Abstract:
The present invention is an electrochemical double layer capacitor (EDLC) series stack formed into a single electrolyte cell structure. The concatenated multiple electrode assembly stack has electrode assemblies electrically connected in series. The electrode assemblies have a double-sided activated carbon electrode formed on a current collector. Power tabs are connected to the end electrode assemblies. An electrolyte is also provided. A poly bag contains the electrolyte and the electrode assemblies. The electrode assemblies form a double-sided activated-carbon electrode on a current collector. The EDLC stack has a number of segments and mass free zones separating them. The segments are folded so that mass free zones are disposed at the apex of each fold.
Abstract:
A composition comprising an electrode or an electrical double-layer capacitor with dielectric material is disclosed, along with methods of making the composition. The present invention improves upon state-of-the-art electrodes and capacitors by coating a material of high dielectric constant onto the surface of the electrode to produce improved electrical properties. The composition is particularly useful for design of novel electrical double-layer capacitors.
Abstract:
In some embodiments, a system includes a battery and a capacitor bank. The battery is electrically coupled to a load device and is configured to supply power to the load device when the system is in a first configuration. The system is in the first configuration when a current requirement of the load device is less than a current threshold. The capacitor bank includes a plurality of capacitors and is electrically coupled to the battery when the system is in a second configuration. The battery and the capacitor bank are configured to collectively provide power to the load device when the system is in the second configuration. The system is in the second configuration when the current requirement of the load device is greater than the current threshold.
Abstract:
A method of manufacturing an electrode includes printing an electrode ink on a portion of a substrate using a rotary lithographic printer. The electrode ink is allowed to dry on the substrate. A separator material is printed on the portion of the substrate using the rotary lithographic printer. A sealant wall is printed around the portion of the substrate using the rotary lithographic printer.
Abstract:
A case structure generally includes a trough shaped base section, a positive end piece, a negative end piece, and a cover section. The trough shaped base section includes a bottom and two side wall members. The positive and negative end piece are disposed at opposite ends of the base section and include an electrically conductive material at least partially embedded within a thermoplastic material. The cover section is disposed on the base section for sealing the prismatic case. The base section and the cover section can be made from, for example, a polymeric material.
Abstract:
A method of manufacturing an electrode includes printing an electrode ink on a portion of a substrate using a rotary lithographic printer. The electrode ink is allowed to dry on the substrate. A separator material is printed on the portion of the substrate using the rotary lithographic printer. A sealant wall is printed around the portion of the substrate using the rotary lithographic printer.
Abstract:
In some embodiments, a system includes a battery and a capacitor bank. The battery is electrically coupled to a load device and is configured to supply power to the load device when the system is in a first configuration. The system is in the first configuration when a current requirement of the load device is less than a current threshold. The capacitor bank includes a plurality of capacitors and is electrically coupled to the battery when the system is in a second configuration. The battery and the capacitor bank are configured to collectively provide power to the load device when the system is in the second configuration. The system is in the second configuration when the current requirement of the load device is greater than the current threshold.
Abstract:
An electrode material composition for use in manufacturing energy storage device electrodes includes an active material, a conductive material including Ketjen Black, a binder comprising at least one of a polymer emulsion dispersed in water and a water-soluble polymer mixture, and a surfactant. The electrodes are manufactured by dry-mixing the active material and the conductive material to form a dry-mixed active material mixture. The drymixed active material mixture is then mixed with a binder solution to form a slurry and the slurry is coated onto a currently collector and dried to form an electrode.
Abstract:
An electrode material composition for use in manufacturing energy storage device electrodes includes an active material, a conductive material including Ketjen Black, a binder comprising at least one of a polymer emulsion dispersed in water and a water-soluble polymer mixture, and a surfactant. The electrodes are manufactured by dry-mixing the active material and the conductive material to form a dry-mixed active material mixture. The drymixed active material mixture is then mixed with a binder solution to form a slurry and the slurry is coated onto a currently collector and dried to form an electrode.