# The sensor works. The board is still too large, noisy, or power-hungry to wear.

Canonical URL: https://solderable.dev/solutions/industry/wearables-health-technology
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Last updated: 2026-09-23
Type: service

Shrinking the outline can damage signal quality, battery behavior, assembly, and comfort. Solder coordinates sensing, power, wireless connectivity, sourcing, and mechanical layout so the next prototype can move closer to the body and the product.

PCB design for wearable and health-technology prototypes, balancing sensing, analog signal paths, battery constraints, wireless connectivity, and product form factor.

## Facts

- Applications: Wearable and sensing prototypes
- Design focus: Signal paths, power, and form factor
- Validation: Electrical and product testing scoped separately

## Project Evidence

- 26% — Smaller final Inara board reported in the published project story. Source: [Inara project story](https://solderable.dev/blog/inara)
- 1 week — Requirements-to-Gerbers schedule reported for the Inara redesign. Source: [Inara project story](https://solderable.dev/blog/inara)
- 3 goals — Smaller form factor, more reliable power, and simpler assembly. Source: [Published Inara project brief](https://solderable.dev/blog/inara)

## The challenge: shrink the wearable without shrinking the signal margin

Inara already had a working prototype. The difficult part was making it 26% smaller while keeping the biosignal path, battery and power behavior, USB-C charging, assembly, and mechanical fit aligned. A smaller outline alone would not have made the product more wearable if it introduced noise or fragile assembly choices.

- Share the signal chain and relevant sensor documentation.
- Provide raw measurements and test conditions when available.
- Identify analog, digital, and radio activity that may interact.

## Real project problem — Inara

A working prototype still had to become smaller, more reliable, and ready for real-world testing.

The redesign had to reduce size without sacrificing signal quality, improve the power system, and simplify assembly. Solder used sourcing automation, power-domain review, and focused layout work; the published project story reports a 26% smaller board and Gerbers in one week.

Source: [Read the Inara project story](https://solderable.dev/blog/inara)

## The fix: combine sourcing, power review, and mechanical layout

Solder's project story documents three connected moves: find available component replacements, flag power-domain overlaps and voltage margins before layout, and tighten routing with the mechanical design in the loop. That sequence produced the reported smaller board and one-week Gerber handoff.

- Provide enclosure geometry and contact locations.
- Distinguish wearable dimensions from development-board dimensions.
- Preserve test access during early revisions.

## Budget power across the whole product

Battery life depends on the sensor, processor, radio, firmware duty cycle, regulators, and charging architecture. A PCB revision can address hardware contributors, but a runtime target cannot be established from the board alone. Define operating modes and ownership of firmware power management before choosing components.

- Document active, idle, and charging behavior.
- Review power switches and wake-up requirements.
- Account for the battery and charging connector in the enclosure.

## Keep product claims and validation separate from board delivery

A wearable prototype and a validated medical product have different requirements. If the device has a medical intended use, identify the applicable engineering, testing, documentation, and regulatory work with qualified specialists. The PCB scope should say what is designed, what is reviewed, and what evidence must still be generated.

- Define the intended use without expanding it through marketing language.
- Assign responsibility for product-level safety and validation.
- Keep revision history and design assumptions available for review.

## Related engineering in practice

Explore published projects with related design constraints. Each project has its own scope and validation requirements.

- [Inara: refining a wearable PCB](https://solderable.dev/blog/inara) — A smaller form factor, power-system changes, and easier assembly.

## Documented impact: 26% smaller, with Gerbers in one week.

The Inara project story reports a 26% smaller board after sourcing replacements, reviewing power domains and voltage margins, and coordinating electrical layout with the mechanical design. Gerbers were delivered in one week.

Source: [Read the Inara project story](https://solderable.dev/blog/inara)

## FAQ

### Can you work on EEG, EMG, or other sensing boards?

We can assess a project involving sensor acquisition and analog front ends. Feasibility and scope depend on the signal chain, performance targets, existing design, and available measurements; share those details before assuming a particular capability or outcome.

### Can you shrink a wearable board and extend its battery life?

Both can be design goals, but they require separate analysis. Board size depends on components, interfaces, assembly, and mechanics; runtime also depends on firmware and operating behavior. The scope should identify the tradeoffs and how improvements will be measured.

### Does a redesigned PCB make the product medically certified?

No. PCB design or review does not establish medical certification, clinical performance, or regulatory approval. Those requirements need a separate product-specific validation and regulatory plan.

## Related Pages

- AI wearable PCB design: https://solderable.dev/solutions/ai-wearable-pcb-design
- Miniaturization & low-power design: https://solderable.dev/solutions/use-case/miniaturization-low-power-design
- Analog front ends: https://solderable.dev/solutions/use-case/sensor-integration-analog-front-ends
- All industries: https://solderable.dev/solutions/industry

## Citation Guidance

Cite Solderable using the canonical page URL: https://solderable.dev/solutions/industry/wearables-health-technology
