Patent classifications
G01N2035/00445
Storage cassette for laboratory objects
A storage arrangement (1) has a chamber (3). Several Dewar flasks (5) are arranged in the chamber (3) and above them a picking device (8). The picking device has at least one cassette lift (60), with which storage cassettes (20) can be removed from above from the Dewar flasks (5). This arrangement is suitable for storing laboratory objects even at very low temperatures. Each storage cassette (20) is preferably made from a single piece of sheet metal. The piece of sheet metal is bent such that it forms the side walls (30), the back wall (32), the top part (34) and the base part (38) of the storage cassette (20), as well as angles (40, 42) to accommodate the laboratory objects.
Modular sample store
A modular sample store including a storage area; a service area; a transfer area; a motorized robot with a lifting device and at least one platform; and a controller. The sample store service area includes one integrally formed cubic vat module and the sample store storage area includes at least one integrally formed cubic vat module. Each one of the aforementioned vat modules includes an essentially horizontal vat floor and four joining vat walls that are connected to the vat floor and that are leaving an open vat space. The modular sample store also includes upper side walls and a cover plate to close the sample store. Each vat floor and vat wall includes an outside liner and an inside liner, which outside and inside liners in each case are separated by a clearance. This clearance is essentially filled with a polymer foam material that provides fixation of the outside and inside liners to each other as well as thermal insulation of and reinforcement to the thus integrally formed cubic vat module sandwich construction.
INSTRUMENT FOR ANALYZING BIOLOGICAL SAMPLES AND REAGENTS
An instrument for processing a biological sample includes a chassis. Connected to the chassis is a tape path along which a tape with a matrix of wells can be automatically advanced through the instrument, a dispensing assembly for dispensing the biological sample and a reagent into the matrix of wells of the tape to form a biological sample and reagent mixture, a sealing assembly for sealing the biological sample and reagent mixture in the tape, and an amplification and detection assembly for detecting a signal from the biological sample and reagent mixture in the matrix of wells in the tape.
Analytical instruments, methods, and components
Variable temperature analytical instrument heat exchanger components are provided that can include a conduit in thermal communication with at least one thermally discrete mass, the discrete mass being configured as a cold source to be coupled to a member to facilitate the transfer of thermal energy. Variable temperature analytical instrument components are also provided that can include: a first mass to be maintained at a first temperature; a first conduit in fluid communication with the first mass; and a second mass thermally connected to the first conduit, the second mass having a different temperature than the first mass. Methods for varying the temperature within variable temperature analytical instruments are also provided. The methods can include thermally coupling at least a portion of an exhaust fluid conduit with a first mass and using the first mass as a cold source.
Autosampler
An autosampler includes: a sample cooling unit that is brought into thermally contact with a bottom surface of a sample rack so as to cool a sample accommodated in the sample rack; a condensed water receiver that has at least one hole on a bottom surface thereof, and is provided below the sample rack for receiving water condensed around the sample rack; a discharging passage configured in such a manner that a droplet falling from the at least one hole flows therein.
Thermoelectric temperature controlled sample holder for biomedical analyzers
The present invention relates to the field of temperature monitoring and controlling apparatus, more particularly, relates to a thermoelectric temperature controlled sample holder for biomedical analyzers used for the processing of biological samples. Specifically, in biomedical research, samples of single cell suspensions are loaded into a biomedical analyzer, e.g. a flow cytometer for analysis. Some flow cytometers are equipped with multi sample loaders that hold for instance microtiter plates which can contain multiple, up to thousands of samples. Processing of all samples is done sequentially, sample after sample and may take several hours between the first to the last sample. Depending on the type of analysis it may be useful to maintain the samples at a defined temperature for example, to maintain viability and integrity of the sample or to keep biological processes running at physiological temperatures. The present invention allows to maintain the sample holder at definable temperatures between 3° C. to 70° C.
IMMUNOBLOTTING INSTRUMENT AND CONTROL METHOD FOR CONTROLLING THE SAME
An immunoblotting instrument and a control method are provided. The immunoblotting instrument comprises an immunoblotting instrument body, and an immunoblotting instrument control device, an incubation device and a liquid feeding and sucking device that are provided on the immunoblotting instrument body, and further comprises a temperature control device for controlling the incubation environment temperature of the immunoblotting membrane. By setting the temperature control device in the immunoblotting instrument to control the temperature of the reaction environment between the immunoblotting membrane and the reagent, the immunoblotting membrane can contact and react with the reagent under the same and set environmental condition, so that the reliability of the final detection results can be improved; at the same time, each functional module is associated and controlled by the control device, so that the entire immunoblotting process is automatically completed, reducing manual intervention and improving work efficiency.
SAMPLING ROBOT, ROBOT SYSTEM FOR GOODS SAMPLING AND DETECTION AND DETECTION METHOD
A sampling robot, a robot system for goods sampling and detection and a detection method are disclosed. The image collection unit takes photos of a sample. The refrigeration unit stores the sample at a preset temperature. The biometric information collection unit collects the biometric information of the operator. The intelligent mobile unit moves according to a planned path. The control unit provides destination information to the intelligent mobile unit and judges whether the current sample is a sample to be detected, and judges the biometric information of the operator.
Apparatus equipped with sample temperature control function
To suppress generation of dew condensation in temperature control space when heating temperature control is performed. In an apparatus, an air temperature control part for cooling or heating air in temperature control space has a first temperature control element for performing at least cooling of air, and a second temperature control element for performing at least heating of air downstream of the first temperature control element. In this manner, when heating temperature control is performed, cooling and dehumidification of air taken in from an air intake portion can be performed by the first temperature control element, and then heating of the dehumidified air can be performed by the second temperature control element.
LABORATORY SAMPLE DISTRIBUTION SYSTEM AND LABORATORY AUTOMATION SYSTEM
A laboratory sample distribution system is provided comprising: a number of container carriers, wherein the container carriers each comprise a magnetically active device and are adapted to carry a sample container; at least one fan being adapted to cause an airflow; and a number of transport modules, the transport modules being arrangeable adjacent to one another and respectively comprising: a transport surface being adapted to carry the container carriers; a number of heat dissipating electromagnetic actuators being stationary arranged below the transport surface, the electromagnetic actuators being adapted to move container carriers placed on top of the transport surface by applying magnetic forces to the container carriers; and an air guiding element being adapted to guide the airflow first towards an underside of the transport surface and afterwards towards the electromagnetic actuators.