Battery for transmitting electric power

文档序号:884413 发布日期:2021-03-19 浏览:19次 中文

阅读说明:本技术 用于输送电力的电池 (Battery for transmitting electric power ) 是由 K·耶尔德兹 O·阿科德米尔 于 2018-08-16 设计创作,主要内容包括:用于以电池电压输送电力的电池(1)具有主体(2),该主体具有第一端和第二端。在第一端处提供第一极性的第一端子(4),并且在第二端处提供第二极性的第二端子(5)。主体(2)沿着其长度能够扩展和能够收缩,以便使第一端子(4)和第二端子(5)分别彼此分开和彼此靠近,以改变电池(1)的长度。电池(1)具有布置为根据电池(1)的长度来设置电池电压的电路系统(7)。(A battery (1) for delivering electrical power at a battery voltage has a body (2) with a first end and a second end. A first terminal (4) of a first polarity is provided at a first end and a second terminal (5) of a second polarity is provided at a second end. The body (2) is expandable and contractible along its length so as to move the first terminal (4) and the second terminal (5) apart from and toward each other, respectively, to vary the length of the battery (1). The battery (1) has circuitry (7) arranged to set a battery voltage in dependence on the length of the battery (1).)

1. A battery for delivering power at a battery voltage, the battery comprising:

a body having a first end and a second end;

a first terminal of a first polarity at a first end;

a second terminal of a second polarity at a second end; and

circuitry;

the body is expandable and contractible along its length to move the first and second terminals apart and closer to each other to change the length of the battery; and

the circuitry is arranged to set the battery voltage in dependence on the length of the battery.

2. A battery as claimed in claim 1, comprising a sensor arranged to provide a measurement of the length of the battery to the circuitry, the circuitry being arranged to set the battery voltage in dependence on the measured length of the battery.

3. The battery of claim 2, wherein the sensor is a proximity sensor.

4. A battery as claimed in any one of claims 1 to 3, wherein the circuitry is arranged to set the battery voltage to about 1.5V if the length of the battery is greater than about 30mm, and to set the battery voltage to about 12V if the length of the battery is less than about 30 mm.

5. A battery as claimed in any one of claims 1 to 4, arranged such that the length of the battery is at a maximum when the battery is in its quiescent state.

6. The battery of any one of claims 1-5, wherein the body is expandable and contractible across its width.

7. The battery of any one of claims 1-5, wherein the body is non-expandable or non-contractible across its width.

8. The combination of a battery and a cradle according to any one of claims 1 to 7, the cradle having an outer wall defining the width of the cradle and having a hollow interior capable of receiving a battery.

Technical Field

The present disclosure relates to batteries for delivering electrical power.

Background

Batteries are manufactured and supplied in a variety of standard types. In general, different standard types have different shapes and sizes and deliver power at one particular voltage or another. Often, a particular device or apparatus requires one or more batteries of a particular type and cannot accommodate different types of batteries. This is inconvenient for the consumer as it means that they must make purchases and also typically stock many different types of batteries for different devices.

Disclosure of Invention

According to an aspect disclosed herein, there is provided a battery for delivering power at a battery voltage, the battery comprising:

a body having a first end and a second end;

a first terminal of a first polarity at a first end;

a second terminal of a second polarity at a second end; and

circuitry;

the body being expandable and contractible along its length to move the first and second terminals, respectively, apart and closer together to vary the length of the battery; and

the circuitry is arranged to set the battery voltage in dependence on the length of the battery.

This provides a configurable battery which can be adjusted in length according to the size of some battery holder or container etc. in which the battery can be mounted for use. The body may be manually expandable and contractible so that a user may adjust the length of the battery by hand. The voltage supplied by the battery may be automatically adjusted depending on the length of the battery. Some specific examples of which are discussed further below.

In an example, the battery comprises a sensor arranged to provide a measurement of the length of the battery to circuitry arranged to set the battery voltage in dependence on the measured length of the battery.

In an example, the sensor is a proximity sensor.

In an example, the circuitry is arranged to set the battery voltage to about 1.5V if the length of the battery is greater than about 30mm, and to set the battery voltage to about 12V if the length of the battery is less than about 30 mm.

In an example, the body is expandable and contractible to change the length of the battery to be selectively the same as the length of the AAAA, AAA, AA, a, C, D, a23, and a27 type batteries. The AAAA, AAA, AA, A, C and D batteries all provide 1.5V, while the A23 and A27 batteries provide 12V.

In an example, the battery is arranged such that the length of the battery is maximum when the battery is in its quiescent state. That is, if no force is applied to the battery, particularly, no force is applied to the main body, the length of the battery is the largest.

In an example, the body is expandable and contractible across its entire width.

In another example, the body is not expandable or collapsible across its entire width.

As mentioned above, the cradle and battery may also be provided in combination, the cradle having an outer wall defining the width of the cradle and having a hollow interior in which the battery may be housed.

In this example, the expandable/collapsible cell may have a width that is the narrowest width of the types of cells to be "mock" or realized by the expandable/collapsible cell. If the expandable/collapsible battery is to be received in some battery holder or receptacle requiring the battery to have a width greater than the battery width, the battery may be inserted into a cradle, which then occupies space.

Drawings

To assist in understanding the disclosure and to show how embodiments may be carried into effect, reference is made, by way of example, to the accompanying drawings, in which:

fig. 1 schematically shows an example of a battery according to the invention in a first configuration;

fig. 2 schematically illustrates the battery of fig. 1 in a second configuration;

fig. 3 schematically shows an example of a standard battery type;

fig. 4 schematically illustrates another example of a battery according to the present disclosure;

FIG. 5 schematically illustrates an example of a battery and a cradle according to the present disclosure; and the number of the first and second groups,

fig. 6 schematically shows an example of a battery according to the present disclosure and an example of circuitry used in the battery.

Detailed Description

As mentioned and as is well known, batteries are manufactured and supplied in a number of standard types. This causes inconvenience to the user.

In the examples described herein, a battery is provided in which the length of the battery can be adjusted and the voltage delivered by the battery is set according to the length of the battery. This provides the user with an adjustable battery that can set the battery voltage to a battery voltage that is appropriate for the type of battery that is "emulated" or implemented.

Reference is now made to fig. 1 and 2, which show examples of a battery 1 according to the present disclosure in a first expanded configuration and a second collapsed configuration, respectively. The cell 1 is generally cylindrical, having a length l and a width w. In this example, the cross-sectional shape of the cell 1 is circular, such that in this example, the "width" is the diameter of the cell 1.

The battery 1 has a main body 2. The body 2 is expandable and contractible along the length of the battery 1. In this example, the main body 2 is manually expandable and contractible so that the user can expand and contract the battery 1 by hand. An example of an arrangement of the main body 2 that enables expansion and contraction will be discussed below.

The battery 1 includes an electrochemical cell 3 within a main body 2. The electrochemical cell 3 generates electricity in a manner known per se. The electrochemical cell 3 may be of the single-use type in the case of batteries 1 which are "primary" or "disposable" batteries, or the electrochemical cell 3 may be rechargeable in the case of batteries 1 which are "secondary" or rechargeable batteries. One end of the battery 1 has a first terminal 4, and the other end has a second terminal 5. The first terminal 4 may be of the "nub" type and is typically a positive terminal. The second terminal 5 may be of the flat plate (flat disk) type and is typically a negative terminal. The first terminal 4 and the second terminal 5 are in electrical communication with the electrochemical cell 3. The connection between the electrochemical cell 3 and the first and second terminals 4, 5 may be achieved by, for example, a flexible connection line (not shown) that maintains an electrical connection as the battery 1 expands or contracts.

The battery 1 of this example also has a sensor 6 for obtaining a measurement of the length of the battery 1 and is in communication with circuitry 7, which circuitry 7 will be discussed further below. The sensor 6 may be located, for example, on the top of the battery cell 3, and may measure the distance between the top of the battery cell 3 and the inner wall 8 at the top of the body 2 of the battery 1 (i.e., near the positive terminal 4). This may be appropriate in the case where only the upper part of the main body 2 is expandable and contractible. Alternatively, the sensor 6 may be located, for example, at the bottom of the battery cell 3, and may measure the distance between the bottom of the battery cell 3 and the inner wall 9 at the bottom of the body 2 of the battery 1 (i.e., near the negative terminal 5). This may be appropriate in case only the lower part of the body 2 is expandable and contractible. In the example shown, the sensor 6 is positioned within the body 2 to provide a measurement of the distance between the upper and lower inner walls 8, 9 of the body 2. This is particularly suitable in case the body 2 can be expanded at the top and bottom or more generally anywhere along its length. In another example, there may be sensors 6 at the top and bottom of the battery cell 5 for measuring the distance from the battery cell to the top and bottom of the main body 2, respectively.

The sensor 6 may be, for example, a proximity sensor. The proximity sensor 6 may be, for example, an optical sensor, such as an opto-electronic proximity sensor, a capacitive proximity sensor, an inductive proximity sensor, or the like. The proximity sensor 6 can generally provide a measurement of the length of the battery 1 with a high accuracy. As an alternative to using a proximity sensor, the sensor 6 may be a sliding potentiometer or some other type of sensor.

The circuitry 7 is contained within the body 2 of the battery 1. Specific examples of suitable circuitry 7 are discussed further below. Circuitry 7 receives a measurement of the length of battery 1 from sensor 6. The circuitry 7 may set the output voltage delivered by the battery 1 as desired in use based on the length of the battery 1.

Table 1 summarizes examples of different types of batteries that may be emulated or effectively implemented by the battery 1 and is graphically shown in fig. 3. In table 3, the dimensions are in millimeters as shown in table 1. Furthermore, the indicated voltage is the nominal voltage supplied by the battery 1, it being understood that the actual voltage delivered by the battery may vary over time, for example because the electrochemical cells are depleted with use.

Type (B) Diameter (mm) Length (mm) Voltage of
AAAA 8.3 42.5 1.5V
AAA 10.5 44.5 1.5V
AA 14.5 50.5 1.5V
A 17 50 1.5V
C 26.2 50 1.5V
D 34.2 61.5 1.5V
A23 10.3 28.5 12V
A27 8 28.2 12V

TABLE 1

Circuitry 7 is configured such that if battery 1 is emulating a battery of the AAAA, AAA, AA, a, C or D type, battery 1 is caused to deliver a (nominal) voltage of 1.5V. On the other hand, if battery 1 emulates a23 or a27 type of battery, circuitry 7 operates to cause battery 1 to assume a (nominal) voltage of 12V. This is particularly convenient for the user, since the battery 1 not only allows to obtain batteries of different sizes, but the battery 1 also regulates the voltage delivered by the battery 1 as required.

The circuitry 7 may be arranged such that if the length of the battery 1 is greater than e.g. 30mm, the battery 1 is configured to deliver a voltage of 1.5V, whereas if the length is less than e.g. 30mm, the battery 1 is configured to deliver a voltage of 12V. The threshold length may be different. For example, a threshold length of, for example, around 35mm allows a greater margin of error in the measurement of the length of the battery 1. In other examples, a threshold length of up to about 40mm may be used.

Many different arrangements are possible that enable the battery 1 to expand and contract.

For example, the body 2 of the battery 1 may have one or more "concertina" (or zig-zag or accordion or "z") sections with a plurality of folds that allow the section to expand or contract. An example of this is schematically shown in fig. 4. In the example of fig. 4, the battery 10 has a main body 11, the main body 11 having two concertina portions 12, 13. The first concertina portion 12 is provided between the battery cell 14/circuitry 15 and the upper positive terminal 16 toward the upper portion of the main body 11. The second concertina portion 13 is provided between the battery cell 14/circuitry 15 and the lower negative terminal 17 toward the lower portion of the main body 11. The concertina portions 12, 13 allow a user to manually expand and contract the battery 1 along the length of the battery 1 as required.

In another example (not shown), the battery may have a body partially or completely formed of "memory foam" (such as, for example, viscoelastic polyurethane foam). This again enables the battery to be manually expanded and contracted along its length as required.

In some examples, the battery is arranged such that its length is at a maximum when it is in its rest state. That is, if no force is applied to the battery, particularly if no force is applied to the main body, the length of the battery is the largest. In this case, the user need only contract or compress the main body to obtain a shorter length of battery, and may relax the battery to its maximum length to achieve the desired longest battery length.

In some examples, the battery is expandable and collapsible along its length, and is also expandable and collapsible across its width. This enables the battery itself to more closely fit a range of "standard" battery sizes.

In other examples, the battery is only expandable and collapsible along its length, and is not expandable or collapsible across its entire width. That is, in this example, the body is sufficiently rigid that a user typically cannot manually collapse or expand the body across its width. This has the advantage that the battery itself may be easier to manufacture than a battery that is expandable and contractible over its entire width.

In any of these examples, a battery may be used in conjunction with the bracket. Fig. 5 schematically shows such an example. In fig. 5, the left side shows a front view of a battery 20, which battery 20 is expandable and collapsible along its length, but not (necessarily) along its width. On the right side of fig. 5, a perspective view of the bracket 30 is shown, the bracket 30 being intended to accommodate the battery 20. The carrier 30 is generally sleeve-shaped, cylindrical and has a hollow interior 32. At least one of the opposing ends 34, 36 of the cradle 30, and in some examples, two of the opposing ends 34, 36 of the cradle 30, are open to allow insertion and removal of the battery 20 into and out of the hollow interior 32 of the cradle 30. The bracket 30 enables an increase in the effective width of the battery 20.

In the case where the battery 20 is not expandable or contractible over its entire width, then the battery 20 may be formed to have the narrowest width of the battery types that will be mimicked or realized by an expandable/contractible battery. Referring to table 1, in a specific example, the width of the battery may be about 8mm, corresponding to an AAAA or a27 type battery. The battery 20 can then be inserted into the cradle 30 to achieve a greater effective width.

Even if the battery 20 is expandable and contractible over its entire width, such a bracket 30 may be useful because it allows a wider range of battery widths to be effectively achieved and accommodated without requiring large width changes to the body of the battery 20. The hollow interior 32 of the cradle 30 may have a width (or diameter) that is slightly less than the width of the battery 20 in its rest state. In this case, the user may compress the battery 20 over its entire width to fit the battery 20 into the cradle 30. The battery 20 can then be relaxed, thereby expanding its width and holding it securely in the cradle 30.

The carriage 30 may be substantially rigid, in particular sufficiently rigid so that it does not compress under the normal force of the user. In other examples, the carriage 30 itself may be expandable and contractible, particularly across its entire width. This further extends the size range, particularly the width range, which can be effectively achieved by the combination of the battery 20 and the bracket 30.

Referring to fig. 6, an example of a battery 10 according to the present disclosure and an example of circuitry 20 for use in the battery 10 are schematically illustrated. The battery 10 of this example may be substantially similar to and in accordance with the above-described examples, and the description of various similar components will not be repeated here.

Briefly, and similar to the examples discussed above, the battery 10 has a body 12, the body 12 being expandable and contractible along the length of the battery 10. The battery 10 includes electrochemical cells 13 within a body 12. The battery 10 has a first terminal 14 at one end and a second terminal 15 at the other end. The battery 10 of this example has a sensor 16, which may be, for example, a proximity sensor, for obtaining a measurement of the length of the battery 10.

The circuitry 20 is contained within the body 12 of the battery 10. The circuitry 20 of this example includes a controller unit 22, a power converter block 24, and switching circuitry block 26. The controller unit 22 may be or comprise, for example, a processor such as, for example, a programmable system on chip or SOC. The programmable SOC may be very small and fit within the body 12 of the battery 10.

As discussed above, the sensor 16 obtains a measurement of the length of the battery 10. In the example shown in fig. 6, the proximity sensor 16 is located toward one end of the battery 10 (i.e., near the negative terminal 15 in this example), and measures the distance to the other end of the battery 10 (i.e., near the positive terminal 14 in this example). During the manufacturing production or calibration phase of the battery 10, the sensor 16 may measure the length of the battery 10 for all types of batteries that will be "mock" by the expandable/collapsible battery. The measured values may be permanently stored in the software of the controller 22. Likewise, the voltage values corresponding to these lengths may also be permanently stored in the software of the controller 22.

In use, the sensor 16 measures the length of the battery 10 and sends the measurement data to the controller 22. The controller 22 then compares the measured length value to the stored voltage length value and determines the battery type and desired voltage level. The controller 22 may then control the switching circuitry block 26 so that the power converter block 24 of the battery 10 outputs the correct corresponding voltage.

In an example, the power converter block 24 includes a power converter integrated circuit system or IC. The voltage output by the IC of the power converter module 24 may be controlled by a feedback pin controlled by the switching circuit block 26.

To this end, the switching circuit block 26 of this example has two transistors 28, 30 which act as switches under the control of the controller 22, the controller 22 providing control signals (voltages) to the bases of the transistors 28, 30. A first resistor R1 is provided in the feedback circuit of the power converter 24. Second and third resistors R2, R3 are provided between the collectors of transistors 28, 30, respectively, and the feedback circuit and the emitters of transistors 28, 30 are grounded (e.g., the body 12 of the battery 10). The values of the resistors R1, R2, and R3 are set so that the desired output voltage from the power converter block 24 is achieved depending on the battery type determined by the controller 22 in conjunction with the sensor 16 from the length of the battery 10.

It will be appreciated that the processor or processing system or circuitry referred to herein may in fact be provided by a single chip or integrated circuit or multiple chips or integrated circuits, optionally as a chipset, Application Specific Integrated Circuit (ASIC), Field Programmable Gate Array (FPGA), Digital Signal Processor (DSP), Graphics Processing Unit (GPU), etc. One or more of the chips may include circuitry (and possibly firmware) for implementing one or more of at least one or more data processors, one or more digital signal processors, baseband circuitry, and radio frequency circuitry, which may be configurable to operate in accordance with the exemplary embodiments. In this regard, the exemplary embodiments can be implemented, at least in part, by computer software stored in a (non-transitory) memory and executable by a processor, or by hardware, or by a combination of tangibly stored software and hardware (and tangibly stored firmware).

The examples described herein are to be understood as illustrative examples of embodiments of the invention. Further embodiments and examples are contemplated. Any feature described in relation to any one example or embodiment may be used alone or in combination with other features. In addition, any feature described in relation to any one example or embodiment may also be used in combination with any other feature or features of any other example or embodiment, or any combination of any other of examples or embodiments. Furthermore, equivalents and modifications not described herein may also be employed within the scope of the invention as defined in the claims.

12页详细技术资料下载
上一篇:一种医用注射器针头装配设备
下一篇:微米层膜、电池隔板、电池及相关方法

网友询问留言

已有0条留言

还没有人留言评论。精彩留言会获得点赞!

精彩留言,会给你点赞!