Ultrasonic Surgical Assistance Device Design
Budget / Salary₹600–1,500
TypeFreelance project
LocationRemote
Posted1 hour ago
I need an engineer who can take an ultrasonic concept from idea to a working solution that assists surgeons in the operating theatre. The core requirement is straightforward: produce a medical-grade ultrasonic device whose primary purpose is surgical assistance, rather than diagnostic imaging or therapeutic therapy.
Here is what the work entails:
• Translate the functional goal—real-time ultrasonic guidance and manipulation during surgery—into a complete architecture, covering transducer selection, drive electronics, signal processing, and ergonomic housing.
• Model and optimise the acoustic field so it meets surgical safety limits while giving surgeons the precision and tactile feedback they expect.
• Provide all engineering documents: schematics, PCB layout (Altium or KiCad), firmware source (C/C++), and a concise test protocol showing frequency response, power output, and temperature rise under continuous use.
• Package your deliverables so a contract manufacturer can move straight to prototype fabrication, including a short bill of materials with vendor links.
Accepted work will be demonstrated on a benchtop prototype that hits the target frequency band, operates for at least 30 minutes without overheating, and passes an IEC-60601 leakage current check. A simple video clip plus raw data files will suffice for proof.
The procedure type is still open, so I welcome your ideas on whether the design should favour soft-tissue precision or bone-cutting power; just make a clear case and back it with simulations. Experience with piezoelectric transducers, PWM power stages, and medical regulatory pathways will place your bid at the top of my list.
Here is what the work entails:
• Translate the functional goal—real-time ultrasonic guidance and manipulation during surgery—into a complete architecture, covering transducer selection, drive electronics, signal processing, and ergonomic housing.
• Model and optimise the acoustic field so it meets surgical safety limits while giving surgeons the precision and tactile feedback they expect.
• Provide all engineering documents: schematics, PCB layout (Altium or KiCad), firmware source (C/C++), and a concise test protocol showing frequency response, power output, and temperature rise under continuous use.
• Package your deliverables so a contract manufacturer can move straight to prototype fabrication, including a short bill of materials with vendor links.
Accepted work will be demonstrated on a benchtop prototype that hits the target frequency band, operates for at least 30 minutes without overheating, and passes an IEC-60601 leakage current check. A simple video clip plus raw data files will suffice for proof.
The procedure type is still open, so I welcome your ideas on whether the design should favour soft-tissue precision or bone-cutting power; just make a clear case and back it with simulations. Experience with piezoelectric transducers, PWM power stages, and medical regulatory pathways will place your bid at the top of my list.
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