the voltage stabilizing circuit is 3, and the power amplifier transmitting circuit is 4.
Detailed Description
The foregoing and other technical matters, features and effects of the present invention will be apparent from the following detailed description of the embodiments, which is to be read in connection with the accompanying drawings 1 to 2. The structural contents mentioned in the following embodiments are all referred to the attached drawings of the specification.
Example one
In fig. 1 and 2, a wireless signal transmitter for a ship comprises a signal coding circuit 1, a frequency selecting circuit 2, a voltage stabilizing circuit 3 and a power amplifier transmitting circuit 4, wherein the signal coding circuit 1 codes a signal to be transmitted through a coding chip and outputs a carrier wave, the signal is sent to an input end of the frequency selecting circuit 2 after being filtered by an RC (resistance-capacitance) filter, the frequency selecting circuit 2 generates resonance by an LC (inductance-capacitance) to select frequency of an output signal of the signal coding circuit and outputs the signal to the power amplifier transmitting circuit 4 after being stabilized by the voltage stabilizing circuit 3, and the power amplifier transmitting circuit 4 amplifies the power of the output signal of the voltage stabilizing circuit 3, so that the antenna end of the wireless signal transmitter has enough transmitting power.
In fig. 2, the signal encoding circuit 1 includes a wireless data transmission chip J1 with model SRM1276, the wireless data transmission chip J1 encodes the ship wireless transmission signal, and outputs the ship wireless transmission signal from an output port after the ship wireless transmission signal is loaded, because the output signal has certain clutter interference, in order to improve the anti-interference capability of the ship wireless signal transmitter, a capacitor C1 and a resistor R1 are adopted to form high-pass filtering processing and then sent to the input end of the frequency selection circuit 2, the wireless data transmission chip J1 is powered by a +5V power supply, and the ground end of the wireless data transmission chip J1 is grounded.
Example two
As shown in fig. 2, based on the first embodiment, the frequency selection circuit includes a MOS transistor Q1, a gate of the MOS transistor Q1 is connected to one end of a capacitor C2, a drain of the MOS transistor Q1 is connected to one end of an inductor L1, the other end of the capacitor C2 and the other end of the inductor L1 are connected to a +12V power supply, a source of the MOS transistor Q1 is connected to one end of a resistor R2 and one end of a resistor R3, the other end of the resistor R2 is grounded, and the other end of the resistor R3 is connected to a voltage regulation circuit. In this embodiment, the MOS transistor Q1 has a good temperature stability, and the amplification noise is small, and the gate of the MOS transistor Q1 is used to receive the output signal of the signal encoding circuit 1. In order to further accurately propagate signals, a capacitor C2 is connected in parallel with an inductor L1 to form resonance, the frequency of the output signals of the signal coding circuit 1 is selected, and the signals are amplified by a MOS transistor Q1 and then output at the source electrode of the signal coding circuit.
EXAMPLE III
As shown in fig. 2, based on the second embodiment, the voltage regulator circuit 3 includes a resistor R4, a transistor VT1, and a zener diode D1, wherein a part of the output signal of the MOS transistor Q1 is divided by the resistor R3 and then flows into the collector of the transistor VT1, another part of the output signal is divided by the resistor R4 and then flows into the base of the transistor VT1 and the cathode of the zener diode D1, the anode of the zener diode D1 is grounded, and the emitter of the transistor VT1 is output to the input terminal of the power amplifier emission circuit 4. In the embodiment, the frequency-selected wireless signal has instability, and the voltage stabilizing circuit is formed by the resistor R4, the triode VT1 and the voltage stabilizing diode D1, so that the wireless signal is effectively stabilized.
Example four
As shown in fig. 2, based on the third embodiment, the power amplifier transmitting circuit 4 includes a capacitor C3, an output signal of the frequency-selecting voltage-stabilizing circuit is coupled by the capacitor C3, flows into a base of a transistor VT2, is amplified by the transistor VT2, is output at an emitter thereof, flows into a base of a transistor VT3, is amplified by the transistor VT3, is output at an emitter thereof, is coupled by the capacitor C4, is partially sent to an antenna terminal E1 of the wireless signal transmitter for emission, is grounded at the other part through a resistor R6, and is connected with a collector of the transistor VT2 and a collector of the VT3 through a resistor R5 and is connected with the base of the transistor VT 2. In the embodiment, in order to avoid the influence of a direct current signal, the capacitor C3 is used for coupling the output signal of the voltage stabilizing circuit, the coupled signal power is not enough for direct transmission, and the triode VT2 and VT3 are connected with a common collector to form a composite tube so as to multiply and amplify the wireless signal and improve the signal transmission power.
The utility model discloses during the use, wireless data transmission chip J1 encodes the steamer wireless transmission signal, exports from output port after the carrier, because output signal has certain clutter interference, in order to improve the interference killing feature of steamer wireless signal broadcaster, adopts electric capacity C1 and resistance R1 to constitute and send MOS pipe Q1 grid after the high pass filtering is handled, MOS pipe Q1 has fine temperature stability characteristic, and the amplification noise is little; in order to further accurately transmit signals, a capacitor C2 and a sensor L1 are connected in parallel to form resonance to carry out frequency selection on signals output by the signal coding circuit 1, the wireless signals after frequency selection have instability, a voltage stabilizing circuit is formed by a resistor R4, a triode VT1 and a voltage stabilizing diode D1 to effectively stabilize the wireless signals, and then the triodes VT2 and VT3 form a composite tube by adopting a common collector electrode connection method to multiply and amplify the wireless signals, so that the signal transmitting power is improved, the attenuation resistance and the stability of a wireless signal transmitter of a ship are effectively enhanced, and the wireless signal transmitter has great development value and practical value.
The above description is provided for further details of the present invention with reference to the specific embodiments, which should not be construed as limiting the present invention; to the utility model discloses affiliated and relevant technical field's technical personnel are based on the utility model discloses under the technical scheme thinking prerequisite, the extension of doing and the replacement of operating method, data all should fall within the utility model discloses within the protection scope.

Claims (4)

1. The utility model provides a ship wireless signal propagator, includes signal coding circuit, frequency-selective circuit, voltage stabilizing circuit and power amplifier transmitting circuit, its characterized in that: the signal coding circuit codes a signal to be transmitted through a coding chip, and outputs the signal in a carrier wave manner, the signal is sent to the input end of the frequency selection circuit after being filtered by an RC, the frequency selection circuit generates resonance by an LC to select frequency of the signal output by the signal coding circuit, the signal is output to the power amplifier transmitting circuit after being stabilized by the voltage stabilizing circuit, and the power amplifier transmitting circuit amplifies the power of the signal output by the voltage stabilizing circuit; wherein,
the signal coding circuit comprises a wireless data transmission chip J1 with the model number of SRM1276, the wireless data transmission chip J1 codes ship wireless transmission signals, the ship wireless transmission signals are output from an output port after being loaded, the ship wireless transmission signals are subjected to high-pass filtering processing through a capacitor C1 and a resistor R1 and then are sent to the input end of the frequency selection circuit, the wireless data transmission chip J1 is powered by a +5V power supply, and the ground end of the wireless data transmission chip J1 is grounded.
2. A wireless signal propagator for a wheeled ship according to claim 1, further comprising: the frequency selection circuit comprises an MOS tube Q1, the grid electrode of the MOS tube Q1 receives the output signal of the signal coding circuit, a capacitor C2 is connected with an inductor L1 in parallel to form resonance to perform frequency selection on the output signal of the signal coding circuit, and the output signal is amplified by the MOS tube Q1 and then output at the source electrode of the signal coding circuit; the grid of the MOS transistor Q1 is connected with one end of a capacitor C2, the drain of the MOS transistor Q1 is connected with one end of an inductor L1, the other end of the capacitor C2 is connected with the other end of the inductor L1 to form a +12V power supply, the source of the MOS transistor Q1 is connected with one end of a resistor R2 and one end of a resistor R3, the other end of the resistor R2 is grounded, and the other end of the resistor R3 is connected with a voltage stabilizing circuit.
3. A wireless signal propagator for a wheeled ship according to claim 2, further comprising: the voltage stabilizing circuit comprises a resistor R4, a triode VT1 and a voltage stabilizing diode D1, wherein a part of an output signal of an MOS transistor Q1 flows into a collector of the triode VT1 after being subjected to voltage division by a resistor R3, the other part of the output signal flows into a base of the triode VT1 and a cathode of the voltage stabilizing diode D1 after being subjected to voltage division by a resistor R4, an anode of the voltage stabilizing diode D1 is grounded, and an emitter of the triode VT1 is output to an input end of the power amplifier emission circuit.
4. A wireless signal propagator for a wheeled ship according to claim 1, further comprising: the power amplifier transmitting circuit comprises a capacitor C3, an output signal of the voltage stabilizing circuit is coupled by a capacitor C3 and then flows into a base electrode of a triode VT2, is amplified by a triode VT2 and then is output at an emitter electrode of the triode VT3, is amplified by a triode VT3 and then is output at an emitter electrode of the triode VT 4935, a part of the output signal is coupled by a capacitor C4 and then is sent to an antenna end E1 of the wireless signal transmitter for emission, the other part of the output signal is grounded through a resistor R6, a +12V power supply is connected with a collector electrode of the triode VT2 and a collector electrode of the VT3, and is connected with a base electrode of a triode VT 2.
CN201721170615.4U 2017-09-13 2017-09-13 A kind of steamer radio signal propagation device Expired - Fee Related CN207117606U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201721170615.4U CN207117606U (en) 2017-09-13 2017-09-13 A kind of steamer radio signal propagation device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201721170615.4U CN207117606U (en) 2017-09-13 2017-09-13 A kind of steamer radio signal propagation device

Publications (1)

Publication Number Publication Date
CN207117606U true CN207117606U (en) 2018-03-16

Family

ID=61576509

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201721170615.4U Expired - Fee Related CN207117606U (en) 2017-09-13 2017-09-13 A kind of steamer radio signal propagation device

Country Status (1)

Country Link
CN (1) CN207117606U (en)

Similar Documents

Publication Publication Date Title
CN101477147B (en) Circuit for detecting radio frequency power
CN103456156A (en) Long-distance passive wireless sensor remote-measuring system with working frequency adjustable
CN102664601A (en) Self-adapting impedance matching module
CN203055147U (en) Meter reading collector with switching power supply and power line carrier transceiving gain
CN108880484B (en) Power amplifier bias circuit
CN205140188U (en) Wireless teletransmission water gauge control circuit based on LORA technique
CN207117606U (en) A kind of steamer radio signal propagation device
CN208608986U (en) A kind of high-performance binary channels broadband rf front end
CN201965233U (en) Flow measuring radar
CN207782780U (en) A kind of Computer Wireless Communication sender unit
CN203933628U (en) Satellite-signal repeater
CN103701434B (en) A kind of frequency modulation device for LWD resistivity log and method
CN104330775A (en) Attenuation control method of digital STC attenuation circuit
CN107483061A (en) A kind of steamer radio signal propagation device
CN204376854U (en) Instrument landing ground installation signal processing circuit
CN108847827B (en) Continuous variable gain amplifying circuit applied to ultrasonic gas meter
CN207867740U (en) A kind of Chinese study teaching aid
CN202586884U (en) Adaptive impedance matching module
CN217216502U (en) Monitoring data back transmission modulation circuit
CN206389363U (en) The radio-frequency module detected for radio signal quality
CN205249212U (en) Wireless radio frequency transceiving ware
CN210927624U (en) High-power and low-noise coefficient radio frequency front-end circuit scheme
CN204886981U (en) Ground tacan signal is apart from analog device
CN104539269A (en) Signal processing circuit for instrument landing ground equipment
CN220234680U (en) Personnel positioning sensing system based on near field communication

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant
CF01 Termination of patent right due to non-payment of annual fee
CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20180316

Termination date: 20210913