Mini-Circuits ZBSC-615+ 1-500MHz Six SMA Power Divider
Overview
The Mini-Circuits ZBSC-615+ is a high-performance six-way power divider designed for RF and microwave1 MHz to 500 MHz, this component delivers exceptional amplitude and phase consistency, making it ideal for demanding systems such as phased arrays, test instrumentation, and multi-channel receivers.
Key Features
- Broadband Operation: Covers 1 MHz to 500 MHz, ensuring versatility across diverse applications.
- Low Insertion Loss: Optimized for minimal signal attenuation (±1.5 dB typical), preserving system sensitivity.
- High Isolation: Port-to-port isolation ≥14 dB reduces crosstalk between output channels.
- Excellent Amplitude Balance: ±0.6 dB typical amplitude balance enhances signal integrity in multi-path systems.
- Robust Phase Tracking: Critical for phase relationships.
- SMA Connectors: Industry-standard SMA interfaces ensure reliable connectivity and mechanical durability.
- Passive Design: No external power or bias required, simplifying integration.
Technical Specifications
- Frequency Range: 1 - 500 MHz
- Insertion Loss: 3.5 dB max (per path)
- Amplitude Balance: ±0.6 dB typ
- Phase Balance: ±5° typ
- Isolation: 14 dB min
- VSWR: 1.5:1 max (input/output)
- Power Handling: 1 W (average), 10 W (peak) +85°C
- Connectors: 6 SMA female ports (1 input, 6 outputs)
Applications
- Phased-array antenna systems
- Multi-channel data acquisition
- Signal distribution in test & measurement setups
- RF sensor networks
- Broadcast and communications infrastructure
Quality Assurance
Manufactured under ISO 9001-certified processes, the ZBSC-615+ undergoes rigorous testing to guarantee performance compliance across all environmental conditions. Gold-plated connectors and hermetic packaging ensure long-term reliability in harsh operating environments.
Why Choose ZBSC-615+?
This power divider combines Mini-Circ engineering with uncompromising broadband performance. Its six-way symmetrical splitting capability provides a cost-effective solution for systems requiring uniform signal distribution without compromising phase coherence—essential for advanced RF architectures.
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