▸case-01 We are designing an industrial robotic gripper capable of handling delicate produce without crushing it. Can you create a technical proposal inspired by octopus tentacles or elephant trunks that outlines potential flexible materials, fabrication approaches, and expected grip force metrics? | fail→fail | 31,497 | 76,456 | +143% | 1 | 1 | 0% | 4,478 | 6,546 | +46% | 0 | 0 | — |
▸case-02 I need a bio-inspired thermal management system for an outdoor server enclosure, taking cues from desert organism cooling strategies. Please generate a detailed engineering report specifying recommended phase-change or passive cooling materials, manufacturing techniques, and predicted heat dissipation performance. | fail→fail | 44,070 | 87,576 | +99% | 1 | 1 | 0% | 6,662 | 8,630 | +30% | 0 | 0 | — |
▸case-03 Our team needs a noise-reducing leading edge for high-speed UAV blades based on owl feather microstructures. Deliver a technical design document translating these natural aerodynamic principles into concrete material options, fabrication processes, and expected noise-reduction parameters. | fail→fail | 44,525 | 52,583 | +18% | 1 | 1 | 0% | 6,832 | 8,393 | +23% | 0 | 0 | — |
▸case-04 We are developing an atmospheric water harvester for arid environments based on Namib desert beetle elytra geometry. Please prepare a technical design proposal outlining micro-patterned hydrophilic and hydrophobic surface materials, manufacturing methods, and projected daily water collection yield. | fail→fail | 39,215 | 49,656 | +27% | 1 | 1 | 0% | 5,965 | 8,391 | +41% | 0 | 0 | — |
▸case-05 Our aerospace structural team requires a self-healing composite panel concept modeled after micro-vascular networks in human bone tissue. Produce an engineering specification that identifies repair fluid chemistries, micro-channel manufacturing techniques, and structural recovery percentages after fatigue damage. | fail→fail | 37,646 | 53,397 | +42% | 1 | 1 | 0% | 5,836 | 8,394 | +44% | 0 | 0 | — |
▸case-06 We want to design an anti-fouling surface coating for cargo ship hulls based on shark skin denticle morphology. Deliver a detailed technical plan detailing elastomeric or ceramic material formulations, roll-to-roll texturing manufacturing processes, and hydrodynamic drag reduction estimates. | fail→fail | 50,277 | 53,395 | +6% | 1 | 1 | 0% | 8,241 | 8,398 | +2% | 0 | 0 | — |
▸case-07 Our sports safety equipment brand is building an impact-absorbing helmet liner inspired by the dactyl club structure of mantis shrimp. Write a comprehensive engineering proposal detailing multi-layered composite materials, additive manufacturing techniques, and peak g-force reduction metrics. | fail→fail | 37,611 | 40,635 | +8% | 1 | 1 | 0% | 5,565 | 6,324 | +14% | 0 | 0 | — |
▸case-08 We need an optical sensor window coating with superhydrophobic and anti-reflective properties derived from lotus leaf papillae and moth eye structures. Create a technical specification document detailing nanostructured coating materials, nanoimprint lithography processes, and light transmittance metrics. | fail→fail | 55,247 | 49,758 | -10% | 1 | 1 | 0% | 8,240 | 8,397 | +2% | 0 | 0 | — |
▸case-09 Our medical device team is creating a surgical tissue adhesive mimicking mussel foot protein catechol chemistry. Generate a technical design document outlining synthetic polymer formulations, crosslinking chemical synthesis steps, and shear bond strength performance targets. | fail→fail | 41,473 | 50,109 | +21% | 1 | 1 | 0% | 6,652 | 8,387 | +26% | 0 | 0 | — |
▸case-10 We are designing a lightweight automotive energy-absorption beam modeled after pomelo peel hierarchical foam structures. Provide a complete engineering report detailing aluminum foam or cellular polymer options, low-density molding manufacturing methods, and specific energy absorption metrics. | fail→fail | 48,235 | 49,718 | +3% | 1 | 1 | 0% | 8,234 | 8,391 | +2% | 0 | 0 | — |
▸case-11 Our marine research team requires a high-efficiency solar panel cover glass inspired by the antireflective nanostructures of cicada wings. Produce a technical proposal covering sol-gel silica formulation, etching fabrication methods, and solar conversion efficiency improvement targets. | fail→fail | 33,961 | 53,211 | +57% | 1 | 1 | 0% | 5,460 | 8,394 | +54% | 0 | 0 | — |
▸case-12 We are developing a wind turbine blade leading-edge modification modeled after humpback whale pectoral fin tubercles. Create a technical specification specifying composite material layups, resin transfer molding fabrication steps, and annual energy yield increase projections. | fail→fail | 41,269 | 53,566 | +30% | 1 | 1 | 0% | 6,112 | 8,389 | +37% | 0 | 0 | — |
▸case-13 Our team is designing a flexible protective armoring system inspired by overlapping pangolin scales. Deliver a technical proposal detailing titanium-alloy scale geometries, flexible substrate attachment methods, and ballistic impact resistance metrics. | fail→fail | 48,971 | 56,283 | +15% | 1 | 1 | 0% | 8,228 | 8,385 | +2% | 0 | 0 | — |
▸case-14 We need an acoustic dampening wall panel architecture inspired by the sound-absorbing micro-scales of nocturnal moths. Produce a technical proposal defining porous resonant materials, 3D micro-knitting fabrication approaches, and sound absorption coefficient metrics across 200 Hz to 4 kHz. | fail→fail | 37,859 | 71,192 | +88% | 1 | 1 | 0% | 6,525 | 8,302 | +27% | 0 | 0 | — |
▸case-15 Our team is designing a high-capacity thermal energy storage heat exchanger based on vascular branching patterns in mammalian circulatory networks. Generate an engineering document outlining 3D-printed copper alloy options, direct metal laser sintering procedures, and thermal transfer rate metrics. | fail→fail | 46,053 | 45,936 | -0% | 1 | 1 | 0% | 7,757 | 8,395 | +8% | 0 | 0 | — |
▸case-16 We want to develop a reversible dry adhesive mounting patch based on gecko foot hair spatulae arrays. Prepare a technical specification defining silicone elastomer or carbon nanotube materials, micro-molding fabrication steps, and detachment peel force metrics. | fail→fail | 30,327 | 42,197 | +39% | 1 | 1 | 0% | 4,980 | 6,879 | +38% | 0 | 0 | — |
▸case-17 Our sports equipment group needs an impact-dampening ski pole shaft based on the shock mitigation mechanics of woodpecker skull structures. Deliver a technical design document outlining carbon-fiber hybrid layups, filament winding manufacturing procedures, and acceleration dissipation metrics. | fail→fail | 36,014 | 45,774 | +27% | 1 | 1 | 0% | 5,930 | 7,546 | +27% | 0 | 0 | — |
▸case-18 We are building an energy-efficient desalination membrane embedded with artificial aquaporin channels. Provide a technical design document describing polyamide thin-film nanocomposite formulations, interfacial polymerization manufacturing steps, and water flux rates per bar of pressure. | fail→fail | 30,424 | 43,900 | +44% | 1 | 1 | 0% | 5,513 | 8,391 | +52% | 0 | 0 | — |
▸case-19 Our robotics laboratory requires a wall-climbing robot foot pad utilizing tree frog toe pad hexagonal channel geometries. Generate an engineering report detailing polyurethane elastomer formulations, precision micro-embossing techniques, and wet friction coefficient targets. | fail→fail | 52,844 | 49,855 | -6% | 1 | 1 | 0% | 8,232 | 8,389 | +2% | 0 | 0 | — |
▸case-20 Can you provide a summary of aquaporin protein channels found in human kidney nephrons, detailing the biological classification, molecular weight, and amino acid sequences of aquaporin-1 through aquaporin-4? | pass→fail | 27,044 | 42,920 | +59% | 1 | 1 | 0% | 3,837 | 8,389 | +119% | 0 | 0 | — |
▸case-21 We need a structural load calculation for a standard 6061-T6 aluminum cantilever beam measuring 2 meters in length with a 10 kN point load at the free end. Please calculate the maximum bending stress, maximum deflection, and safety factor using standard Euler-Bernoulli beam equations. | pass→pass | 25,097 | 33,209 | +32% | 1 | 1 | 0% | 5,123 | 7,354 | +44% | 0 | 0 | — |
▸case-22 Please summarize the published scientific research regarding how desert ants (Cataglyphis fortis) use celestial polarization patterns and path integration for desert navigation. | pass→pass | 20,673 | 23,676 | +15% | 1 | 1 | 0% | 2,643 | 3,566 | +35% | 0 | 0 | — |
▸case-23 Recommend standard off-the-shelf polymer materials suitable for injection molding consumer electronics enclosures that require UL 94 V-0 flame retardancy. | pass→pass | 19,211 | 24,041 | +25% | 1 | 1 | 0% | 2,796 | 4,317 | +54% | 0 | 0 | — |