Picture this: a 220-pound athlete soaring through the air for a dunk, then landing with the grace of a falling feather. That’s the promise of ASICS’ legendary GEL cushioning – the same space-age technology that protects eggs dropped from three-story heights. Yet walk into any NBA locker room, and you’ll see a sea of swooshes and stripes rather than the familiar ASICS tiger stripes. What give
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Picture this: a 220-pound athlete soaring through the air for a dunk, then landing with the grace of a falling feather. That’s the promise of ASICS’ legendary GEL cushioning – the same space-age technology that protects eggs dropped from three-story heights. Yet walk into any NBA locker room, and you’ll see a sea of swooshes and stripes rather than the familiar ASICS tiger stripes. What gives?
Basketball’s unique demands create a technological tightrope walk:
Current GEL implementations excel at shock absorption but face challenges with energy return. ASICS engineers compare it to “trying to catch a waterfall in a net – you save the water but can’t throw it back up.”
While not yet mainstream in the NBA, ASICS’ basketball line reveals fascinating hybrid solutions:
The GEL-HOOP series employs strategic rear-foot cushioning clusters, reducing impact forces by 27% compared to standard EVA foam (per ASICS lab data). Think of it as airbags for your Achilles tendon.
ASICS’ signature guidance system now incorporates carbon-fiber inserts. This creates a “bow-and-arrow” effect – storing energy during foot strikes and releasing it during push-offs.
Before his New Balance deal, the two-time Finals MVP reportedly tested prototype GEL-infused basketball shoes. Insiders whisper about a “Goldilocks” dilemma – too much cushioning affected his trademark defensive slides, while too little aggravated existing lower-body injuries.
ASICS’ 2024 patent filings hint at future developments:
While NBA adoption remains limited, ASICS dominates other competitive spheres:
The final buzzer hasn’t sounded on ASICS’ NBA ambitions. As player load management becomes paramount and material science evolves, the day might come when GEL technology helps stars land safely – and jump higher – on basketball’s biggest stages.

There are two types of inverters used in PV systems: microinverters and string inverters. Both feature MC4 connectors to improve compatibility. In this section, we will explain each of them. . Planning the solar array configuration will help you ensure the right voltage/current output for your PV system. In this section, we explain what these. . Now, it is important to learn some tips to wire solar panels like a professional, below we provide a list of important considerations. . Up to this point, you learned about the key concepts and planning aspects to consider before wiring solar panels. Now, in this section, we provide you with a step-by-step guide on how to wire. [pdf]
At its core, a wiring diagram for solar panels shows the connection between the different components of a solar power system. This diagram illustrates how solar panels, charge controllers, batteries, and inverters are interconnected to ensure a seamless flow of electricity.
Connect the negative terminal of the first panel and the positive terminal of the second panel and connect to the corresponding terminals in solar regulator’s input. The solar regulator will detect the panels and start to charge the battery during sunlight. Wiring solar panels in parallel or series doesn’t have to be an either/or proposition.
Connecting PV modules in series and parallel are the two basic options, but you can also combine series and parallel wiring to create a hybrid solar panel array. Some solar panels have microinverters built-in, which impacts how you connect the modules together and to your balance of system. What Are They?
To connect solar panels in series, you need to wire a group of panels in line by connecting from positive to negative poles. This setup boosts the array’s voltage while maintaining the same amperage, allowing you to stack voltage output across your solar panel system.
Series wiring is typically done for a grid-connected inverter or charge controller that requires 24 volts or more. Solar panels are similar to batteries in that they have two terminals: positive and negative. A series connection is made by connecting the positive terminal of one panel to the negative terminal of another.
The entire string of series-connected modules is known as the PV module string. The modules are connected in series to increase the voltage in the system. The following figure shows a schematic of series, parallel and series parallel connected PV modules. PV Module Array To increase the current N-number of PV modules are connected in parallel.
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