BLOG

February 24, 2025
Iko kugona kugadzirisa kweWideband Double-ridged Horn Antennas inomiririra kufambira mberi kwakakosha muhunyanzvi hwemicrowave, ichipa kuchinjika kusati kwamboitika kune akasiyana maapplication. Aya akaomesesa antenna masisitimu anogona kugadzirwa kuti asangane nezvinodiwa muzvikamu zvakasiyana-siyana, kubva pamagetsi emagetsi kuenderana kuyedzwa kusvika kune yepamusoro nhare. Advanced Microwave Technologies Co., Ltd (ADM), ine makumi maviri emakore ehunyanzvi, yakapayona nzira nyowani dzekugadzirisa antenna, ichigonesa kugadziridzwa kwakaringana muma frequency renji, kuwana hunhu, uye hukuru hwemuviri kuti huenderane nezvakasarudzika zvinodiwa zvekushandisa. Uku kuchinjika kunogonesa kuita kwakaringana munzvimbo dzakasiyana-siyana uku uchichengetedza zvakakosha zvehupamhi bandwidth uye yakakwira yakananga iyo inotaridza madhizaini enyanga ane mbiri.
Ndeapi makuru ekushanda misimboti yeCoaxial Variable Attenuators?
February 24, 2025
Coaxial Variable Attenuators zvinhu zvakanyanyisa microwave zvakagadzirirwa kunyatso kudzora siginecha amplitude muRF uye microwave masisitimu. Midziyo iyi inoshanda pamusimboti wekudzora kuderedzwa kwechiratidzo kuburikidza nenzira dzakasiyana siyana, kusanganisira makadhi anodzivirira, rotary vanes, kana PIN diode. Iyo yakakosha kushanda musimboti inosanganisira kugadzira inodzorwa impedance kusawirirana kana kuunza zvinhu zvakarasika munzira yechiratidzo kuti uwane inodiwa yekudzikira. Kunzwisisa misimboti iyi kwakakosha kune mainjiniya uye matekinoroji anoshanda musetiraiti kutaurirana, masisitimu edziviriro, uye maapplication emuchadenga uko kwakakosha kudzora chiratidzo.
February 24, 2025
Kuve nechokwadi chekushanda kwakagadzikana kwenguva refu kweHigh Power Waveguide kune Coaxial Adapters kwakakosha pakuchengetedza yakavimbika chiratidzo chekufambisa mune yakakwirira-frequency application. Izvi zvakakosha zvikamu zvinoshanda seyakanyanya kupindirana pakati pe waveguide masisitimu uye coaxial tambo, kunyanya munzvimbo dzine simba rekubata simba rakakosha. Gwaro iri rakazara rinoongorora nzira dzakakosha dzekuwedzera hupenyu hwekushanda uye kugadzikana kwekuita kweadhadhaputa idzi, ichivhara nzira dzekuisa dzakafanira, maprotocol ekugadzirisa, uye kufunga kwezvakatipoteredza izvo zvinobatsira mukushanda kwakasimba.
Chii chakajairika chekuisa kurasikirwa uye kuzviparadzanisa neWaveguide Electromechanical Switch?
February 21, 2025
Paunenge uchikurukura maitiro ekuita kweWaveguide Electromechanical Swichi, maviri akakosha ma paramita anomira pachena: kuisa kurasikirwa uye kuzviparadzanisa nevamwe. Kazhinji, yemhando yepamusoro Waveguide Electromechanical Swichi inoratidza yekuisa kurasikirwa kukosha kubva pa0.2 kusvika 0.5 dB pamabhendi avo ekufambisa, ukuwo tsika dzekuzviparadzanisa nevamwe dzinowanzopfuura 60 dB, nemhando dzepremium dzinosvika ku80 dB kana kupfuura. Aya maratidziro akakosha pakuchengetedza kuvimbika kwechiratidzo mukuda maapplication senge radar masisitimu, satellite kutaurirana, uye kuisirwa nemauto uko chaiko kufambiswa kwemasaini uye kukanganiswa kudiki kwakakosha pakuita kwakaringana system.
Wedzera Hupenyu hweCoaxial Variable Attenuator muLab Test Setups
July 16, 2026
Increasing the useful life of a coaxial variable attenuator in a lab setting needs a proactive approach that includes controlling the surroundings, handling it carefully, and choosing the right parts. These precise RF devices can change the amplitude of signals across DC to millimeter-wave frequencies. They can break down in a number of ways, such as through repeated tuning cycles, thermal stress from losing power, and environmental contaminants. By following routine calibration processes, sticking to the power ratings given by manufacturers, and keeping humidity and temperature levels in test areas under control, procurement engineers and test lab managers can greatly reduce the number of times that instruments need to be replaced while maintaining measurement accuracy. Choosing attenuators with strong connectors, like precision SMA or N-type interfaces, and making sure the right amount of torque is applied during installation further delays failure, lowering the total cost of ownership while ensuring reliable performance in mission-critical testing scenarios.
Kukanganisa Kwakaita Feed Offset paCassegrain Antennas Noise Temperature
July 16, 2026
In Cassegrain antennas, the noise temperature is directly affected by the feed offset, which changes how the feed horn lights up the reflector system. When the feed is moved laterally or axially away from the ideal focus point, leftover energy goes up. This means that more radiation gets past the subreflector and picks up warm ground noise instead of cold sky signals. This effect raises the temperature of the system's noise, which lowers the ratio of gain to noise temperature, which is important for satellite earth stations, deep space networks, and radar sites. When procurement teams understand this connection, they can choose antennas for mission-critical RF systems that are a good mix between ease of use and thermal performance.
MaAmps Eruzha Rwepasi Anowedzera Sei Radar Target Resolution?
July 16, 2026
Low phase noise amps dramatically improve radar target resolution by minimizing phase jitter and flicker noise close to the carrier frequency. When integrated into local oscillator distribution chains within radar systems, these specialized amplifiers preserve spectral purity, enabling radar operators to detect locally oscillator-spaced targets and detect small cross-section objects such as drones against ground clutter. By maintaining ultra-clean signal amplification—typically achieving residual phase noise better than -165 dBc/Hz at a 10 kHz offset—low phase noise amps directly translate into sharper Doppler resolution and enhanced detection sensitivity in mission-critical defense and aerospace applications.
Stepped Impedance vs Corrugated Waveguide Low Pass Filter Trade-Offs
July 15, 2026
Procurement teams have to make tough decisions about the pros and cons of both stepped impedance and corrugated waveguide low-pass filter designs. These decisions affect the performance, cost, and long-term dependability of the system. Stepped impedance designs use distinct impedance changes along the waveguide path to create frequency-selective rejection. They have small footprints and are easy to make. Periodic grooves or ridges in corrugated designs change the way electromagnetic fields are distributed, which improves stopband rejection and power handling. By knowing these basic differences, engineers and procurement managers can choose filters that meet the needs of specific applications while also meeting the needs for cost-effectiveness and integration.



