A Houston-based fintech company has taken a huge step in the right direction for growth. Getty Images

Houston-based fintech company HighRadius Corp. has forged a partnership with Canadian conglomerate Thomson Reuters Corp. that will open up more markets for its enterprise software-as-a-service.

The partnership equips HighRadius to tap into the global network of Confirmation.com, a unit of Thomson Reuters. Confirmation's network features more than 1,000 banks. Credit managers at those banks will be able to use HighRadius' software to automate the credit process for online credit applications.

"This partnership will allow us to expand our credit inquiry solution to new markets," Mark Portanova, Confirmation.com's vice president of sales for the Americas, says in a release. "We will enhance workflows, reporting capabilities, and client authorization processes within the HighRadius platform. These measures will progress the traditionally slow, manual, and time-consuming credit approval processes … ."

HighRadius' AI-powered software is designed to streamline accounts-receivable and cash-management processes. For instance, HighRadius' Cash Application software relies on AI to comb through documents like emails and invoices to automatically match incoming payments with customers' accounts.

Sayid Shabeer, chief product officer at HighRadius, says the company's suite of product ultimately lets companies free up millions of dollars in working capital and reallocate employees' time to higher-value tasks.

Among HighRadius' customers are corporate heavyweights like healthcare giant Johnson & Johnson, apparel maker adidas, food company Danone, and Dr Pepper Snapple Group. In January, HighRadius reported it had passed the 350-customer mark last year and doubled the size of its European workforce.

"2018 was the year that the bets we've been making over the last few years started to pay off in scale," Sashi Narahari, founder and CEO of HighRadius, says in a release.

Among HighRadius' competitors are Billtrust, Rimilia Holdings, Cforia Software, and Financial National Information Services. The global market for credit management software is forecast to exceed $2.1 billion by 2022, up from $636.4 million in 2017.

HighRadius, founded in 2006, employs more than 1,000 people in North America, Europe, and Asia. Since its inception, HighRadius has raised more than $50 million from Philadelphia-based Susquehanna Growth Equity, and has collected strategic investments from banking behemoths Citi and PNC.

HighRadius recently hired Jon Keating as vice president and general manager of its Europe, Middle East, and Africa (EMEA) markets. Keating most recently was chief sales officer at San Francisco fintech company Taulia. Earlier in the year, the company tapped SaaS veteran Natalie Fedie as vice president of customer success to help propel its global growth.

"HighRadius continues to invest in talent across Europe and Asia to fuel its growth plans and keep ahead of the innovation curve," Shabeer says.

Last year, HighRadius moved its headquarters to 200 Westlake Park Blvd. in the Energy Corridor. More than 150 employees relocated there. HighRadius subleases the space from BP America.

"The expansion of HighRadius into the Katy area represents another high-tech company choosing to mature in our community," Lance LaCour, president and CEO of the Katy Area Economic Development Corp., said at the time. "HighRadius is projected to have an estimated regional economic impact of over $600 million over a five-year period."

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How Houston innovators played a role in the historic Artemis II splashdown

safe landing

Research from Rice University played a critical role in the safe return of U.S. astronauts aboard NASA’s Artemis II mission this month.

Rice mechanical engineer Tayfun E. Tezduyar and longtime collaborator Kenji Takizawa developed a key computational parachute fluid-structure interaction (FSI) analysis system that proved vital in NASA’s Orion capsule’s descent into the Pacific Ocean. The FSI system, originally developed in 2013 alongside NASA Johnson Space Center, was critical in Orion’s three-parachute design, which slowed the capsule as it returned to Earth, according to Rice.

The model helped ensure that the parachute design was large enough to slow the capsule for a safe landing while also being stable enough to prevent the capsule from oscillating as it descended.

“You cannot separate the aerodynamics from the structural dynamics,” Tezduyar said in a news release. “They influence each other continuously and even more so for large spacecraft parachutes, so the analysis must capture that interaction in a robustly coupled way.”

The end result was a final parachute system, refined through NASA drop tests and Rice’s computational FSI analysis, that eliminated fluctuations and produced a stable descent profile.

Apart from the dynamic challenges in design, modeling Orion’s parachutes also required solving complex equations that considered airflow and fabric deformation and accounted for features like ringsail canopy construction and aerodynamic interactions among multiple parachutes in a cluster.

“Essentially, my entire group was dedicated to that work, because I considered it a national priority,” Tezduyar added in the release. “Kenji and I were personally involved in every computer simulation. Some of the best graduate students and research associates I met in my career worked on the project, creating unique, first-of-its-kind parachute computer simulations, one after the other.”

Current Intuitive Machines engineer Mario Romero also worked on Orion during his time at NASA. From 2018 to 2021, Romero was a member of the Orion Crew Capsule Recovery Team, which focused on creating likely scenarios that crewmembers could encounter in Orion.

The team trained in NASA’s 6.2-million-gallon pool, using wave machines to replicate a range of sea conditions. They also simulated worst-case scenarios by cutting the lights, blasting high-powered fans and tipping a mock capsule to mimic distress situations. In some drills, mock crew members were treated as “injured,” requiring the team to practice safe, controlled egress procedures.

“It’s hard to find the appropriate descriptors that can fully encapsulate the feeling of getting to witness all the work we, and everyone else, did being put into action,” Romero tells InnovationMap. “I loved seeing the reactions of everyone, but especially of the Houston communities—that brought me a real sense of gratitude and joy.”

Intuitive Machines was also selected to support the Artemis II mission using its Space Data Network and ground station infrastructure. The company monitored radio signals sent from the Orion spacecraft and used Doppler measurements to help determine the spacecraft's precise position and speed.

Tim Crain, Chief Technology Officer at Intuitive Machines, wrote about the experience last week.

"I specialized in orbital mechanics and deep space navigation in graduate school,” Crain shared. “But seeing the theory behind tracking spacecraft come to life as they thread through planetary gravity fields on ultra-precise trajectories still seems like magic."

UH breakthrough moves superconductivity closer to real-world use

Energy Breakthrough

University of Houston researchers have set a new benchmark in the field of superconductivity.

Researchers from the UH physics department and the Texas Center for Superconductivity (TcSUH) have broken the transition temperature record for superconductivity at ambient pressure. The accomplishment could lead to more efficient ways to generate, transmit and store energy, which researchers believe could improve power grids, medical technologies and energy systems by enabling electricity to flow without resistance, according to a release from UH.

To break the record, UH researchers achieved a transition temperature 151 Kelvin, which is the highest ever recorded at ambient pressure since the discovery of superconductivity in 1911.

The transition temperature represents the point just before a material becomes superconducting, where electricity can flow through it without resistance. Scientists have been working for decades to push transition temperature closer to room temperature, which would make superconducting technologies more practical and affordable.

Currently, most superconductors must be cooled to extremely low temperatures, making them more expensive and difficult to operate.

UH physicists Ching-Wu Chu and Liangzi Deng published the research in the Proceedings of the National Academy of Sciences earlier this month. It was funded by Intellectual Ventures and the state of Texas via TcSUH and other foundations. Chu, founding director and chief scientist at TcSUH, previously made the breakthrough discovery that the material YBCO reaches superconductivity at minus 93 K in 1987. This helped begin a global competition to develop high-temperature superconductors.

“Transmitting electricity in the grid loses about 8% of the electricity,” Chu, who’s also a professor of physics at UH and the paper’s senior author, said in a news release. “If we conserve that energy, that’s billions of dollars of savings and it also saves us lots of effort and reduces environmental impacts.”

Chu and his team used a technique known as pressure quenching, which has been adapted from techniques used to create diamonds. With pressure quenching, researchers first apply intense pressure to the material to enhance its superconducting properties and raise its transition temperature.

Next, researchers are targeting ambient-pressure, room-temperature superconductivity of around 300 K. In a companion PNAS paper, Chu and Deng point to pressure quenching as a promising approach to help bridge the gap between current results and that goal.

“Room-temperature superconductivity has been seen as a ‘holy grail’ by scientists for over a century,” Rohit Prasankumar, director of superconductivity research at Intellectual Ventures, said in the release. “The UH team’s result shows that this goal is closer than ever before. However, the distance between the new record set in this study and room temperature is still about 140 C. Closing this gap will require concerted, intentional efforts by the broader scientific community, including materials scientists, chemists, and engineers, as well as physicists.”

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This article originally appeared on EnergyCapitalHTX.com.