Handheld Pipetting Device
The handheld pipetting device addresses the lack of ergonomic operation in existing devices by incorporating a touch-sensitive screen and customizable pipetting parameter sets, enabling efficient and intuitive task execution.
Patent Information
- Application Number
- JP2023544156
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-01-25
- Filing Date
- 2022-01-24
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2042-01-24
AI Technical Summary
Existing handheld pipetting devices lack an intuitive and ergonomic operating concept that allows for efficient and flexible configuration of automated or partially automated pipetting tasks, particularly in terms of pipetting parameters and user-defined scenarios.
A handheld pipetting device with a touch-sensitive screen and ergonomic design, allowing users to input parameter values for defining pipetting tasks, and an electrical control device to execute these tasks efficiently and ergonomically, featuring a graphical user interface that includes customizable pipetting parameter sets and intuitive operation modes.
Enables users to perform pipetting tasks with ease and efficiency, providing a seamless user experience by allowing for user-defined pipetting parameters and flexible operation modes, enhancing usability and reducing the learning curve for both novice and experienced users.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a handheld pipetting device, a system for exchanging data between the handheld pipetting device and an external device, and computer program code executable by the handheld pipetting device. [Background technology]
[0002] Such handheld pipetting devices are commonly used in medical, biological, biochemical, chemical, and other laboratories. They are used for transporting and transferring small fluid samples within the laboratory, particularly for accurate dispensing of samples. Two known types of such handheld pipetting devices differ in the physical principles of aspirating or dispensing liquids. Liquid dispensing is performed either by the air displacement principle or by the direct displacement principle. The first type of device is called an air displacement pipette, and the second type is called a direct displacement pipette.
[0003] Air-displacement pipettes use a piston-cylinder system to perform their measurements. An air layer separates the piston from the sample aspirated into the plastic tip. Sliding the piston upward generates negative pressure within the tip, causing the liquid to rise into the tip. The air layer displaced by the piston acts like an elastic spring, suspending the liquid volume within the tip. Handheld pipettes operating on the direct displacement principle use a tip with an integrated piston as a transfer container. During pipetting, this piston connects to the piston rod of the pipette and performs the actual dispensing process. In this case, the piston can displace the entire internal volume of the tip, so virtually no air layer forms between the aspirated sample and the end of the piston. Both types of pipettes, air-displacement pipettes and direct-displacement pipettes, are encompassed within the concept of piston-stroke pipettes.
[0004] Handheld pipetting devices can have manually driven or electrically driven piston systems. Electrically driven handheld piston stroke pipettes are often controllable by at least one pipetting program to perform at least one pipetting task in an automated or partially automated manner.
[0005] Handheld pipettes are designed to be used by a human user with one hand. However, there are also automated laboratory devices with robotized gripping arms whose gripping tools are configured to manipulate and move handheld pipettes, simulating the activity of a human hand.
[0006] In pipetting devices, the sample volume dispensed in one operation can correspond to the sample volume aspirated into the device. However, it is also possible for the sample volumes aspirated in response to multiple dispenses to be dispensed again in stages. Furthermore, a distinction is made between single-channel and multi-channel pipetting devices, whereby single-channel pipetting devices contain only a single dispense / aspirate channel, whereas multi-channel pipetting devices contain multiple dispense / aspirate channels, which in particular allow for the parallel dispense or aspiration of several samples.
[0007] The handheld pipetting device described within the scope of the present invention is a computer-controlled handheld piston-stroke pipette with a motorized piston, also referred to as a handheld electronic pipetting device or a handheld electronic piston-stroke pipette.
[0008] Examples of prior art handheld electronic air-displacement pipettes are the Explorer® and Explorer® Plus from Eppendorf (Hamburg, Germany), and examples of handheld electronic dispensers are the Multipet® E3 and Multipet® E3x from Eppendorf (Hamburg, Germany).
[0009] Electronic pipetting devices offer many advantages over non-electronic pipetting devices, as they can easily implement numerous functions. In particular, electronic pipetting devices facilitate the execution of program-controlled pipetting tasks by automating or partially automating them. Typical pipetting parameters for controlling such pipetting tasks by corresponding pipetting programs relate to the volume of liquid to be aspirated or dispensed, the sequence and repetition of these operations, and possibly time parameters for the timing of these operations. Electronic pipetting devices can be designed to operate in a single operating mode or in multiple operating modes. An operating mode can automatically query, set, and / or apply a set of one or more pipetting parameters of the pipetting device that affect or control the pipetting tasks of the pipetting device.
[0010] Handheld pipetting devices are known that use touch-sensitive screens to allow a user to input pipetting parameters, allowing the pipetting task to be performed in an at least partially automated manner.
[0011] European Patent Application EP 2814612 B1 describes a pipetting device with one or more touchscreens, where pipetting tasks are defined and controlled by the user substantially entirely by touch. The use of multiple touchscreens suggests the possibility of using such touchscreens, but whether a pipette so defined would be ergonomically usable is ultimately a matter of speculation. Summary of the Invention [Problem to be solved by the invention]
[0012] SUMMARY OF THE INVENTION It is an object of the present invention to provide a handheld pipetting device with an efficient and ergonomic operating concept. [Means for solving the problem]
[0013] The above-mentioned problem is solved in particular by a pipetting device according to claim 1. Advantageous configurations are the subject of the dependent claims and are also mentioned in the description.
[0014] The present invention provides a handheld pipetting device for pipetting at least one liquid sample, comprising: a connection for connecting at least one pipette container; an electrically controlled operating element for aspirating at least one sample into at least one pipette vessel, retaining the sample in the at least one pipette vessel, and expelling the sample from the at least one pipette vessel when performing a pipetting operation; a touch-sensitive screen for inputting parameter values of user-definable pipetting parameters, a parameter set of which completely defines a pipetting task; an electrical control device comprising data processing means programmed to control operating elements in response to at least one pipetting parameter; and at least one operating element that can be actuated by the finger pressure of a user, the actuation of which initiates a pipetting operation defined in accordance with a parameter set. Further features of the pipetting device according to the invention will become apparent from the following description and from the claims.
[0015] An advantage of handheld electronic pipetting devices (hereafter referred to as pipetting devices for short) is that these devices allow automated or partially automated pipetting tasks to be electronically configured. The challenge is to find an operating concept for such devices that provides the user with an intuitive, efficient and ergonomic working experience, while allowing for an overwhelming number of functions, configurability and programming. The inventors have developed operating concepts that solve this problem with several inventions, including the presently claimed invention.
[0016] In the following, when referring to an automated pipetting task, it always also refers to a partially automated pipetting task, unless the respective context indicates otherwise. The execution of an automated pipetting task always includes at least one user activity that triggers at least the automated pipetting task, typically by actuating an operating element of the pipetting device. A partially automated pipetting task of a particular application scenario may require the user to, for example, initiate a pipetting task divided into subtasks and also initiate the triggering of the subtasks by actuating an operating element. In certain embodiments of the pipetting device, an automated pipetting task of a particular application scenario can be defined by a set of pipetting parameters. These pipetting parameters are set by the user via operating means of the user interface means of the pipetting device and / or are taken over from default settings and / or loaded from memory before the automated pipetting task is started. Typically, the user interface of such embodiments of the pipetting device has a list of selection options, e.g., a control wheel or selectable fields on a touchscreen, by which so-called "operating modes" can be selected. An operating mode represents a specific application scenario, or in an operating mode, a complete set of pipetting parameters is selected that the user can set before starting the corresponding automated pipetting task, which then proceeds according to the pipetting program of this operating mode, designated as the operating program.
[0017] In a preferred embodiment, the pipetting device or data processing means is programmed to allow a user to manually define an automated pipetting task by selecting pipetting parameters, thereby defining in particular a set of pipetting parameters for the user-defined pipetting task (pipetting parameter set). This pipetting parameter set can partially or completely correspond to a specified pipetting parameter set for an operating mode. The pipetting parameters of a pipetting task preferably relate to or quantify the volumes pipetted during the steps of aspirating a sample into or expelling a sample from a pipette vessel connected to the piston-stroke pipette, optionally the sequence and repetition of these steps, optionally the time parameters of the temporal distribution of these tasks, in particular also the time variations of such tasks, in particular the speed and / or acceleration of aspirating or expelling a sample. In this embodiment, the automated pipetting task proceeds according to a pipetting program completely defined by these user-defined pipetting parameters.
[0018] The handheld pipetting device according to the invention is preferably designed to be used for performing at least one pipetting task according to at least one parameter set of at least one, or at least two, or at least three pipetting parameters, in particular in at least one predefined operating mode according to a predefined parameter set of the pipetting device or in a user-defined parameter set, wherein in one operating mode preferably one respective parameter set of pipetting parameters (pipetting parameter set) is provided, which pipetting parameters are optionally not selectable by the user or which are optionally at least partially selectable by the user and can be supplemented by further pipetting parameters.
[0019] A pipetting operation typically involves a pipetting program in which a specific sample volume is aspirated from a start vessel into a pipette vessel, in particular a pipette tip, connected to a piston-stroke pipette, and / or dispensed, in particular dispensed, into a target vessel. The pipetting operation can preferably be controlled by at least one, two, three, or preferably more pipetting parameters, which can influence or define the above-mentioned pipetting operation, or its functions or components, in a desired way.
[0020] Pipetting parameters for controlling pipetting operations preferably relate to or quantify the volume pipetted in the step of aspirating a sample into a pipette container connected to a piston-stroke pipette or in the step of expelling a sample from this pipette container, optionally the sequence and repetition of these steps, optionally the time parameters in the temporal distribution of these operations, in particular also the temporal variation of such operations, in particular the speed and / or acceleration of aspirating or expelling the sample or the number of pre-wetting steps, optionally the volume aspirated and expelled therein.
[0021] These pipetting parameters are preferably at least partly, preferably completely, selected and / or entered by the user, in particular via at least one operating element of the piston-stroke pipette or of the user interface means of the external data processing device.
[0022] A pipetting task can preferably be or is preferably uniquely defined by a set of pipetting parameters, which are preferably at least partly, preferably completely, selected and / or entered by a user, in particular via operating means of the pipetting device or an external data processing device.
[0023] However, it is also possible that a pipetting task is not uniquely defined by a pipetting parameter set, in which case the pipetting device is designed or the data processing means are programmed to automatically supplement the pipetting parameter set with at least one further pipetting parameter, in particular depending on the (selected) pipetting parameter. At least one pipetting parameter is not defined by the user, but can be specified and preferred by the pipetting device, for example because the pipetting parameter is known in advance and stored in a data memory or is automatically detected therein.
[0024] Preferably, at least one pipetting parameter is provided which defines the number of directly or indirectly successive pipetting volumes, preferably the number of aspiration and / or dispensing steps, preferably the respectively associated pipetting volumes, the respectively associated pipetting speeds and / or accelerations, and / or the respectively associated time intervals between steps.
[0025] Typical pipetting parameters that can be used for the manual definition of a user-defined pipetting task can be gleaned from the following description of a typical application scenario for an automated pipetting task.
[0026] A typical application scenario envisaged for a partially automated task with a pipetting device is the dispensing (abbreviated "DIS") of a volume aspirated into a pipette container (pipette tip or dispenser tip). For each partial dispense, e.g., dispensing a total of 1 mL of the entire sample from a pipette vessel into a total of 10 separate target vessels of a microtiter plate, the user positions the pipette device over a storage vessel containing the sample liquid to be dispensed, immerses the tip of the pipette vessel in the storage vessel, activates the operating element to aspirate an initial volume, activates the operating element to trigger a reverse stroke, whereby the system enters a defined initial position, positions the operating element over the first target vessel, activates the operating element to initiate the motorized dispense of a 0.1 mL dispensed partial volume, moves and positions the pipette device over the next target vessel of the microtiter plate, activates the operating element to again initiate the motorized dispense of a 0.1 mL dispensed partial volume, and repeats these manually performed sub-tasks (positioning, triggering) followed by the automated sub-task of motorized partial dispense of 0.1 mL sample (out of a total of 10 partial dispense steps) eight more times. The dispensed partial volumes are dispensed according to pipetting parameters, including one or more or all of the following pipetting parameters: total volume of sample dispensed, partial volume of sample dispensed and / or number of dispense steps to dispense equal partial volumes, sample aspiration rate and / or sample dispensing rate optionally deviating therefrom, reverse stroke volume, overstroke volume. The dispense function is particularly suitable for rapidly filling microtiter plates with reagent solutions and can be used, for example, to perform ELISA (enzyme-linked immunosorbent assay).
[0027] The application scenario preferably relates to the "automated dispensing" (ADS) of samples. The relevant operating parameters are preferably the amount of each individual sample in terms of the pipetting volume between one of several dispensing steps, the number of dispensing steps, the duration of the time intervals during which the dispensing steps are automatically performed one after the other at regular time intervals (the time intervals can define these time intervals or, for example, the delay between the end and start of successive dispensing steps), the rate at which one or more samples are aspirated, and the rate at which one or more samples are dispensed. This dispensing function is suitable for more convenient filling of microtiter plates, since the user does not have to repeatedly trigger the dispensing steps, for example, by pressing a key, and dispensing is time-controlled after starting the automatic dispensing. When executing an operating program belonging to such a pipetting parameter set, automatic dispensing can be performed under the condition that at least the operating element is operated without interruption, e.g., the corresponding program is executed while a key is held down. This is advantageous, for example, for long dispensing series or reactions, in which precise adherence to time windows is required. The automatic dispensing function is suitable for more convenient filling of microtiter plates. This is because the user does not have to trigger the individual ejection steps themselves, as they are done automatically, and can be used to perform ELISAs, for example.
[0028] The application scenario preferably concerns the "pipetting" (Pip) of a sample. Relevant pipetting parameters are in particular the volume of sample pipetted, the speed at which the sample is aspirated and the speed at which the sample is expelled.
[0029] The application scenario preferably concerns the "pipetting and subsequent mixing" (P / Mix) of samples. The relevant pipetting parameters are preferably the sample volume aspirated and / or dispensed, the mixing volume, the number of mixing cycles, the speed at which the sample is aspirated, and the speed at which the sample is dispensed. The "pipetting and subsequent mixing" function is recommended, for example, for pipetting very small volumes. When selecting a dispensing volume of less than 10 μL, mixing is recommended for each reaction. This is possible by automatically initiating a mixing operation after dispensing the liquid. The mixing volume and mixing cycles are predefined. An application of this operating mode is, for example, to dispense a dispensed liquid that is heavier than water due to its physical properties and to rinse any remaining liquid in the pipette container, especially the pipette tip, from the pipette container or pipette tip with the aid of a liquid already placed in a receiver. Another application would be to immediately mix the dispensed liquid with the liquid placed in the receiver. This operating mode is advantageous, for example, when adding DNA to a PCR mixture.
[0030] The application scenario preferably concerns the "multiple aspiration" of samples, also called "back-dispensing" or "ASP" for aspiration. The relevant pipetting parameters are preferably the volume of one or more samples to be aspirated, the number of samples, the aspiration speed, and the discharge speed. This function is used to aspirate a liquid volume multiple times and then discharge the entire volume. In this case, it is not intended to fill a pipette vessel multiple times in one operation. The speed is the same for all samples. In implementation, the following procedure is preferably followed: Starting from the basic position, the pipetting device aspirates a partial volume with each first-type actuation of the actuating means. After the last volume is aspirated, the pipetting device preferably issues a warning message, which the user must confirm, preferably with a second-type actuation of the actuating means. A subsequent second-type actuation of the actuating means again discharges the entire volume. The actuating means preferably has at least two actuating elements for the first or second type of actuation: one for inputting a "first-type" actuating signal to the control device and one for inputting a "second-type" actuating signal to the control device. The operating means may in particular have a rocker, which is swingable, in particular about an axis perpendicular to the longitudinal axis of the pipetting device, between a first signal trigger position ("rocker up") for a first type of operation and a second signal trigger position ("rocker down") for a second type of operation.
[0031] The application scenario preferably concerns the "dilution" (Dil) of a sample, also called "dilution." The relevant pipetting parameters are preferably the sample volume, the bubble volume, the diluent volume, the aspiration speed, and the discharge speed, respectively. Maximum diluent volume = nominal volume - (sample + bubble). This function is used to aspirate the sample and diluent, separating them with an air bubble, and then discharge the entire volume. The speed is the same for all partial volumes. In implementation, the following procedure is preferably followed: starting from the basic position, the pipetting device first aspirates the diluent volume, then the bubble, and finally the sample. Each aspiration is preferably triggered separately by a first type of actuation of the actuation means. The entire volume is then discharged in one go.
[0032] The application scenario preferably concerns the "sequential dispensing" (SeqD) of samples. The relevant pipetting parameters are preferably the number of samples (preferably a fixed maximum number Nmax, preferably 5≦Nmax≦15, preferably Nmax=10), the volume of each individual sample, the aspiration speed, and the discharge speed. This function is used to sequentially dispense a freely selectable maximum volume Nmax, and preferably no multiple filling of the pipette vessel is provided. The speed is the same for all samples. The number of samples is preferably the central parameter for inputting the individual volumes. When inputting the volume, the pipetting device must preferably always check whether the maximum volume of the pipetting device is not exceeded, and a warning message is issued if necessary. After all parameters have been input, the pipetting device aspirates the entire volume after the first type of operation of the operating means and discharges each individual volume after the second type of operation of the operating means. The remaining procedure is preferably similar to standard dispensing.
[0033] The application scenario preferably concerns the "sequential pipetting" (SeqP) of samples. The relevant pipetting parameters are preferably the number of samples (preferably a fixed maximum number Nmax, preferably 5≦Nmax≦15, preferably Nmax=10), the volume of each individual sample, the aspiration speed, and the discharge speed. This function is used for pipetting a freely selectable maximum volume Nmax in a fixed sequence that is programmed before the start. The speed is preferably the same for all samples. However, it is also possible to set the speed differently. The function sequence corresponds to the pipetting sequence. Pre-entered volumes are processed in a programmed sequence. After dispensing, by actuating an operating element, for example by pressing a key, it is decided whether to aspirate the next sample or whether to first "blow out" before the next sample, i.e., to ensure that all sample still contained in the pipette vessel is dispensed by an overstroke, and / or whether to replace the pipette vessel.
[0034] The application scenario preferably concerns the "reverse pipetting" (rPip) of samples. The relevant pipetting parameters are preferably the volume of the individual sample, the aspiration speed, the discharge speed, and the activation of a counter. In the "rPip" function, more than the dispense volume is aspirated. This is achieved by moving the piston downwards before the liquid is aspirated, i.e., by a second type of operation, for example by pressing a key or "rocker down," until it reaches the blowout lower position, i.e., the piston's overstroke position, which exceeds the piston's position in the pipetting stroke. When volumetric aspiration is initiated, the pipetting device aspirates the blowout volume and the set volume. To remove drive play in the discharge direction, the pipetting device performs an additional stroke, which is immediately discharged again. This is similar to dispensing, but preferably under automatic discharge of the waste stroke at maximum speed.
[0035] In the implementation of the application scenario "rPip," the following procedure is preferably followed: the piston of the pipetting device (or dispenser tip) automatically moves to the blowout section and stops in the downward position. Second, the first type of operation of the operating means is performed, and the piston moves upward by the blowout section and the stroke corresponding to the pipetting volume. Third, the second type of operation of the operating means is performed, and the piston moves downward by the stroke corresponding to the pipetting volume and stops just before the blowout. Fourth, two operations of the second type of operation are performed, and the piston performs the blowout and stops in the downward position. As an alternative to "fourth," the first type of operation of the operating means is performed, and the piston moves upward by the pipetting stroke. The "rPip" mode is particularly suitable for pipetting plasma, serum, and other liquids with a high protein content. The "Pipting" mode is particularly suitable for aqueous solutions. The "rPip" mode is particularly suitable for solutions containing a wetting agent, in order to minimize the generation of bubbles when dispensing into the target container. The liquid is aspirated, especially with an overstroke (blowout volume). In this case, the overstroke is not usually included in the discharge volume and is preferably not discharged into the target container. In particular, if the same sample is to be used again, the overstroke can remain in the tip. If another liquid is to be used, the overstroke and / or the pipette container are preferably discarded.
[0036] The pipetting parameter set preferably controls an operating program, in particular a control program, for carrying out a particular desired pipetting task, which may be in the form of an electrical circuit of a control device and / or by executable program code suitable for controlling a program-code-controllable, preferably programmable, control device.
[0037] The pipetting device or the external data processing device is preferably designed to automatically check the values of the pipetting parameters entered by the user (pipetting parameter values) and compare them with the acceptable ranges for the respective pipetting parameters. If the pipetting parameter values entered by the user are outside the acceptable ranges, the input is not accepted and a warning is given on the screen and / or acoustically, or a default value is set, which may be for example a minimum or maximum value or the last accepted input value, or an automatically corrected value is used.
[0038] The pipetting device preferably comprises at least one touch-sensitive or non-touch-sensitive screen and / or a number of display pages (also called "screens"), preferably at least some of which are predefined and stored in the pipetting device in the form of display page data, which can be displayed on one screen or distributed across several screens, preferably full-screen. The screen surface is preferably substantially rectangular, possibly even square. In the case of a non-square rectangle, it is particularly preferred that the short sides of the rectangle are arranged perpendicular to the longitudinal axis A of the pipetting device. This allows for longer lists of items one above the other, in particular rows. In the case of a non-square rectangle, it is also particularly preferred that the long sides of the rectangle are arranged perpendicular to the longitudinal axis A of the pipetting device. This allows for longer lists of juxtaposed items, in particular columns.
[0039] The data processing means are preferably programmed to display a graphical user interface (GUI) on the screen. In the following description of the GUI, the phrase "the data processing means are programmed to..." will be omitted and only the GUI and its functional form will be described, which always means that the data processing means are programmed to implement the corresponding GUI and its functional form. This implementation is a routine task for those skilled in the art.
[0040] The GUI includes functionalities, data processing means, and is accordingly programmed to display on the screen at least a screen (in particular a "home screen") in which the pipetting parameters of a parameter set of pipetting parameters are displayed. The data processing means is thus programmed to display on the screen a screen in which the pipetting parameters of a parameter set of pipetting parameters are displayed. The expression "the pipetting parameters are displayed on the screen" means that the currently set values of the pipetting parameters are displayed on the screen. Furthermore, a description of the pipetting parameter may be displayed, in particular a text description, a characteristic pictogram, or, if applicable to the pipetting parameter, the physical unit of the amount described by the pipetting parameter, e.g., "μL" for volume. However, even if there is no description on the screen, a person skilled in the art can know or learn from the context to which pipetting parameter the displayed value is assigned.
[0041] In particular, the data processing means is programmed to display a start screen, also known as a home screen (similar to the homepage in an Internet browser). Preferably, multiple user inputs to the GUI are returned to this home screen. This home screen can advantageously display the complete parameter set for a pipetting task, either user-defined or retrieved from a pre-saved application scenario, and can be used to set the relevant pipetting parameters. The home screen is displayed in particular immediately after switching on the pipetting device, although it can also be preceded by a purely informative page, e.g., a company logo, information about the device, etc. Switching on can be achieved by the user activating the display or an operating element, or by sensor measurements, such as acceleration, motion, or proximity sensors. Such a home screen has proven to be central to the intuitive understanding of the operating concept of the pipetting device for the user.
[0042] The home screen preferably displays the pipetting parameters of the currently active parameter set as standard selection (=default selection). Furthermore, the data processing means may in particular be programmed to perform one or more or all of the following displays for the home screen: After powering on the pipetting device, the pipetting parameters of the basic parameter set are displayed. After powering on the pipetting device, the pipetting parameters of the last configured basic parameter set are displayed. After switching on the pipetting device, the pipetting parameters of the basic parameter set that were last set and also at least partially or completely executed, or that were set but not executed, are displayed. After a predetermined period of inactivity of the pipetting device (especially after a standby mode, if present), the pipetting parameters of the basic parameter set are displayed. This basic parameter set is the set of pipetting parameters that is displayed especially after the pipetting device is turned on. "Inactive" means that the device has not detected any user activity or display touch and / or that sensors (accelerometers, motion sensors, proximity sensors, etc.) optionally present in the pipetting device have not detected any user movement and / or approach for a predetermined period of time, predefined according to factory settings or defined by the user. The standby mode can be automatically activated after a predetermined period of inactivity. After a certain period of inactivity of the pipetting device (especially if there is a standby mode), the pipetting parameters of the last set basic parameters are displayed. After a certain period of inactivity of the pipetting device (especially after a standby mode, if present), the pipetting parameters of the basic parameter set that were last set and also at least partially or completely executed, or that were set but not executed, are displayed.
[0043] The screen preferably comprises at least one first input tile displaying the value of at least one or exactly one first pipetting parameter of a parameter set, in particular a basic parameter set, defining a pipetting task, in particular a basic pipetting task. The number of input tiles displayed on the screen preferably corresponds to the number of pipetting parameters of the parameter set. The basic parameter set preferably comprises at least one or exactly one pipetting parameter, preferably at least one or exactly two pipetting parameters, preferably at least one or exactly three pipetting parameters, preferably at least one or exactly four pipetting parameters, preferably at least one or exactly five pipetting parameters, preferably at least one or exactly up to ten pipetting parameters, or more. In particular, the data processing means is programmed to start a pipetting task associated with the pipetting parameter set when the user activates one, in particular any operating element, on the displayed screen or on the home screen.
[0044] Preferably, touching an input tile on the screen, in particular the first input tile, opens an input interface that allows the user to enter values for the associated pipetting parameters, in particular the at least one first pipetting parameter.
[0045] An input tile means a marked input area on the screen displayed on the touch screen. Touching it represents an input, and as a result of the touch, the programming preferably starts a series of operations, especially the display of the input interface. The detection range evaluated as an input to this input tile by the control program can be different from the marked surface, for example, it can be larger, but the marked surface, that is, the visible input tile, preferably corresponds to the detection range. If the detection range is larger than the marked surface, touches at inaccurate positions are also detected as inputs. If the detection range is smaller than the marked surface, the user is trained to touch the input tile at an accurate position, and the interval between adjacent input tiles can be reduced without increasing the number of touches at inaccurate positions, enabling more efficient utilization of the surface available for input / output. Such tolerances are allowed or promote user satisfaction as long as they do not touch the detection ranges of other input tiles or other input fields on the screen. The visible input tile is preferably a substantially rectangular area because the surface existing for input and output can be most efficiently utilized due to the fact that the display is substantially rectangular. However, such an area can also be otherwise, for example, hexagonal, circular segment, polygonal and / or rounded. The width b of the input tile, especially when viewed perpendicular to the longitudinal axis A passing through the pipette device, preferably extends over a portion X of the full width B of the screen. Here, preferably 0.8 < x < 1, preferably 0.9 < x < 1, preferably 0.95 < x < 1. The larger width of the input tile simplifies the input. In this case, it means that b = B * x.
[0046] Preferably, the background of the input tile is light, in particular white, and the information shown thereon is dark, in particular blue or black. However, it is also possible for the background to be dark and the information to be light, e.g., in a night mode of the display. Preferably, there is sufficient contrast with the background to make the information legible to the user in all normal lighting conditions, from darkness to direct sunlight. The pipetting device preferably includes a light-sensitive photosensor. The control device, in particular the data processing means, is preferably configured or programmed to maintain a predetermined relationship of the screen brightness to the light intensity received from the photosensor. This may mean increasing the screen brightness when the intensity of external light increases and decreasing the screen brightness, in particular, when the intensity of external light decreases. However, the screen brightness may also be constant, in particular pre-specified at the factory, automatically adjustable depending on other parameters, e.g., depending on the loaded application scenario or the loaded user profile, and / or adjustable by the user.
[0047] The screen, in particular the home screen, preferably has at least one input field, by touching which the user can select at least one second pipetting parameter. To realize such input possibilities, several advantageous solutions have been found in the present pipetting device. In a first solution, the input field is a marked area on the edge of the screen, in particular the home screen, in particular on the lower or upper edge, and is preferably arranged so as not to interrupt the list of input fields displayed there. The special position of this input field relative to the input tile displayed therein clarifies a special function, namely, opening a new screen (also called a "selection screen") for selecting and / or rejecting new pipetting parameters to be added (or rejected) to the current parameter set. After closing the selection screen, at least one selected pipetting parameter is added to the current parameter set and displayed on the screen. In a second solution for selecting / rejecting pipetting parameters, the screen has a size, in particular a length or width, that exceeds the display surface available on the screen for displaying the screen. This initially invisible area of the screen can be provided with input tiles, each of which contains in particular a value or information describing the value of a pipetting parameter belonging to the input tile, for example a switch indicating "on / off" of a particular pipetting parameter, in particular "on / off" of the function represented by this pipetting parameter.
[0048] A screen may be larger than the display surface available on the screen for displaying it. In this case, the screen may be scrollable, for example vertically. However, the screen may also be flipped by tapping on a screen area or by swiping the screen. This basically involves flipping the displayed content by the known input gesture "swiping", i.e., displaying a screen area that continues below, above or to the side of the currently displayed screen area.
[0049] The term "selection" refers in particular to the activation of a pipetting parameter from a predetermined total of pipetting parameters that can be stored in the data storage device of the pipetting device. Activating a pipetting parameter may result in the pipetting parameter being added immediately to the current parameter set, although a confirmation dialog may intervene to allow the user to confirm or prevent this addition. "Rejection" is therefore defined as the deactivation of the activated pipetting parameter and the corresponding modification of the user-defined user parameter set.
[0050] The data processing means is preferably programmed to perform the following operations after detecting this user-operated selection of the pipetting parameter, in particular the second pipetting parameter: At least one, in particular a second, pipetting parameter is added to at least one first pipetting parameter of a parameter set, in particular a basic parameter set, to define a pipetting parameter of a user parameter set that defines a user-defined pipetting task. The selection of this at least one second pipetting parameter is displayed to the user on a screen, in particular on the home screen.
[0051] It is considered an independent invention if the data processing means of the pipetting device is programmed to display a graphical user interface (GUI) on a screen, where the GUI includes at least the following: a screen, in particular a home screen, on which pipetting parameters of a parameter set of pipetting parameters are displayed, the screen comprising at least one first input tile displaying a value of at least one first pipetting parameter of a parameter set, in particular a basic parameter set, defining a pipetting task, in particular a basic pipetting task, which when touched opens an input interface allowing a user to input a value of the at least one first pipetting parameter; the screen has at least one input field, in particular a touched input field allowing a user to select at least one second pipetting parameter; the data processing means, after detecting this user selection, is programmed to add the at least one second pipetting parameter to the at least one first pipetting parameter of the parameter set, in particular the basic parameter set, to form pipetting parameters of a user parameter set defining a user-defined pipetting task with the at least one first pipetting parameter; and the selection of the at least one second pipetting parameter is displayed to the user on the screen, in particular the home screen.
[0052] The present invention represents a particularly advantageous aspect of an innovative operating concept for a pipetting device. Based on user surveys, the inventors have recognized that for a significant number of users, a more efficient workflow can be achieved by supplementing existing, e.g., proven or basic, parameter sets with pipetting parameters, i.e., functions or features, using a pipetting device in which the user defines the desired pipetting tasks largely according to their own wishes. This approach clearly optimally and efficiently achieves the goal of defining the pipetting steps desired by the individual. In particular, if basic parameter sets are provided on the screen, especially the home screen, and can be immediately executed, a successful operating experience can be achieved immediately, eliminating the need for lengthy learning of operating instructions. After a short learning curve, the user can overview the list of possible pipetting parameters, thereby more efficiently utilizing the advanced capabilities of the electronic pipetting device. This applies in particular to a large group of users who, with known prior art pipetting devices, have difficulty mastering the existing, more or less complex operating modes that represent their application scenarios and are therefore content with the simplest operating modes. This novel concept provides a learning curve for inexperienced users while offering complete flexibility for experienced users.
[0053] It should be noted that the above measures for defining user parameter sets do not exclude that other, in particular more complex, parameter sets intended for selection by the user can also be provided, for example by means of a separate screen, such as parameter sets saved by the user representing predefined application scenarios, or automatically saved parameter sets from a list of previously applied parameter sets (this list is also called parameter set history), or parameter sets that have been statistically executed most frequently, or a favorites list of parameter sets determined by the user.
[0054] Such other screens are part of the GUI and are preferably displayed on the screen, like all other screens, in accordance with a program or program code, in particular an operating program or control program, stored in a data storage device. Examples of such screens, which are preferably part of the GUI, are:
[0055] Preferably, a favorites screen is provided, which displays, in particular, a list of one or more, optionally limited to a maximum total number M1, pipetting parameter sets that have been previously created by the user or loaded by the user from other screens, and that the user has marked as favorites using an input option, for example by touching an input field that may be provided in a menu bar and / or navigation bar, in particular located on the edge of the screen, in particular an input field with a star emoji or other appearance.
[0056] Preferably, a history screen is provided, displaying one or more, optionally limited to a maximum total number M2, of pipetting parameter sets, each of which is formed by pipetting parameter sets that have been specifically executed in the past, and specifically automatically saved, simulating a previous pipetting operation.
[0057] Preferably, a program setting screen is provided, in which one or more pipetting parameter sets, optionally limited to a maximum total number M3, are specifically listed and displayed. These pipetting parameter sets are created by user programming. This programming can be performed, in particular, on the programming screen, where the user, according to a modular system, compiles program steps step by step from a predetermined sequence of pipetting operations definable by pipetting parameters, these entries being automatically checked for consistency, in particular by a control program or other program, from which corresponding programmed pipetting parameter sets are created and added to the program setting screen, in particular according to the user's specifications, and thus specifically saved. Programming can also be performed in an external data processing device, in which case the externally created and programmed pipetting parameter sets are transferred to the pipetting device by the pipetting device's communication means. Programming is carried out using a programming (marking) language implemented in the pipetting device, which can be adequately prepared by a person skilled in the art, in particular by means of input fields, text descriptions and pictograms which are optionally selectable in the GUI and which the user joins step by step; however, preferably, a programming (marking) code is generated by a recorder function which can again be edited by the user, in particular on the programming screen.
[0058] Preferably, an automatic programming screen is provided, in which one or more sets of pipetting parameters, optionally limited to a maximum total number M3, are specifically listed and displayed. These sets of pipetting parameters are derived automatically, i.e., substantially without user intervention, from pipetting parameters and / or setup steps of a pipetting operation previously manually set and executed by the user using the recorder function of the pipetting device, and are specifically stored in a data storage device. Typically, this recorder function is triggered by the user touching an input field in the GUI that defines the start of recording the recorder function, and specifically, this recorder function is terminated by the user touching an input field in the GUI that defines the end of recording the recorder function. To create the steps of a desired pipetting program, starting from a home screen with any desired pipetting parameters, values of these pipetting parameters are specified, and operating elements are operated to aspirate or dispense sample volumes in the desired manner. In this case, simulating or not simulating means that the motorized operating elements preferably cannot move after actuation of the operating elements, or preferably can move. This "teach-in" feature of the recorder function allows the user to create and save relevant pipetting parameter sets while adjusting their pipette and performing pipetting, without the user having to deal with the programming (marking) language implemented in the pipetting device. However, the recorder function preferably generates programming (marking) code that is again editable by the user, particularly on the programming screen.
[0059] Preferably, a scenario screen is provided, in which one or more pipetting parameter sets, optionally limited to a maximum total number M3, are specifically listed and displayed. These pipetting parameter sets are specifically provided by the manufacturer. These pipetting parameter sets can define one or more or all of the application scenarios mentioned at the beginning. The selection of the corresponding pipetting parameter set is performed by touching the input field or input tile that represents the corresponding application scenario and is labeled with the corresponding abbreviation.
[0060] The pipetting parameters selected in one of the above screens can be represented by input fields, in particular input tiles. By touching an input tile, the user can make the corresponding pipetting parameter set the active pipetting parameter set, which will then be displayed on the (main) screen according to the claims, in particular the home screen, or on a separate screen. Transferring a pipetting parameter set directly to the central screen, in particular the home screen, is also called quick selection. When transferring to a separate screen, in particular input options are provided to create a new program with the pipetting parameters of the selected pipetting parameter set, to edit the pipetting parameter set, and to delete this pipetting parameter set or its components.
[0061] The above numbers M1, M2, M3, M4, M5 may in particular be selectable or may be fixedly designated, for example, as any number between 1 and 50, in particular between 2 and 30, in particular between 5 and 25, respectively.
[0062] The basic parameter set may include three pipetting parameters, in particular the volume V, the speed v (a two-component vector parameter of aspiration / dispensing), and the number n of repetitive steps (of this aspiration or dispensing). The volume is in particular the volume aspirated into or dispensed from the pipette vessel in one aspiration and / or dispensing. For the volume, information about the physical unit, e.g., mL or μL, is preferably also displayed in the input tile. The speed is in particular a vector value containing two pieces of semantically related information related to the pipetting speed: the speed at which liquid is aspirated into the sample vessel and the speed at which it is dispensed from the sample vessel. The numerical value belonging to the speed may be proportional to the speed of the liquid exchanged between the pipette vessel and the surroundings (alternative: non-proportional relationship). The speeds selectable by the user may be specified by speed levels represented, for example, by ordinal numbers such as 1...10 or letters such as letters A...J or other symbols. In this case, level 4 does not necessarily represent twice the speed of level 2, but it could. A set of basic parameters is selected to define a pipetting task that can be performed, especially as in the example above (V, v, n).
[0063] The input field is preferably provided as an additional button, in particular a unique input field designed as an additional button with a different shape and / or color scheme and / or background color from the input tiles displayed on the screen and / or located on the edge of the screen. Touching the special button preferably replaces the screen, in particular the home screen, and displays as an overlay a selection screen, in particular a predefined selection of available pipetting parameters, i.e. stored in the data storage device, in the form of a selection list, which contains information about selectable secondary pipetting parameters, in particular an overview (for identifying the content of the pipetting parameters), from which the user can select at least one secondary pipetting parameter.
[0064] Preferably, after the selection of the at least one second pipetting parameter is completed, the selection screen or selection list is closed and a screen, in particular a home screen, is displayed again. This screen now displays, in addition to the at least one first input tile, at least one second input tile, which contains the selection and / or value of the at least one second pipetting parameter or information about the at least one second pipetting parameter representing this value. The expression "at least one first input tile" particularly means that, for example, exactly three "first input tiles" may be provided, so that the possibly additional "at least one second input tile" may be the fourth of the four input tiles now displayed.
[0065] Preferably, if at least one second pipetting parameter can take on user-selectable values, touching at least one second input tile within the selection screen / selection list or after the selection screen / list has been closed opens an input interface allowing the user to input values for the at least one second pipetting parameter.
[0066] According to a second solution for selecting another pipetting parameter for a current parameter set, a group of N≧1 input fields, in particular input tiles, is preferably displayed on the screen, in particular as a scrollable or swipeable list of input tiles, each of which is assigned information, in particular a summary, a pictogram and / or physical units, about a second pipetting parameter selectable using the input field.
[0067] Preferably, after user selection of at least one second pipetting parameter from the N input fields, the selection and / or value of the at least one second pipetting parameter or information representing this value is displayed.
[0068] Preferably, if at least one second pipetting parameter can take on user-selectable values, touching at least one second input tile now displayed on the screen / home screen allows the user to input a value for at least one second pipetting parameter.
[0069] Preferably, the data processing means is programmed to display on the screen a screen, in particular a home screen, comprising at least one first input tile displaying the value of at least one first pipetting parameter, which, when touched, opens an input interface allowing the user to input the value of the at least one first pipetting parameter.
[0070] The input interface is preferably a screen area displaying a numeric keypad, the numeric keys of which are individually touchable and can be used by the user to enter a numeric sequence defining the value of at least one first pipetting parameter. The screen area can be a screen area of a new screen that replaces the current screen. The input interface can also include a scrollable selection list or other input selectable field with possible values or other information, e.g., an input roller, or a parallel display of multiple possible selectable values. Preferably, the input interface has an input field in which a previously made change of value is confirmed by the user. Preferably, the input interface has an input field in which the input or value setting is aborted and the screen, in particular the home screen, is returned to. Preferably, the input interface, preferably the screen, in particular the home screen, has an input field that, when touched, removes again from the parameter set a pipetting parameter last added by selection, in particular at least one second pipetting parameter, or undoes the last change made to the value of the pipetting parameter ("undo" function), or resets the parameter selection to a default selection, in particular the basic parameter set.
[0071] The input interface may have, in particular, a numeric field, at least one selection input field for selecting from a list, in particular a pull-down menu, at least one selection hole (picker wheel), and other means for touching the screen to change the numerical values of parameters, in particular pipetting parameters.
[0072] Preferably, the data processing means displays information on a screen if the values of the pipetting parameters entered by the user via the input interface are not acceptable, and preferably At least one correction button is displayed, which, when touched, automatically performs at least one correction operation instead of the value entered by the user, and these correction operations are The unacceptable values are automatically replaced with acceptable values, At least one alternative pipetting parameter to the above-mentioned pipetting parameters is selected, in particular populated with a user value or other suitable value, It may include a configuration in which the user's input is cancelled and in particular the input is allowed again; and / or An error message is output, and / or Changes to the previously active value are ignored and the previously active value is maintained. and / or · Other incombinable pipetting parameters representing incombinable functions are programmed to be automatically rejected.
[0073] Preferably, the data processing means are programmed to display on the screen a screen, in particular a home screen, comprising a list of substantially rectangular input tiles, in particular arranged one above the other and in particular extending substantially over the entire screen, in this way making optimum use of the available surface and ergonomic operation.
[0074] Preferably, the data processing means is programmed to display on the screen a start screen (home screen), in particular a screen for displaying pipetting parameters of a parameter set of pipetting parameters, which is replaced by a second screen by a horizontal or vertical swipe gesture and by a third screen by a horizontal or vertical swipe gesture, although this does not exclude that starting from the second or third screen another screen can be displayed by another swipe gesture.
[0075] Preferably, the data processing means is programmed such that the second screen comprises a list of input fields, each input field having an abbreviation, and that touching an input field loads a predetermined parameter set defining a predetermined pipetting task, and in particular that after touching this input field a screen different from the start screen is displayed, or alternatively the start screen is displayed again with an input tile for the predetermined parameter set.
[0076] Preferably, at least one screen is provided that provides the following special functions of the pipetting device: a target volume pipetting parameter is required, which can be entered or changed via an input field; by successively operating the operating element, liquid is aspirated into the pipette container until the target volume is reached; also or alternatively, a special function is optionally provided for dispensing a target volume of liquid; by successively operating the operating element, liquid is dispensed from the pipette container until the target volume is reached. By mimicking the functional form of a conventional mechanical pipette in this way, the user has a certain degree of additional control, e.g., by briefly interrupting the pipetting operation and, in particular, pipetting in a more controlled manner.
[0077] Preferably, the data processing means is programmed such that the third screen comprises a list of input fields, each having an abbreviated name, and that touching an input field loads one of the following sets of parameters: A set of historical parameters that define historical pipetting runs that have been used and automatically saved; a set of parameters representing a specific predefined application scenario; Parameter sets, which are parameter sets saved by the user; The statistically most frequently executed parameter set, parameter sets belonging to a favorite list of parameter sets determined by the user, Parameter sets created by programming by a user or automatically created by a recorder function of the pipetting device implemented by program code (which may in particular be part of the control program of the pipetting device) from individual setting steps manually set by a user or from pipetting operations performed, In particular, after touching this input field, a screen other than the start screen is displayed, or alternatively the start screen is displayed again with input tiles for a predetermined set of parameters.
[0078] The screen (also called a "display") is a touch-sensitive screen (also called a "touch screen"). It is preferably a color display.
[0079] A touchscreen can function as an input medium, and a non-touch-sensitive screen can function as an output medium for at least outputting information, or as an input medium in combination with one or more operating elements arranged next to the screen, in particular if the screen area provides information about the function of the respective operating element, in particular designed as so-called soft keys which can perform variable functions.
[0080] The screen is preferably essentially rectangular. The use of substantially rectangular input tiles and / or rectangular information fields displayed on the screen allows optimal utilization of the screen surface.
[0081] The screen is preferably substantially flat, allowing the user to select the least reflective orientation angle relative to the light source in the laboratory for operation, thereby improving readability, whereas a curved screen captures and reflects light from a wider solid angle to the user's eyes.
[0082] Preferably, the flat screen is flush with the flat surface of the front of the housing on which it is located, which makes it easier to touch the touch screen, especially in areas close to its edges, when the periphery of the touch screen is protected by the front of the housing.
[0083] Preferably, according to a particular inventive embodiment of the operating concept, the data processing means is programmed to display on the screen a view, in particular an output view, which includes a separate input area, also called a special button, which, when touched, closes the output view and displays an input view or other view on the screen, which may also allow editing of parameter values contained in the pipetting parameter set. Furthermore, touching the special button may also cause the ongoing pipetting operation to be aborted, which abortion may have to be confirmed by the user with a safety response. Once the entire pipetting operation is complete, the input view is displayed again instead of the output view, without the need to touch a special button. Information about previous / next successful pipetting operations may still be output. If a pipetting sequence ("run") has already started, it is not necessary to return to the exact previous input view with the special button, e.g., to quickly adjust only the speed. It may also be possible that, after a pipetting operation has started, not all parameter values can be changed / modified, but only certain parameter values of the current pipetting parameter set can be changed / modified.
[0084] The distinction between the input mode ("SETUP") represented by the input screen and the output mode ("RUN") defined by the output screen makes it possible to prevent accidental changes to parameter values, especially while the "RUN" mode is in progress, which could invalidate the experimental work and cause significant loss of value. On the other hand, switching from the "SETUP" mode to the "RUN" mode by operating the operating elements is very comfortable and intuitive for the user, which also contributes greatly to ergonomics and an efficient workflow. The distinction between the input screen and the output screen can be made by one or more of the following definitions. The definitions each particularly preferably relate to the state of the pipetting device in which a pipetting operation has been initiated and the electronically controlled operating elements are in motion. The definitions may not be applicable if there is a state of the pipetting device in which a pipetting operation has been initiated and the electronically controlled operating elements are not in motion. This allows, for example, in a multi-step pipetting operation, the possibility of displaying an output screen after the completion of a pipetting operation or a sub-step of a multi-step pipetting operation, allowing the modification of pipetting parameters of a parameter set, but preferably not all pipetting parameters of the parameter set that were modifiable in a previously displayed input screen, in particular in an input screen displayed just before the start of a pipetting step. For example, in a multi-step pipetting operation, it may be useful to allow the user to modify one or more individual pipetting parameters, in particular pipetting parameters that do not have a significant impact on the success of the ongoing pipetting operation. The aspiration and / or discharge speed (also called pipetting speed) may be such pipetting parameters, the modification of which does not necessarily change the result of the pipetting operation and can therefore be adapted to the user's needs, either midway or during a completed sub-step of the pipetting operation. Possible definitions include:
[0085] Preferably, the output screen, rather than the input screen, has an input field called an add button, which, when touched, closes the (output) screen and causes this or another input screen to appear on the screen.
[0086] If an output screen has a special button, it is clear that the input screens, especially the home screen, do not have a special button, since the special button is defined as closing the output screen and therefore must currently be displayed.
[0087] Preferably, the input screen, but not the output screen, has an input field called an add button, which, when touched, allows the user to subsequently modify the pipetting parameters of the parameter set displayed on the input screen. Preferably, the input screen, but not the output screen, has an input field called an add button, which, when touched, causes an output screen to be displayed showing a predefined selection of pipetting parameters available, i.e., stored in the data storage device, in the form of a selection list, which contains information about selectable secondary pipetting parameters, in particular a summary (for identifying the content of the pipetting parameters), from which the user can select at least one secondary pipetting parameter. Here, a "first pipetting parameter" is understood to be one already previously displayed on the input screen, and a "second pipetting parameter" is understood to be one that is added to the first pipetting parameter.
[0088] Preferably, the input screen, rather than the output screen, has input fields that display the pipetting parameters, in particular their numerical values, and when touched, an input interface opens that allows the user to change the value of the displayed pipetting parameter immediately, i.e., without any substantial delay, in particular without the need for a further user action.
[0089] Preferably, the output screen and / or another output screen displayed subsequently to the output screen does not have the possibility to change the pipetting parameters previously displayed in the input screen and modifiable by input, in particular more than half of them, in particular all of them. Preferably, the output screen and / or another output screen displayed subsequently to the output screen does not have the possibility to change the total number or a part f (in particular f>3 / 4 or f>2 / 3 or f>1 / 2 or f>1 / 3 or f>1 / 4) or at least one of the pipetting parameters previously displayed in the input screen and modifiable by input.
[0090] Preferably, the output screen and / or another output screen displayed subsequently to the output screen does not have the possibility, in particular the possibility to change, in particular directly and / or indirectly, at least one predetermined pipetting parameter previously displayed in the input screen and modifiable by input, in particular an input field, said at least one predetermined pipetting parameter being preferably selected from the following list of possible pipetting parameters:
[0091] {Volumes aspirated or expelled during a pipetting operation; the number, especially the total number, of substeps in a pipetting operation consisting of several substeps; the number (greater than zero) of pre-wetting steps in a pipetting operation; time parameters, especially the duration of a pipetting operation or a sub-step of a multi-step pipetting operation, or the latency time between pipetting operations or between sub-steps of a multi-step pipetting operation; parameters for automatically activating / deactivating the complete emptying of the remaining volume remaining in the pipette vessel after the pipetting operation has been performed (activating or deactivating the "auto blow-off" function); speed parameters for pipetting operations, especially during sub-steps of a multi-step pipetting process, especially a dispensing process, especially the speed at which sample volumes are aspirated into and expelled from the pipette vessel}
[0092] The pipetting volume can be the volume aspirated into the pipette container during a pipetting operation or a sub-step of a multi-step pipetting operation, or the volume expelled from the pipette container during a pipetting operation or a sub-step of a multi-step pipetting operation, in particular the dispense volume expelled during a multi-step pipetting operation.
[0093] Preferably, the output screen or any subsequently displayed output screen does not have any input fields, apart from special buttons, and in particular no input screens whose touching would in particular immediately change the content of the output screen and / or the pipetting operation that has been initiated.
[0094] Preferably, the output screen or a subsequently displayed output screen does not have an input field for changing one of the pipetting parameters that was displayed in the previously displayed input screen and that could be changed there by input, especially ignoring special buttons.
[0095] Preferably, the output screen or the subsequently displayed output screen does not have any input fields for modifying pipetting parameters, especially apart from special buttons, i.e. it does not have any input fields which, when touched, allow modification, especially directly or indirectly, of one or more or all pipetting parameters of a parameter set of pipetting parameters entered using the input screen, especially modifying at least one predetermined pipetting parameter previously displayed on the input screen and modifiable by input, and / or especially modifying one of the pipetting parameters of an ongoing pipetting operation. "Modify directly" means, especially after touching an input field, an input interface is immediately opened so that the user can modify the value of the displayed pipetting parameter. "Modify indirectly" means, especially, that an input screen with at least one input field is first opened, and touching this input field immediately opens an input interface so that the user can modify the value of the displayed pipetting parameter.
[0096] Preferably, only the input screens, in particular the home screen, and not the output screens, are provided with the modification of at least one or more or all modifiable pipetting parameters of a parameter set of pipetting parameters. In particular, only the input screens, and not the output screens, contain an input field, in particular at least one first input tile, which displays the value of at least one first pipetting parameter of a parameter set defining a pipetting task, in particular a basic pipetting task, in particular a basic parameter set, and touching it, i.e. without further user input following this touch, opens an input interface allowing the user to input the value of the at least one first pipetting parameter. These pipetting parameters of the parameter set of pipetting parameters can in particular be selected from the list of possible "predetermined operating parameters" mentioned above.
[0097] Preferably, the output screen, rather than the input screen, preferably displays various contents depending on the currently occurring sub-step of the automated multi-step pipetting task, in particular the values of the pipetting parameters defining the currently ongoing sub-step, e.g., the discharge of a partial volume Vt at a particular discharge rate v2 as sub-step i of a total of N steps of the pipetting task. This would be the case for example for application scenario "Dis".
[0098] Preferably, the output screen, rather than the input screen, displays a progress indicator containing information about the progress of the multi-step pipetting, preferably according to the currently occurring sub-step of the automated multi-step pipetting task.
[0099] Preferably, the output screen, rather than the input screen, shows a variable display element, in particular a display wheel or roller as described in more detail below, preferably depending on the currently occurring sub-step of the automated multi-step pipetting task.
[0100] In particular, the above definition allows a distinction to be made between input and output screens.
[0101] A pipetting operation can be initiated by fulfilling different start conditions or the start conditions can be fixed, either directly by a (first) actuation of an operating element, or by a second actuation directly following this first actuation (i.e. without touching a special button), possibly a third actuation of an operating element different from the touch screen, for safety reasons or for other reasons. The data processing means is preferably programmed to display an input screen, in particular a home screen, for displaying and entering the pipetting parameters of a parameter set of pipetting parameters, and, upon detection of an actuation of at least one operating element (different from the screen), to display on the screen instead of the input screen an output screen (abbreviated "execute") for displaying the pipetting parameters of the parameter set defined in the input screen, and to start a pipetting operation, in particular triggered by this actuation or by an actuation of an operating element (different from the screen) subsequent to this actuation, or to start a pipetting operation defined according to this pipetting parameter set, in particular upon detection of an actuation of at least one operating element causing the display of an output screen or by subsequent actuation of one of these operating elements. The data processing means is preferably programmed so that the above starting conditions are selectable by the user via a GUI input interface at the pipetting device.
[0102] The input screen preferably differs from each output screen, particularly in its graphical representation. In particular, the output screens have different color schemes and / or different arrangements of markings and / or information fields. In particular, the output screens preferably display different content depending on the currently occurring substep of an automated multi-step pipetting operation, particularly the values of the pipetting parameters currently defining the substep, e.g., the discharge of a partial volume Vt at a specific discharge rate v2 as substep i of a total of N steps in the pipetting operation. This would be the case, for example, in the application scenario "Dis." The concept of distinguishing between input and output screens, particularly realized by visual distinctiveness, creates important ergonomic advantages in operation, since the user can recognize with minimal effort whether he is currently waiting for an operation, possibly with a pipetting operation interrupted, or in the setup mode. The concept of input and output screens therefore represents an easily distinguishable input and output mode of the pipetting device for the user. Preferably, the user can change parameter values or select parameters again by simply touching a separate input area, or automatically returning to the input screen, in particular the home screen, upon completion of the pipetting operation. This separation prevents accidental changes to parameter values, especially while in "run" mode, which could potentially invalidate the experimental operation and result in significant loss of value. On the other hand, switching from "setup" mode to "run" mode by operating the operating elements is extremely comfortable and intuitive for the user, which also contributes greatly to ergonomics and an efficient workflow.
[0103] The at least one operating element is not particularly a part of the touch-sensitive screen. The at least one operating element is preferably designed as a push button, i.e., as an element that can be operated by the user, particularly with the thumb, when the user holds the handheld pipetting device in the normal manner with one hand. For this purpose, the hand holds a housing that serves as a grip, with the hand support of the housing resting on the index finger. In this case, the touch screen is operated, particularly with the fingers of the hand that is not holding the pipetting device.
[0104] The data processing means can be programmed so that, while an output screen is being displayed, i.e. in particular in the output mode of the pipetting device, if the eject button (for removing the pipette tip) of the pipetting device is pressed, in some scenarios or in principle an input screen, in particular a home screen or another input screen, is displayed instead of the output screen and / or the pipetting operation is stopped or aborted.
[0105] A pipetting program defined by the pipetting parameters of a parameter set can have multiple time stages, for example, if a particular step sequence or sub-step is repeated iteratively or cyclically. If a pipetting task includes, for example, a 10-step sequence, the output screen preferably indicates, for each executed step, which of the 10 step sequences is currently being executed and / or how many step sequences remain. Furthermore, one or more pipetting parameters of the current (active) step can be displayed. The output screen preferably also displays the active parameter setting and indicates what will happen next when an operating element is pressed, for example, that pipetting step 3 / 3 will be executed at 150 μL and speed X.
[0106] Preferably, the output screen displays various contents depending on the currently occurring sub-step of a preferably automated multi-step pipetting task, in particular the values of pipetting parameters defining the currently ongoing sub-step, e.g., the discharge of a partial volume Vt at a particular discharge rate v2 as sub-step i of a total of N steps of the pipetting task. This may be the case for example for application scenario "Dis".
[0107] To show the progress of a multi-step pipetting operation, the output screen preferably comprises display elements, in particular single or multi-part output tiles, which preferably display different content depending on the currently performed sub-step of the automated multi-step pipetting operation, in particular the values of pipetting parameters defining the currently ongoing sub-step, and which in particular may vary in size or occupy a fixed area of the output screen.
[0108] Preferably, a first view in a first state of a display element displaying sub-step i (i being in particular a count index for counting successively progressing sub-steps) differs from a second view in a second state displaying sub-step i+1. The difference in views may be such that the output screen, in particular the display element, displays count index i in the first state and count index i+1 in the second state. Furthermore, the difference in views may be such that the output screen, in particular the display element, displays different values of pipetting parameters applied in each sub-step in the first and second states.
[0109] Preferably, the display element has a first output tile in which one or more values of one or more pipetting parameters applied in the currently ongoing sub-step i are displayed. Preferably, the display element additionally has a second output tile in which one or more values of one or more pipetting parameters applied in a future ongoing sub-step i+1 are displayed. This allows the user to have a better overview and better control over the work with the pipetting device. Preferably, the display element has another second or third output tile in which one or more values of one or more pipetting parameters applied in a previous sub-step i-1 are displayed. This also allows the user to have a better overview and better control over the work with the pipetting device. Similarly, further output tiles with successively planned future sub-steps (e.g., i+2, i+3, etc., up to i=N) can be at least partially and simultaneously displayed. Similarly, further output tiles with successively previous sub-steps (e.g., i-2, i-3, etc., up to i=N) can be at least partially and simultaneously displayed.
[0110] The display element may include one or more of the first output tile and the second and / or third output tile, depending in particular on sub-step i.
[0111] Preferably, the display element comprises the first output tile, the second output tile, and the third output tile, at least during substep i. Preferably, the first output tile is spatially arranged between the second and third output tiles. In this arrangement, the display element is also called a display wheel or display roller. The display roller preferably has at least three positions (e.g., center, left, right, or center, top, bottom), which can be occupied by output tiles characterizing each substep. The progress of a multi-step pipetting operation, counted by an index counter i, is represented by the rotation of the output tiles on the display roller. For example, in a 10-step (N=10) pipetting operation (e.g., a dispensing operation), at the start (i=1) of the pipetting operation, the output tile associated with substep i=1 is in the center roller position. Meanwhile, the output tile associated with substep i=0 is either absent or present and displayed laterally (left, right, top, bottom) of the center position, displaying information about the entire pipetting operation, other information, or no information. Meanwhile, the output tile associated with future sub-step i=2 is laterally opposite (e.g., to the right, left, below, above) the central roller position from its initial position. When sub-step i=1 is completed, the first output tile moves from the central position to a later position, the second output tile associated with the currently ongoing sub-step i=2 moves to the central position, and the third output tile associated with the currently yet-future sub-step i=3 is now displayed at another later position of the display roller.
[0112] Preferably, the output screen, in particular the display element, in particular at least one output tile of the display element, displays a progress indicator containing information about the progress of the multi-step pipetting operation. In particular the count index i and additionally the value N of the total number of sub-steps of the multi-step pipetting operation can be displayed, for example in the form of a text output "i out of N" or "i / N". The progress indicator can additionally or alternatively comprise a non-numerical graphical representation of the progress, in particular a progress bar or lines representing successively progressing sub-steps 1...N with a graphical highlighting of the position of the currently progressing sub-step i.
[0113] If the display element has multiple output tiles depending on the sub-step, such as a display roller, the display element can be animated as it changes from a first view to a second view. Furthermore, the lateral position of the display roller can be shaded or illuminated, in particular to simulate or represent a three-dimensional object (roller, wheel) and / or to simulate or represent perspective, making working with the pipetting device even more intuitive.
[0114] Preferably, the data processing means is programmed so that the pipetting device has exactly one first and one second operating element, which can be actuated separately from each other, in particular by means of a rocker button. Alternatively, an ejection button can be provided for ejecting the pipette container, in particular the pipette tip, making operation intuitive and ergonomic.
[0115] The data processing means are preferably programmed to detect activation of an operating element by the user, in particular the first operating element, and to initiate a pipetting operation defined in accordance with a parameter set in response to the activation of the operating element. The pipetting operation can be initiated immediately after activation of the operating element, or can be preceded by one or two intermediate operations, such as a blowout, i.e., dispensing of residual liquid in the pipette vessel using an overstroke, or pre-wetting of the pipette tip by aspirating and dispensing one or more pre-wetting volumes of sample one or more times before the start of another step of the pipetting operation, or a mixing step with aspirating and dispensing a mixing volume before the start of another step of the pipetting operation.
[0116] Preferably, the pipetting device has a first operating element and a second operating element, each of which is a separately arranged button. The pipetting device preferably has a rocker button and a first operating element and a second operating element that can be separately activated by the rocker button, such that the first operating element is activated by pressing a first pressing surface of the rocker button and the second operating element is activated by pressing a second pressing surface of the rocker button, and the first and second pressing surfaces are tactilely distinguishable. In particular, the first and second pressing surfaces are distinguishable by the following tactilely perceptible and identifiable external features: * any curvature direction of the first and second pressing surfaces, in particular by the first pressing surface being concave and the second pressing surface being convex, * the surface structure of the first and second pressing surfaces, * the material of the first and second pressing surfaces. In a given situation of operation of the pipetting device, for example after starting the run mode by pressing one of the operating elements in the setting mode, the first operating element can in particular cause the sample to be aspirated and the second operating element can in particular cause the sample to be ejected. Alternatively, the second operating element can in particular cause the sample to be aspirated and the first operating element can in particular cause the sample to be ejected.
[0117] Preferably, the pipetting device is designed as a grip for holding the pipetting device with one hand of the user. The housing comprises a shaft portion including a piston, and the piston extends along its longitudinal axis A. The pipetting device has a first operating element and a second operating element that can be operated separately from each other by a locker button attached to the table surface of the pipetting device, particularly the thumb rest. This table surface is arranged at an angle of 80 < a < 180° with respect to the longitudinal axis, and is preferably inclined downward. The direction of "downward" refers to the direction of gravity when the longitudinal axis of the pipetting device is arranged parallel to gravity. Here, the table surface is arranged such that when the pipetting device is held with one hand, the user's thumb can rest on the thumb rest almost without fatigue (at the "sweet spot" of the gripping hand).
[0118] Preferably, the pipetting device has a housing made of or including plastic.
[0119] Preferably, the table surface is perpendicular to a plane passing through the longitudinal axis and extending perpendicular to the surface of the screen.
[0120] Preferably, the pipetting device includes an operating element, particularly a piston or a piston rod, and has a housing with a head having a front face inclined with respect to the longitudinal axis, formed by the shaft portion along which the operating element extends, the surface of the screen, and preferably the frame surrounding the screen. The screen occupies at least 70%, preferably at least 80%, and more preferably at least 90% of the front face. In particular, the front face of the frame is in a first plane, and the screen is in a second plane identical or parallel to the first plane.
[0121] The pipetting device preferably has a housing with a connection for at least one pipette container and an ejection button, the contact surface of which can be moved within the housing along a path by pressing the ejection button, the pipetting device being designed so that, upon reaching the end of this path, the removal of at least one pipette container, in particular a pipette tip, occurs or an electrical signal is generated which triggers the removal of at least one pipette container, in particular a pipette tip. The ejection button may be spring-loaded. The removal may also be purely mechanical, in which case the energy required for removal is applied by the user directly during removal or indirectly by tensioning a spring element when attaching the pipette tip.
[0122] The present invention also relates to a system for inputting pipetting parameters, comprising a handheld pipetting device according to the invention, an external data processing device, in particular a smartphone or tablet PC, an external screen, i.e. a screen which is not an integral part of the pipetting device, and data processing means, the data processing means being programmed to display on the external screen an external input screen ("Settings") for displaying and inputting pipetting parameters of a parameter set of pipetting parameters, the external input screen and the input screen of the pipetting device having substantially the same content, i.e. having the same functions as a screen, in particular the input screen of the pipetting device, the system being designed to transfer pipetting parameters defined on the external data processing device to the pipetting device and use them there to define a pipetting operation, or to transfer pipetting parameters defined on the pipetting device to the external data processing device and store them there.
[0123] The present invention also relates to a computer program code for preparing an input screen on a screen of a handheld pipetting device, the handheld pipetting device being used for pipetting at least one liquid sample and comprising: a connector for connecting at least one pipette vessel; electrically controlled operating elements for aspirating at least one sample into the at least one pipette vessel, retaining said sample in the at least one pipette vessel and expelling said sample from the at least one pipette vessel when performing a pipetting operation; and a touch-sensitive screen for inputting parameter values of user-definable pipetting parameters, a parameter set of which completely defines a pipetting operation, the pipetting device comprising: an electrical control device with data processing means programmed to control the operating elements in response to the at least one pipetting parameter; and at least one operating element operable by finger pressure, in particular thumb pressure, of a user, the actuation of which initiates a pipetting operation defined in accordance with the parameter set, When the program code is executed by the data processing means of the handheld pipetting device, it results in: a) an input screen ("Settings") for displaying and inputting the pipetting parameters of a parameter set of pipetting parameters is displayed on the screen; b) when an actuation of at least one operating element is detected, an output screen ("Execute") for displaying the pipetting parameters of the parameter set is displayed on the screen, and optionally this or a subsequent actuation of the operating element also initiates a pipetting operation according to the current pipetting parameter set; c) A special button is displayed on the output screen, which, when touched, closes the output screen and displays the screen, especially the input screen.
[0124] Alternatively, the program code, when executed by the data processing means of the handheld pipetting device, results in: a graphical user interface (GUI) is displayed on the screen, the GUI comprising at least the following: a screen, in particular a home screen, on which pipetting parameters of a parameter set of pipetting parameters are displayed, the screen comprising at least one first input tile displaying a value of at least one first pipetting parameter of a parameter set, in particular a basic parameter set, defining a pipetting task, in particular a basic pipetting task, which when touched opens an input interface allowing a user to input the value of the at least one first pipetting parameter; the screen has at least one input field, in particular an input field which when touched allows a user to select at least one second pipetting parameter; the data processing means, after detecting the user's selection, are programmed to add the at least one second pipetting parameter to the at least one first pipetting parameter of the parameter set, in particular the basic parameter set, to form pipetting parameters of a user parameter set defining a user-defined pipetting task; and the selection of the at least one second pipetting parameter is displayed to the user on the screen, in particular the home screen.
[0125] The pipetting device or the external data processing device preferably comprises a data storage device, which preferably comprises at least one data memory, in particular a hardware data memory, in particular a non-volatile data memory, in particular an EPROM or FLASH memory. The data storage device may also comprise a volatile data memory.
[0126] The electrical control device of the pipetting device or the external data processing device, also referred to as control device or control unit for short, preferably comprises data processing means, in particular at least one central processing unit (CPU). The data processing means may include a microcontroller. The control device preferably comprises a microcontroller. The control device preferably comprises at least two storage devices or data memories for storing data, in particular pipetting parameters and / or one or more computer programs or computer program codes.
[0127] The control device preferably comprises at least one control software or control program that uses these at least one pipetting parameter to automatically perform at least one function of the pipetting task or part of the pipetting task or the pipetting task. The control software or control program is in particular executed by a data processing means of the control device, in particular the CPU of the data processing means. The control software or control program is in particular stored in a data storage device of the device. This data storage device is preferably a non-volatile memory.
[0128] The pipetting device or the external data processing device can have a sensor device, such as a sensor for detecting temperature, humidity, or pressure, or the motor current used to drive the piston of the pipetting device. The motor current can be used to determine the viscosity of the pipetted liquid and thereby identify the liquid. The sensor device can also be designed to perform measurements to determine parameters, in particular pipetting parameters, in particular the type of pipette container connected to the pipetting device, in particular the maximum fill volume of the pipette container, in particular the pipette tip. The pipetting device or the external data processing device can be designed to automatically determine at least one pipetting parameter depending on the measurement value of the sensor device. This allows for improved optimization of the pipetting parameters required for precise pipetting.
[0129] The pipetting device and / or the external data processing device are preferably operated independently of the power grid. In particular, each device can be equipped with a rechargeable voltage source, for example one or more accumulator batteries. To this end, the device can have a charging interface connected to the rechargeable voltage source.
[0130] Pipette tips are typically disposable and preferably made of plastic. Depending on the maximum liquid volume required, different pipette tips are used in piston-stroke pipettes. Typical nominal volumes of commercially available pipette tips are, for example, 10 μL, 20 μL, 100 μL, 200 μL, 300 μL, 1000 μL, 1250 μL, 2500 μL, 5 mL, and 10 mL (μL: microliter, mL: milliliter). A pipette tip is typically a longitudinally elongated, conical container with a liquid exchange port at its lower end and a conical or tubular, upwardly open end at its upper end, which can be inserted into a connecting part formed as a working cone of a pipetting device, particularly one configured as an air-displacement pipette. The liquid is drawn into the pipette tip by the negative pressure inside the pipette tip. In the case of a pipetting device designed as an air-displacement pipette, this negative pressure is generated by the movement of the pipetting device's operating element, formed as a piston, creating a negative pressure in the air space above the sample in the pipette tip. The interior of the pipette tip is fluidly connected to the pipette channel of the piston-stroke pipette at the pipetting position (also called the insertion position) where the pipette tip is connected to the connection of the piston-stroke pipette. The pipette channel is subjected to negative / overpressure via the electrically movable cylinder piston of the piston-stroke pipette within the hollow cylindrical piston chamber.
[0131] Dispenser tips are used in direct displacement pipettes, where there is essentially no air gap between the piston and the liquid sample during pipetting. In this case, the piston is a component of the dispenser tip. The dispenser tip has a container portion, which functions as a piston-cylinder, with a container inlet / outlet and a container opening. The piston engages these openings and is movably positioned within the piston-cylinder, allowing the entire aspirated liquid volume to be expelled at its final position. When connecting the dispense tip to a pipetting device designed as a direct displacement device, the container portion is connected to the pipetting device's connector, particularly by screwing, and the piston is connected to the operating element by a coupling device. Dispenser tips are typically disposable products, preferably made of plastic. Depending on the maximum volume of liquid required, different dispensing tips are used in direct displacement devices. Typical nominal volumes of commercially available dispenser tips are, for example, 100 μL, 200 μL, 500 μL, 1 mL, 2.5 mL, 5 mL, 10 mL, 25 mL, and 50 mL.
[0132] The present invention relates to a handheld pipetting device, a data processing device, a system cooperating therewith, and in particular a computer program or computer program code which can be stored on a data storage medium. Possible preferred embodiments of each of these subjects will become apparent from the description of all embodiments of the other subjects, and in particular possible embodiments of the handheld piston-stroke pipette will become apparent from the description of the method, in particular the external data processing device, the system and the computer program.
[0133] Further preferred embodiments of the method, handheld piston-operated pipette, data processing means, system and computer program according to the invention will become apparent from the figures and their description in conjunction with the following description of examples, in which like elements of the embodiments are substantially provided with like reference numerals unless otherwise stated or clear from the context. [Brief explanation of the drawings]
[0134] [Figure 1a]FIG. 1a is a schematic side view of an embodiment of a pipetting device according to the invention, here an air displacement pipette. [Figure 1b] FIG. 1b is a detailed view of the rocker button of the pipetting device of FIG. 1a. [Figure 1c] FIG. 1c shows the pipetting device of FIG. 1a rotated slightly about the longitudinal axis A. FIG. [Figure 1d] FIG. 1d is a perspective side view of a detail of the pipetting device of FIG. 1a, with the touchscreen visible. [Figure 1e] FIG. 1e is a schematic diagram of a system according to the present invention, according to an embodiment. [Figure 2a] FIG. 2a illustrates the functionality of the GUI of a pipetting device switching between two main screens, an input screen and an output screen, with two images of the head area of the pipetting device according to the invention according to an embodiment. [Figure 2b] Figure 2b shows (symbolically) the input screen of the GUI and the operating elements of the pipetting device below it, starting from the input screen ("Settings"), which is replaced by an output screen as the operating elements are activated, and in the dispensing operation shown here ("Dis"), the screen or the contents of the screen change continuously. [Figure 2c] Figure 2c shows the input screen of the GUI with a list of currently selected pipetting parameters for the pipetting parameter set; the abbreviation list is implemented in the form of "tags" located at the top edge of the screen, each showing the abbreviation of the selected pipetting parameter, allowing the user to get an overview of the selected pipetting parameters without having to look at the entire (scrollable) selection list. [Figure 2d] FIG. 2d illustrates the input screens of the GUI, specifically the home screen and a parameter selection screen that appears overlaid on the input screen when a separate input field on the input screen is touched. [Figure 2e] FIG. 2e shows an output screen of a pipetting device according to the invention according to an embodiment in a first state at sub-step i=2 and in a second state at sub-step i=3 of a multi-step pipetting operation. [Figure 2f] FIG. 2f shows an output screen during a multi-step pipetting operation of a pipetting device according to the present invention according to an embodiment. [Figure 3a] FIG. 3a shows another feature of the GUI of the pipetting device, starting from the home screen and adding another pipetting parameter or function to the current parameter set via a selection list in the selection screen, with two images of the head area of the pipetting device according to the invention according to an embodiment. [Figure 3b] FIG. 3b shows another feature of the GUI of the pipetting device, starting from a home screen with scrollable content or a scrollable selection list and adding another pipetting parameter or function to the current parameter set, with two images of the head region of the pipetting device according to the invention according to an embodiment. [Figure 4] FIG. 4 illustrates the functionality of the GUI of a pipetting device for switching between displaying different screens with multiple images of the screen of a pipetting device according to the present invention, according to an embodiment. [Figure 5a] FIG. 5a illustrates the functionality of the GUI of a pipetting device for setting pipetting parameter values using an input mask, with a number of images of the screen of a pipetting device according to the invention, according to an embodiment. [Figure 5b] FIG. 5b illustrates the functionality of the GUI of the pipetting device by means of two images of the screen of a pipetting device according to the invention according to an embodiment, calling up a history list of pipetting parameters, or using an optional menu bar with input fields instead of input screens, or information fields that do not function as input fields, as a navigation aid. [Figure 6] FIG. 6 illustrates the functionality of the GUI of a pipetting device for selecting a predetermined parameter set representing a particular application scenario, with multiple images of the screen of a pipetting device according to the invention according to an embodiment. [Figure 7a]FIG. 7a shows, by two images of the screen of a pipetting device according to the invention according to an embodiment, the functionality of the GUI of the pipetting device for marking the current parameter set as a favorite, which is then saved as a favorite and displayed in particular as a selectable list item on the favorites screen, i.e. as a corresponding information entry tile. [Figure 7b] FIG. 7b shows two images of the screen of a pipetting device according to the invention in accordance with an embodiment illustrating the functionality of the GUI of the pipetting device in which the input tile identifying a favorite parameter set on the favorites screen has an input field which, when touched, transfers the parameters of the favorite parameter set to a separate screen where they are displayed and the parameter values and / or parameter selections of the favorite parameter set can be changed. [Figure 8a] FIG. 8a shows the functionality of the GUI of the pipetting device for defining the pipetting parameters of a user-defined pipetting task by the recorder function of the pipetting device, by means of a sequence of multiple images of the screen of the pipetting device according to the invention and the operating elements (symbolically) inserted below it, according to an embodiment. [Figure 8b-1] FIG. 8b-1 illustrates the functionality of the GUI of a pipetting device for defining pipetting parameters of a user-defined pipetting task by the recorder function of the pipetting device according to an embodiment, by a sequence of multiple images of the screen of the pipetting device according to the invention and the operating elements (symbolically) inserted below. [Figure 8b-2] FIG. 8b-2 illustrates the functionality of the GUI of the pipetting device for defining the pipetting parameters of a user-defined pipetting task by the recorder function of the pipetting device, by means of a sequence of multiple images of the screen of the pipetting device according to the invention and the operating elements (symbolically) inserted below it, according to an embodiment. [Figure 9]FIG. 9 shows the GUI functionality of the pipetting device for selecting and editing a user-defined set of parameters for modification purposes using the recorder function, with a sequence of multiple images of the screen of the pipetting device according to the invention and the operating elements (symbolically) inserted below it, according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0135] Figure 1a shows a handheld pipetting device according to the invention for pipetting at least one liquid sample, here an air-displacement pipette 1. The pipetting device comprises: at least one pipette container 19, here a connection 2 for connecting a pipette tip; an operating element electrically controlled by the control device 5 to aspirate at least one sample into at least one pipette vessel 19, to hold said sample in said at least one pipette vessel 19, and to expel said sample from said at least one pipette vessel when performing a pipetting operation; a touch-sensitive screen 4 provided on the front face 14a of the head 14 of the pipetting device for inputting parameter values of user-definable pipetting parameters, a parameter set of which completely defines a pipetting operation; the electrical control device 5 comprises data processing means 6 programmed to control the operating element 3 in response to at least one pipetting parameter, and comprises a data memory 7 and a communication unit 8 for wireless communication with an external data processing device, The pipetting device has exactly two operating elements (synonym: actuating elements) 9a and 9b that can be activated by the user via a rocker button 10. Each of these operating elements allows the pipetting device to be switched from an input mode ("Set"), in which input screens 100, 100' are displayed on the screen, e.g., the home screen shown in Fig. 1d, to an output mode ("Run"), in which output screens are displayed on the screen. This advantageous aspect of the operating concept is further clarified with reference to Figs. 2a, 2b and 4. In contrast, activating the eject button 15 and the (not shown) "Power On / Off" button of the pipetting device does not switch between the "Set" and "Run" modes. An input field 101' (also called "Add button"), marked with a "+" sign in Fig. 1d, can be used to edit the list of pipetting parameters belonging to the parameter set.
[0136] The rocker button has a concave lower part 10b, which, when operated, activates button 9b, in particular to eject a sample, and a convex upper part 10a, which, when operated, activates button 9a, in particular to aspirate a sample. The rocker button is located on a plateau formed by housing parts that form an angle of approximately a = 130-140° with the longitudinal axis A of the pipetting device. Thanks to a hand support 16 positioned next to this plateau and perpendicular to the longitudinal axis, the pipetting device fits ergonomically in the hand and provides a thumb rest in the "sweet spot" of the hand, so that the thumb rests on the rocker 10 when stationary. The screen 4 is located in the pipetting device's housing head 14.
[0137] The pipetting device has an electric motor 18 powered by a battery 17, which moves the piston rod or piston 3 within the cylinder piston 12, resulting in a suction or ejection pressure within the pipetting channel 13. Electronic control allows precise dispensing. An ejector button 15 is provided, allowing the pipette tip 19 to be removed from the connection 2 by means of an ejector sleeve of the pipetting device. The data processing means are particularly programmed to interrupt any ongoing pipetting operation upon activation of the eject button 15 and to replace any output screen still displayed by an input screen 100, 100'.
[0138] When the user operates either of the two operating elements 9a, 9b, a pipetting task defined according to the current parameter set is initiated. The selection of the pipetting parameters of the parameter set defining the desired partially automated pipetting task and the setting of the values of these pipetting parameters are performed by a GUI that implements a specific operating concept according to the invention. This operating concept is explained with reference to the following figures:
[0139] The data processing means 6 is programmed to display on the screen 4 an input screen 100, 100' ("SETTING", see the content of the dashed rectangle) for displaying and inputting the pipetting parameters of a parameter set of pipetting parameters, and to display on the screen 4 an output screen 2002 ("EXECUTE") for displaying the pipetting parameters of the parameter set defined in the input screen when an operation of at least one of the operating elements 9a or 9b is detected, and to start a pipetting operation defined according to this pipetting parameter set when an operation of this at least one operating element is detected or when one of these operating elements is subsequently activated (in the sense of any safety response) (see Fig. 2a). Here, the output screen 200, or any other output screen displayed after the output screen 200, has an input area, here at the bottom edge of the screen, designed as a special button 201 (here with the text "BACK"), which, when touched, closes the output screen 200 and the input screen 100 or another screen, in particular an input screen, is displayed on the screen 4. In particular, a second actuation following a first actuation of this operating element 9a, 9b (different from the screen) initiates a pipetting task defined according to the current set of pipetting parameters.
[0140] The other screens mentioned above may allow editing of parameter values contained in particular in the pipetting parameter set. It is not necessary to be exactly the previous input screen 100, for example when a pipetting sequence ("run") has already started and only a speed is to be quickly adjusted. After a pipetting job has started, it may no longer be possible to change / modify all parameter values, but only certain parameter values of the current pipetting parameter set.
[0141] The input screen 100 and the output screen 200 differ in their graphical and / or text or numeric representation, especially in their color scheme: the input fields of the input screen 100 are mostly kept with black information (text, numeric, input field color) on a light or white background, while the display fields of the output screen 200 are mostly kept with blue information on a light or white background. The black input field 101 (also called the add button) of the input screen, which calls up a selection screen for selecting pipetting parameters, is not present on the output screen.
[0142] In particular, the output screen 200 preferably displays various content depending on the currently occurring sub-step of an automated multi-step pipetting task, in particular the values of the pipetting parameters currently defining the sub-step, e.g., the discharge of a partial volume Vt at a particular discharge rate v2 as sub-step i of a total of N steps of the pipetting task. This would be the case, for example, for the application scenario "Dis" shown in Fig. 2b.
[0143] In Fig. 2b, an input screen 100_1 is first displayed, which contains a set of pipetting parameters for a partially automated pipetting operation. Here, the additional button 101_1, which is a slight graphical change from the additional button 101, likewise allows for the modification of the list of operational pipetting parameters. Therefore, according to the present invention, the screen contains an input field, i.e., an additional button here, which, when touched, allows the user to select at least one second pipetting parameter. Operating an operating element, i.e., switch 9a or first pressing surface 10a of rocker button 10 here, switches the pipetting device from the "Setting" mode to the "Run" mode, and an output screen 200_1 containing a special button 201_1 is displayed. The special button 201_1 is a graphical change from the special button 201, but otherwise functions in the same way. After the aspiration operation is performed, for example, after 2 seconds during which the substep of aspirating 360 μL of solution into the pipette container is performed, the output screen 200_1 displays the output screen for the substep of dispensing the first dispensing volume of 120 μL. Operating the second pressing surface 10b of the operating element, here the rocker button 10, initiates the dispensing of a partial volume, and further operation of the pressing surface 10b leads to the next dispensing substep. The dispensing substeps are counted from start to finish by an index counter i=1...3, and progress indicators i / N (i=1...3, N=3) display the progress of the partially automated dispensing operation in the output fields of the output screen. To make the progress more intuitive for the user, variable display elements, such as the display rollers shown in FIGS. 2e and 2f, can be used. The output screen 200_1 does not have such variable display elements; here, the output tiles always remain in the same position on the output screen 200_1, and only the numerical display of the parameter values and the progress indicator change.
[0144] 2e shows the output screen 200' of the pipetting device in a first state (left side of the figure) at substep i=2 and in a second state (right side of the figure) at substep i=3 of a multi-step pipetting operation. The output screen has a variable display element 203' designed as a display roller. In the case of a variable display element with at least one output tile, in particular the position of at least one output tile within the display element changes. The display roller 203' has a central output tile 203a', which displays the pipetting parameter "Partial Discharge" with value 200 μL of a dispensing operation with (N=6) steps, a discharge rate of "8", and a numerical progress indicator ("2 / 6"). Adjacent to the top of the central output tile 203a' is an upper output tile 203b' that displays "Dispense 200 μL" for the previous discharge sub-step (i=1), and adjacent to the bottom of the central output tile 203a' is a lower output tile 203c' that displays "Dispense 200 μL" for the discharge sub-step (i=3) immediately following the current sub-step i=2. On the right side of the figure, the same output screen 200' is shown, but this time during the next discharge sub-step i=3. Adjacent to the top of the central output tile 203a' is an upper output tile 203b' that displays "Dispense 200 μL" for the previous discharge sub-step (i=2), and adjacent to the bottom of the central output tile 203a' is a lower output tile 203c' that displays "Dispense 200 μL" for the discharge sub-step (i=4) immediately following the current sub-step i=3. The transition (from left to right) of the view of the display element 203' from i=2 to i=3 can be animated to show the dynamics of the progress. Variable display elements make the perception of multi-step pipetting tasks and the operation of the pipetting device more intuitive. For the last partial discharge step (i=N, here i=6), the lower position 203c' of the display roller displays information about reaching the end or other information, or nothing is displayed, or the corresponding output tile 203c' is not displayed at all thereafter. The same can be done for the upper output tile 203b' for the first discharge sub-step i=1, in which case nothing is displayed or it is omitted, for example.
[0145] The display roller here has a horizontal axis of rotation and the position change of the output tile is vertical, although alternatively a vertical axis of rotation or a diagonal axis of rotation would also be possible.
[0146] 2f shows the output screen 200″ of the pipetting device at i=8 in a multi-step (M=32) pipetting operation. Here again, the display roller 203″ is shown with a central output position or output tile 203a″, an upper output tile 203b″, and a lower output tile 203c″, which function similarly to the display roller 203′. Furthermore, the output screen 200″ has additional functionality, which is achieved using additional output and input fields. Preferably, the output screen, as implemented in this embodiment, does not have input fields that show the values of pipetting parameters and allow changing the pipetting parameters in the next step by touching them. In the “run” mode, which is preferably present when the output screen is displayed, it is not possible to change the pipetting parameters, at most via intermediate steps, and not all pipetting parameters of a parameter set are modifiable. For example, it may be possible to change the speed of dispensing / aspirating liquids during an ongoing multi-step pipetting operation.
[0147] The output screen 200″ has an input field located on its edge, here at the bottom right, with the word “Pause” displayed, implementing the pause function. Touching this input field pauses a multi-step pipetting run, for example, after the completion of drain substep i=1 of N=3, which is simultaneously the 8th substep of a 32-step programmed pipetting run. The input field with the exclamation mark and circular arrows allows repeating a pipetting run, for example, in case the 8th substep just executed has to be repeated due to a user error. Therefore, according to the logic of the GUI, the above input fields are not input fields that indicate the value of a pipetting parameter and, when touched, allow changing the pipetting parameter in the next step.
[0148] In these embodiments of the pipetting device according to the invention, "touching" an input field always produces an immediate result. That is, the result occurs without substantial delay, and preferably no additional screen is displayed between the time of touching and the time the result (e.g., the input interface opens) as an information page, also known as a "wait page," suggesting a delay. However, there may be GUI scenarios in which such an intermediate information page is useful.
[0149] As shown in FIG. 2f, in a multi-step (here M=32) pipetting task, a progress bar can be useful to graphically indicate the progress ("8 / 32"), which is also shown here numerically. The annotation "Protocol Lisa 250" in output tile 222" indicates that an individually programmed pipetting task, e.g. named "Lisa 250", as determined by the user, is executed and simultaneously saved, e.g., in a log file of the pipetting device. A special button 201" is typically provided, which leads to closing output screen 200". In particular, typically, no output tile is an input tile and therefore does not have an input field that, when touched, results in a function, and therefore no input is possible.
[0150] The preferably implemented concept of separating input and output screens creates important ergonomic advantages in operation, since the user can recognize with minimal effort whether he is currently in setup mode, possibly with a pipetting operation paused and waiting for further operation. The input and output screen concept therefore represents an easily distinguishable input and output mode for the pipetting device. Preferably, the user can change parameter values or select parameters again by simply touching a separate input area (special button) or automatically returning to the input screen, especially the home screen, upon completion of a pipetting operation. This separation prevents accidental changes to parameter values, especially during the "run" mode, which could potentially invalidate the experimental work and result in significant loss of value. On the other hand, switching from "setup" mode to "run" mode by operating the operating elements is extremely comfortable and intuitive for the user, which also contributes significantly to ergonomics and an efficient workflow. An output screen (e.g. 200) is fundamentally characterized in that the display fields or tiles contained therein, e.g. output tile 203, are purely informational in nature and therefore do not function as input fields, and touching them does not result in any particular action, in particular does not initiate any input options. This does not apply to a separate operating field on the output screen, here special button 201, which, when touched, abandons the output mode and brings an input screen onto the screen, and in particular may terminate a pipetting operation or program that is still in progress.
[0151] The pipetting device 1 has exactly one first operating element 9a and one second operating element 9b, which can be operated separately from one another, in particular by means of a rocker button 10. The data processing means 6 are programmed to detect an operation of the first operating element 9a or the second operating element 9b by the user and to initiate a defined pipetting operation in accordance with a parameter set.
[0152] The pipetting device has a rocker button 10 and a first operating element 9a and a second operating element 9b that can be independently activated by the rocker button 10. The first operating element 9a is activated by pressing the first pressing surface 10a of the rocker button 10, and the second operating element 9a is activated by pressing the second pressing surface 10b of the rocker button. The first pressing surface and the second pressing surface are tactilely distinguishable. In particular, the first pressing surface 10a is convex (curved outward), and the second pressing surface 10b is concave. This allows the user to find the desired operating element or the desired surface (pressing surface) of the rocker button without visual confirmation, making operation intuitive and ergonomic.
[0153] The pipetting device 1 has a housing 11 designed as a grip for holding the pipetting device in one hand of a user. The housing 11 has a stem 11 containing the operating element 3, along whose longitudinal axis A the operating element 3 extends. The rocker button is mounted on a thumb rest that is arranged at an angle of 100<α<150° relative to the longitudinal axis, in particular tilted downwards. "Down" refers to the orientation of the pipetting device when the longitudinal axis is oriented vertically and the pipette tip 19 points in the direction of gravity. The angular configuration of the rocker button's base creates an ergonomically positioned thumb rest. The thumb rest is arranged starting from the longitudinal axis, in particular perpendicular to a plane that passes through the longitudinal axis A and extends perpendicular to the surface of the flat screen 4. The position of the base at the same height as the hand rest relative to the longitudinal axis also provides advantageous ergonomics.
[0154] The head 14 has a front surface 14a formed by the surface of the screen 4 and the surrounding frame, which is inclined with respect to the longitudinal axis A, with the screen occupying approximately 80% of the front surface. The frame front surface 14a lies in a first plane, and the flat screen 4 lies in a second plane identical to the first plane. This allows the edge area of the screen to be fully touched by the user, thereby optimizing the use of the available area of the touch screen 4. At the same time, the screen edges are not exposed but are protected by the frame front surface 14a.
[0155] The housing 11 has a connection part 2 (operating cone) for at least one pipette container 19 and an eject button 15, the contact surface of which can be moved within the housing along a path by pressing the eject button, and the pipetting device is designed so that, when the end of this path is reached, the removal of the pipette container, in particular the pipette tip, takes place or an electrical signal is generated which triggers the removal of at least one pipette container.
[0156] 5a: The data processing means is programmed to display on the screen a display 102 containing at least one first input tile 103, here 103a, 103b, 103c. This display 102 displays the values of at least one first pipetting parameter (here 103a: V=120 μL, 103b: v=(v1, v2), discharge speed v1=step 8, aspiration speed=step 8, number of steps n=3), and when touched, opens an input interface allowing the user to enter the value of at least one first pipetting parameter. This input interface is in particular a screen area in which a numeric keypad is displayed, the numeric keys of which are individually touchable and can be used by the user to enter a numeric sequence defining the value of at least one first pipetting parameter. The input tile is here a white rectangular area of the screen, recognizable by its contrast with a corresponding drawing or a gray background, and whose width b extends over almost the entire width B of the screen 4. This results in advantageous ergonomics. This applies to the input tiles mentioned above, but not necessarily to all input fields of the input screen (see Fig. 1d). The input interface is here a screen area in a new screen 100a shown on the right side of Fig. 5a, overlaid as screen 100. Similar screen areas 100b, 100c open when input tiles 103b, 103c for the relevant pipetting parameters v = (v1, v2) and n are opened. Alternatively, if a division of the total volume V (e.g., a substep or partial volume of a dispensing step) is to be set instead of an absolute number, a screen area with an input field with a list of possible fractions f = 0.1 to 1.0 opens.
[0157] 3a: Particularly preferably, the data processing means 6 is programmed to display on the screen 4 a screen 100, here designed as a home screen, for displaying the pipetting parameters of a parameter set of pipetting parameters. The screen comprises at least one first input tile 103 (here three input tiles 103a, 103b, 103c) displaying the value of at least one first pipetting parameter of the basic parameter set (here V, v=(v1, v2), n), which, when touched, opens an input interface, in the example of Fig. 5a an image area of the screen 100a with a numeric keypad, allowing the user to enter the value of the at least one first pipetting parameter. Here, screen 100 includes an input field 100, which, when touched, displays a selection list (here, “quick mix,” “reverse,” “step time,” “auto blow-off,” etc.) containing an overview of other selectable pipetting parameters (here, qm, rev, st, abo, etc.) in another screen 110, from which the user can select at least one second pipetting parameter (here, qm, rev, st, or abo, etc.), which is added to at least one first pipetting parameter of the basic parameter set and together defines the pipetting parameters of the parameter set of pipetting parameters that determine the pipetting task. Once the selection of at least one second pipetting parameter is complete, the selection list is closed and screen 100 is displayed again. This screen 100 now displays the value of at least one second pipetting parameter (here, qm, rev, st, or abo, etc.) in addition to at least one first input tile 103, which, when touched, opens an input interface 100d, etc., allowing the user to enter the value of at least one second pipetting parameter.
[0158] Instead of displaying an alternative screen 110 showing the selectable parameters from which the desired parameter can be selected / rejected by touching the input field 104 and then returning to the home screen 100, as shown in Figure 3b, the content of the home screen can be extended with an area 106, which can also be accessed by scrolling (vertical swiping or tapping on the operation field 105), or even with a further area, in which the possible pipetting parameters are listed and can be selected / activated, and their values can then also be edited.
[0159] The present invention represents a particularly advantageous aspect of an innovative operating concept for a pipetting device. Based on user surveys, the inventors have recognized that for a significant number of users, a more efficient workflow can be achieved by supplementing existing, e.g., proven or basic, parameter sets with pipetting parameters, i.e., functions or features, using a pipetting device in which the user defines the desired pipetting tasks largely according to their own wishes. This approach clearly optimally and efficiently achieves the goal of defining the pipetting steps desired by the individual. In particular, if basic parameter sets are provided on the screen, especially the home screen, and can be immediately executed, a successful operating experience can be achieved immediately, eliminating the need for lengthy learning of operating instructions. After a short learning curve, the user can overview the list of possible pipetting parameters, thereby more efficiently utilizing the advanced capabilities of the electronic pipetting device. This applies in particular to a large group of users who, with known prior art pipetting devices, have difficulty mastering the existing, more or less complex operating modes that represent their application scenarios and are therefore content with the simplest operating modes. This novel concept provides a learning curve for inexperienced users while offering complete flexibility for experienced users.
[0160] Preferably, the data processing means 6 is programmed to display information on the screen if no values of the pipetting parameters entered by the user via the input interfaces 100a, 100b, 100c, 100d are provided, preferably: At least one correction button is displayed, which, when touched, automatically performs at least one correction operation instead of the value entered by the user, and these correction operations are The unacceptable values are automatically replaced with acceptable values, At least one alternative pipetting parameter to the above-mentioned pipetting parameters is selected, in particular populated with a user value or other suitable value, It may include a configuration in which the user's input is cancelled and in particular the input is allowed again; and / or An error message is output, and / or Changes to the previously active value are ignored and the previously active value is maintained. and / or Other incombinable pipetting parameters representing incombinable functions are automatically rejected.
[0161] Preferably, the data processing means 6 are programmed to display on the screen 4 a display 100 showing in particular a list of input tiles 103a, 103b, 103c that spans substantially the entire screen.
[0162] Figure 4: The data processing means 6 are programmed to display a start screen 100 on the screen 4, which start screen 100 can be replaced by a second screen by a swipe gesture directed horizontally and by a third screen by a swipe gesture directed horizontally on the opposite side, in particular (see Figure 6) the second screen 120 contains a list of input tiles, each input tile having an abbreviation (here, for example, the input tile with the abbreviation "Volume Measurement"), touching an input field loads a predefined parameter set defining a predefined pipetting operation, in particular after touching this input field another screen 120a is displayed, in particular the third screen 130 contains a list of input fields, each input field having an abbreviation (here, for example, the input tile with the abbreviation "150 μL Step 6"), touching an input field loads a historical parameter set that has been used in the past and that has been automatically saved, in particular after touching this input field another screen is displayed.
[0163] 1e shows a system 300 for inputting pipetting parameters, comprising a handheld pipetting device 1 and an external data processing device 50 including an external screen 51 and data processing means 52. The data processing means 52 is programmed to display an external input screen on the external screen for displaying and inputting pipetting parameters of a parameter set of pipetting parameters, the external input screen and the input screen of the pipetting device having substantially the same content. The system is designed to transfer pipetting parameters defined on the external data processing device to the pipetting device and use them there to define a pipetting operation.
[0164] 7a shows, based on two images of the input screen 100_3 of a pipetting device according to an embodiment, the functionality of the GUI of the pipetting device for marking the current parameter set as a favorite, which is saved as a favorite and displayed in particular as a selectable list item on the favorites screen, i.e. as an input tile providing the corresponding information. The input field marked with the favorite symbol (asterisk) here detects a touch by the user, based on which the pipetting parameter set defined on the input screen 100_3 is saved as a favorite, which is indicated by a change in the color of the favorite symbol.
[0165] FIG. 7b shows the functionality of the pipetting device GUI based on two screens of the pipetting device according to the embodiment, where the input tile identifying the favorite parameter set on the favorites screen 121 has an input field that, when touched, transfers the parameters of the favorite parameter set to the home screen, i.e., input screen 100_4, which displays and allows the parameter values and / or parameter selections of the favorite parameter set to be changed.
[0166] 8a, 8b-1, and 8b-2, in close association with each other, show the GUI function of the pipetting device, which defines the pipetting parameters of a user-defined pipetting operation by means of the pipetting device's recorder function, based on a sequence of multiple screen images and the operating elements of the pipetting device according to the embodiment of the invention (symbolically inserted below). In FIG. 8a, the programming operation performed by the user starts with the screen entitled "Program," which has already been described as the "Automatic Programming Screen." Using the input field "+" on this screen, another program can be created. Then, in the next screen, an input field "Record" or "Record" is provided, which, when touched, starts the recorder function or recording. At the same time, another "Recorder Mode" of the pipetting device is started, in which the actuation of the operating elements (9a, 9b) does not result in an electrical movement of the piston 3. Rather, the pipetting operation is merely simulated (although it could also be performed without simulation), and the program steps are recorded. The uniqueness of the recorder function is that it only requires the operating elements 9a, 9b for aspirating and dispensing the sample, a touch screen and an input tile 103 on the input screen 100" for setting the pipetting parameter values. No programming with programming code is necessary. While recording, a status bar in the screen displays information that recording is being performed ("Recording..."). Furthermore, there is an input field with a stop symbol that allows recording to be stopped. The "Program" screen displays the automatically assigned name "Program 2" as an input tile that, when touched, allows editing the program, in particular changing its name. The inventions disclosed herein include the following: [Aspect 1] 1. A handheld pipetting device for pipetting at least one liquid sample, comprising: a connection for connecting at least one pipette container; an electrically controlled operating element for aspirating at least one sample into at least one pipette vessel, retaining said sample in said at least one pipette vessel, and expelling said sample from said at least one pipette vessel when performing a pipetting operation; a touch-sensitive screen for inputting values of user-definable pipetting parameters, a parameter set of at least one pipetting parameter defining a pipetting task; an electrical control device comprising data processing means programmed to control operating elements in response to at least one pipetting parameter of said parameter set; at least one operating element that is actuated by a user to initiate a pipetting task defined in accordance with said parameter set; The data processing means is programmed to display a graphical user interface (GUI) on a screen, wherein the GUI comprises at least: displaying on a screen a screen displaying the pipetting parameters of the parameter set of pipetting parameters; the screen includes at least one first input tile displaying a value of at least one first pipetting parameter of a basic parameter set defining a basic pipetting task, which when touched opens an input interface allowing a user to input the value of the at least one first pipetting parameter; the screen includes at least one input field that, when touched, allows a user to select at least one second pipetting parameter; After detecting a selection by a user operation, the data processing device: at least one second pipetting parameter is added to at least one first pipetting parameter of the basic parameter set to form pipetting parameters of a user parameter set that together with the at least one first pipetting parameter define a user-defined pipetting task; and and wherein the selection of the at least one second pipetting parameter is displayed to the user on the screen. A handheld pipetting device comprising: [Aspect 2] an input field, in particular only one input field, is provided in the screen, which, when touched, causes a predefined selection of available pipetting parameters to be displayed in the form of a selection list, in particular in a new screen or in an input area overlaying the screen, said display containing information, in particular an overview, about the selectable secondary pipetting parameters, from which the user can select at least one secondary pipetting parameter; Preferably, after the selection of the at least one second pipetting parameter is completed, the selection screen is closed, now displaying in addition to the at least one first input tile at least one second input tile showing the selection and / or value of the at least one second pipetting parameter; A handheld pipetting device as described in aspect 1, wherein, if at least one second pipetting parameter can take on a value selectable by the user, touching at least one second input tile within the selection list or after the selection list has closed opens an input interface that allows the user to input a value for the at least one second pipetting parameter. [Aspect 3] said screen displays N≧1 groups of input fields, in particular input tiles, in particular as a scrollable list of input tiles, each of which is assigned information, in particular a summary, about a second pipetting parameter selectable using the input field; In particular, after a user-operated selection of at least one second pipetting parameter from the N input fields, the selection and / or value of said at least one second pipetting parameter is displayed; A handheld pipetting device as described in embodiment 1, wherein touching at least one second input tile allows the user to input values for at least one second pipetting parameter, particularly when the at least one second pipetting parameter can take on user-selectable values. [Aspect 4] The data processing means displaying on the screen a display including at least one first input tile displaying a value of at least one first pipetting parameter, which when touched opens an input interface allowing a user to input a value of the at least one first pipetting parameter; 2. A handheld pipetting device as described in claim 1, wherein the input interface is a screen area displaying a numeric keypad, the numeric keys of which are individually touchable and which a user can use to input a sequence of numbers defining a value for at least one first pipetting parameter. [Aspect 5] The data processing means If the values of the pipetting parameters entered by the user via the input interface are not acceptable, an information message will be displayed on the screen, preferably At least one correction button is displayed, which, when touched, automatically performs at least one correction action in place of the value entered by the user, and these correction actions are The unacceptable values are automatically replaced with acceptable values, selecting at least one alternative pipetting parameter for said pipetting parameter, in particular populated with a user value or other suitable value, It may include a configuration in which the user's input is cancelled and in particular the input is allowed again; and / or An error message is output, and / or Changes to the previously active value are ignored, the previously active value is maintained, and / or Other incombinable pipetting parameters representing incombinable functions are automatically rejected. 5. A handheld pipetting device according to any one of aspects 1 to 4, programmed to: [Aspect 6] The data processing means A handheld pipetting device according to any one of aspects 1 to 5, particularly programmed to display on a screen a view showing a list of one or more input tiles that spans substantially the entire screen. [Aspect 7] The data processing means displaying a start screen on the screen, the start screen being specifically for displaying pipetting parameters of the parameter set of pipetting parameters; It is programmed so that a horizontally directed swipe gesture will replace the second screen, and a horizontally directed swipe gesture on the opposite side will replace the third screen; In particular, the second screen comprises a list of input fields, each having an abbreviated name, and touching said input field loads a predetermined set of parameters defining a predetermined pipetting task, and in particular, after touching said input field, the start screen is displayed again, containing the input tile for the predetermined set of parameters; A handheld pipetting device according to any one of aspects 1 to 6, wherein in particular the third screen includes a list of input fields, each having an abbreviation, and touching said input field loads a historical parameter set defining a historical pipetting operation that has been used in the past and automatically saved, and in particular after touching said input field the start screen including the input tile for the historical parameter set is displayed again. [Aspect 8] 8. A handheld pipetting device according to any one of aspects 1 to 7, wherein the data processing means is programmed to display an input screen (100, 100') for displaying and inputting pipetting parameters of a parameter set of pipetting parameters, and when activation of at least one operating element is detected, to display on the screen instead of the input screen an output screen (200) for displaying the pipetting parameters of the parameter set defined in the input screen, and when activation of the at least one operating element is detected or when these operating elements are subsequently activated, to start a pipetting operation defined in accordance with the pipetting parameter set, and wherein the output screen or the subsequently displayed output screen has a special button which, when touched, closes the output screen and causes the input screen or another input screen to be displayed on the screen. [Aspect 9] A handheld pipetting device according to any one of aspects 1 to 8, wherein the data processing device is programmed to perform a recorder function, and the GUI has at least one input field for starting and / or stopping recording, and after starting, steps of a pipetting program for performing a user-defined pipetting task are recorded, and the user executes these steps by activating at least one operating element and entering values of pipetting parameters in one or more input screens. [Aspect 10] A handheld pipette device according to any one of aspects 1 to 9, wherein the pipette device has a rocker button and a first operating element and a second operating element that can be separately activated by the rocker button, wherein the first operating element is activated by pressing a first pressing surface of the rocker button and the second operating element is activated by pressing a second pressing surface of the rocker button, and the first pressing surface and the second pressing surface are tactilely distinguishable. [Aspect 11] the pipetting device has a housing designed as a grip for holding the pipetting device in one hand of a user, the housing having a stem containing a piston along its longitudinal axis, the piston extending therefrom; 11. A handheld pipetting device according to any one of claims 1 to 10, wherein the pipetting device has a first operating element and a second operating element that can be separately actuated by a rocker button, the rocker button being tilted downwards at an angle of 80<α<180° relative to the longitudinal axis. [Aspect 12] The pipetting device has a housing with a stem including a piston extending along a longitudinal axis thereof, and a head having a front surface inclined relative to the longitudinal axis, the front surface being formed by a screen surface and a frame surrounding the screen, the screen occupying at least 80% of the front surface; 12. A handheld pipetting device according to any one of aspects 1 to 11, in particular wherein the front face of the frame lies in a first plane and the screen lies in a second plane that is the same as or parallel to the first plane. [Aspect 13] 13. A handheld pipetting device according to any one of aspects 1 to 12, comprising a housing with a connection for at least one pipette container and an ejection button, the contact surface of which can be moved within the housing along a path by pressing the ejection button, and the pipetting device is designed so that, when the end of the path is reached, the pipette container, in particular the pipette tip, is removed or an electrical signal is generated which triggers the removal of at least one pipette container. [Aspect 14] 1. A system for inputting pipetting parameters, comprising: a handheld pipetting device according to any one of aspects 1 to 13; an external data processing device including an external screen and data processing means, the data processing means being programmed to display an external input screen ("SETTING") on the external screen for displaying and inputting pipetting parameters of the parameter set of pipetting parameters, the external input screen and the input screen of the pipetting device having substantially the same content; The system is designed to transfer pipetting parameters defined on an external data processing device to the pipetting device and use them therein to define a pipetting operation. [Aspect 15] 1. A computer program code for preparing an input screen on a screen of a handheld pipetting device, the pipetting device being used for pipetting at least one liquid sample and comprising: a connector for connecting at least one pipette vessel; electrically controlled operating elements for aspirating at least one sample into the at least one pipette vessel, retaining said sample in the at least one pipette vessel, and expelling said sample from the at least one pipette vessel when performing a pipetting operation; and a touch-sensitive screen for inputting parameter values of user-definable pipetting parameters, a parameter set of which completely defines a pipetting operation; the pipetting device further comprising: an electronic control device including data processing means programmed to control the operating elements in response to the at least one pipetting parameter; and at least one operating element operable by finger pressure, in particular thumb pressure, of a user, the actuation of which initiates a pipetting operation defined in accordance with the parameter set, When the program code is executed by the data processing means of the handheld pipetting device, it results in: a) an input screen for displaying and inputting pipetting parameters of a parameter set of pipetting parameters is displayed on the screen; b) the screen includes at least one first input tile displaying a value of at least one first pipetting parameter of a basic parameter set defining a basic pipetting task, which when touched opens an input interface allowing a user to input a value of the at least one first pipetting parameter; c) the screen includes at least one input field that, when touched, allows a user to select at least one second pipetting parameter; and the data processing means, after detecting the user selection, adds the at least one second pipetting parameter to the at least one first pipetting parameter to form, together with the at least one first pipetting parameter, pipetting parameters of a user parameter set that defines a user-defined pipetting task; and the selection of the at least one second pipetting parameter is displayed to the user on the screen.
Claims
1. 1. A handheld pipetting device for pipetting at least one liquid sample, comprising: a connection for connecting at least one pipette container; an electrically controlled operating element for aspirating at least one sample into at least one pipette vessel, retaining said sample in said at least one pipette vessel, and expelling said sample from said at least one pipette vessel when performing a pipetting operation; a touch-sensitive screen for inputting values of user-definable pipetting parameters, a parameter set of at least one pipetting parameter defining a pipetting task; an electrical control unit comprising data processing means programmed to control operating elements in response to at least one pipetting parameter of said parameter set; at least one operating element that is actuated by a user to initiate a pipetting task defined in accordance with said parameter set; The data processing means is programmed to display a graphical user interface (GUI) on a screen, wherein the GUI comprises at least: displaying on a screen a screen displaying the pipetting parameters of the parameter set of pipetting parameters; the screen includes at least one first input tile displaying a value of at least one first pipetting parameter of a basic parameter set defining a basic pipetting task, which when touched opens an input interface allowing a user to input a value of the at least one first pipetting parameter; the screen includes at least one input field that, when touched, allows a user to select at least one second pipetting parameter; After detecting a selection by a user operation, the data processing device: at least one second pipetting parameter is added to at least one first pipetting parameter of the basic parameter set to form pipetting parameters of a user parameter set that together with the at least one first pipetting parameter define a user-defined pipetting task; and and wherein the selection of the at least one second pipetting parameter is displayed to the user on the screen. A handheld pipetting device comprising:
2. an input field is provided within the screen, which, when touched, displays a predetermined selection of available pipetting parameters in the form of a selection list, in a new screen, or in an input area overlaying the screen, said display including information about selectable secondary pipetting parameters from which the user can select at least one secondary pipetting parameter; after the selection of the at least one second pipetting parameter is completed, the selection screen is closed to now display, in addition to the at least one first input tile, at least one second input tile showing the selection and / or value of the at least one second pipetting parameter; 2. The handheld pipetting device of claim 1, wherein, if at least one second pipetting parameter can take on user-selectable values, touching at least one second input tile within the selection list or after the selection list has closed opens an input interface that allows the user to input a value for the at least one second pipetting parameter.
3. the screen displays N≧1 groups of input fields as a scrollable list of input tiles, each of which is assigned information about a second pipetting parameter selectable using the input field; after a user-operated selection of at least one second pipetting parameter from the N input fields, the selection and / or value of said at least one second pipetting parameter is displayed; 10. The handheld pipetting device of claim 1, wherein touching at least one second input tile allows a user to input a value for at least one second pipetting parameter, where the at least one second pipetting parameter can take on user-selectable values.
4. The data processing means displaying on the screen a view including at least one first input tile displaying the value of at least one first pipetting parameter, which when touched opens an input interface allowing the user to input the value of the at least one first pipetting parameter; 2. The handheld pipetting device of claim 1, wherein the input interface is a screen area displaying a numeric keypad, the numeric keys of which are individually touchable and can be used by a user to input a sequence of numbers defining values for at least one first pipetting parameter.
5. The data processing means If the values of the pipetting parameters entered by the user via the input interface are not acceptable, an information screen will appear, At least one correction button is displayed which, when touched, automatically performs at least one correction action in place of the value entered by the user, and these correction actions include: The unacceptable values are automatically replaced with acceptable values, selecting at least one alternative pipetting parameter to the pipetting parameter and populating it with a user value or other suitable value; It may include a configuration in which the user's input is canceled and the user is allowed to input again, and / or An error message is output, and / or Changes to the previously active value are ignored, the previously active value is maintained, and / or Other incombinable pipetting parameters representing incombinable functions are automatically rejected.
5. A handheld pipetting device according to claim 1, programmed to:
6. The data processing means 6. A handheld pipetting device according to any one of claims 1 to 5, programmed to display on the screen a screen showing a list of one or more input tiles spanning the entire screen.
7. The data processing means displaying a start screen on the screen, the start screen being for displaying pipetting parameters of the parameter set of pipetting parameters; programmed to be replaced by a second screen with a horizontally directed swipe gesture and to be replaced by a third screen with an opposite horizontally directed swipe gesture; a second screen containing a list of input fields, each having an abbreviated name, touching said input field loads a predetermined parameter set defining a predetermined pipetting task, and after touching said input field the start screen is displayed again containing the input tile for the predetermined parameter set; 7. A handheld pipetting device according to claim 1, wherein the third screen includes a list of input fields, each of which has an abbreviation, and wherein touching the input field loads a historical parameter set defining a historical pipetting operation that has been used in the past and automatically saved, and wherein after touching the input field the start screen including the input tile for the historical parameter set is displayed again.
8. 8. A handheld pipetting device according to claim 1, wherein the data processing means is programmed to display an input screen (100, 100') for displaying and inputting pipetting parameters of a parameter set of pipetting parameters, and, upon detection of an activation of at least one operating element, to display on the screen an output screen (200) instead of the input screen for displaying the pipetting parameters of the parameter set defined in the input screen, and, upon detection of an activation of said at least one operating element or subsequent activation of said operating elements, to start a pipetting operation defined in accordance with said pipetting parameter set, and wherein said output screen or a subsequent output screen has a special button, which, when touched, closes the output screen and causes said input screen or another input screen to be displayed on the screen.
9. 9. A handheld pipetting device according to claim 1, wherein the data processing device is programmed to perform a recorder function, and wherein the GUI has at least one input field for starting and / or stopping recording, and after starting, steps of a pipetting program for performing a user-defined pipetting task are recorded, the steps being carried out by the user by actuating at least one operating element and entering values for pipetting parameters in one or more input screens.
10. 10. The handheld pipetting device according to claim 1, further comprising a rocker button and a first operating element and a second operating element that can be separately activated by the rocker button, wherein the first operating element is activated by pressing a first pressing surface of the rocker button and the second operating element is activated by pressing a second pressing surface of the rocker button, and the first pressing surface and the second pressing surface are tactilely distinguishable from each other.
11. the pipetting device has a housing designed as a grip for holding the pipetting device in one hand of a user, the housing having a stem containing a piston along its longitudinal axis, the piston extending therefrom; 11. A handheld pipetting device according to claim 1, wherein the pipetting device has a first operating element and a second operating element that can be separately activated by a rocker button, the rocker button being arranged at an angle of 80<α<180° downwards relative to the longitudinal axis.
12. The pipetting device has a housing with a stem including a piston extending along a longitudinal axis thereof, and a head having a front surface inclined relative to the longitudinal axis, the front surface being formed by a screen surface and a frame surrounding the screen, the screen occupying at least 80% of the front surface; 12. A handheld pipetting device according to any one of claims 1 to 11, wherein the frame front surface lies in a first plane and the screen lies in a second plane that is the same as or parallel to the first plane.
13. 13. A handheld pipetting device according to any one of claims 1 to 12, comprising a housing with a connection for at least one pipette container and an ejection button, the contact surface of which can be moved within the housing along a path by pressing the ejection button, and the pipetting device is designed so that, when the end of the path is reached, the pipette container is removed or an electrical signal is generated which triggers the removal of at least one pipette container.
14. 1. A system for inputting pipetting parameters, comprising: A handheld pipetting device according to any one of claims 1 to 13; an external data processing device including an external screen and a data processing means, wherein the data processing means is programmed to display an external input screen on the external screen for displaying and inputting pipetting parameters of the parameter set of pipetting parameters, and the external input screen and the input screen of the pipetting device have the same content; The system is designed to transfer pipetting parameters defined on an external data processing device to the pipetting device and use them therein to define a pipetting operation.
15. 1. A computer program code for preparing an input screen on a screen of a handheld pipetting device, the pipetting device being used to pipette at least one liquid sample and comprising: a connector for connecting at least one pipette container; electrically controlled operating elements for aspirating at least one sample into the at least one pipette container, retaining said sample in the at least one pipette container, and expelling said sample from the at least one pipette container when performing a pipetting operation; and a touch-sensitive screen for inputting parameter values of user-definable pipetting parameters, a parameter set of which completely defines a pipetting operation; the pipetting device further comprising: an electronic control device including data processing means programmed to control the operating elements in response to the at least one pipetting parameter; and at least one operating element operable by finger pressure of a user, the actuation of which initiates a pipetting operation defined in accordance with the parameter set. When the program code is executed by the data processing means of the handheld pipetting device, it results in: a) an input screen for displaying and inputting pipetting parameters of a parameter set of pipetting parameters is displayed on the screen; b) the screen includes at least one first input tile displaying the value of at least one first pipetting parameter of a basic parameter set defining a basic pipetting task, which when touched opens an input interface allowing the user to input the value of the at least one first pipetting parameter; c) the screen includes at least one input field that, when touched, allows a user to select at least one second pipetting parameter; and the data processing means, after detecting the user selection, adds the at least one second pipetting parameter to the at least one first pipetting parameter to form, together with the at least one first pipetting parameter, pipetting parameters of a user parameter set that defines a user-defined pipetting task; and the selection of the at least one second pipetting parameter is displayed to the user on the screen.
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